Document J3y9XY2rakGo9kO9a3mgxENxa
1 SC-ASHVE-005
St. Louis Public
Library
American Society of Heating and Ventilating Engineers Heating ventilating air conditioning guide. VOL 5 192
St
628.8 AMERICAN
21718 76009
g:.V l
- 9724KK
This Book Shall Not Be Taken From The Library.
k!
American Society of Heating and Ventilating
Engineers Guide
1926-27
Containing Design and Specification Data Useful in . the Planning and Construction of Modern Heating
and Ventilating Installations^-- Prepared from the ' Society's Transactions--Investigations of Its Research
Laboratory -- and the Practice of Its Members
TOGETHER WITH A
Manufacturers' Catalog Data Section Containing Essen tial and Reliable Facts Concerning Modern Equipment
AND A
Consulting Service Section for Engineers
also
The Roll of Membership of the Society
with
Complete Index of Technical and Catalog Data
Vol. 5
$3.00 Per Volume
972466
Published Annually by
.
American Society of Heating and Ventilating Engineers
29 West 39TH Street
New York
/
Copyright, 1926 by ,
American Society of Heating and Ventilating Engineers
Printed and Bound by
The Horn-Shafer Company
BALTIMORE
MARYLAND
1
1??. 628.8
PREFACE
PROGRESS has been made each year in making a worthwhile con tribution toward the dissemination of knowledge about heating and ventilating engineering and the Society's latest effort is The Guide, 1926-27 which is the fifth of these annual editions for engineers, archi tects, contractors and others who are desirous of having a complete knowledge of the heating and ventilating art.
This fifth edition of The Guide is by far the most comprehensive in the scope, value and usefulness of its data and contains the latest infor mation on modern equipment. To compile this volume of scientific and useful facts the experience of the Society's members the results of its Research Laboratory investigations, and the work of others has been drawn upon and combined with established standard data in a simple, convenient and practical form for reference.
In the growth of The Guide much new data has been added so that on its fifth anniversary it is notable that the Technical Data Section has been substantially increased, with data on entirely new subjects, many drawings have been added and the remaining data revised and brought up-to-the-minute. With new developments in the profession and industry now indicated constant changes in our standards will occur.
Those things which appear for the first time in The Guide, 1926-27
are: a recommended standard set of symbols for drawings, chapters on
greenhouse heating, hot blast heating, drying, mechanical draft, use of
ozone in ventilation, data on building insulation and brief references to
new radiator developments. Extensive revisions and additions have
been made to the sections on steam heating, water supply systems, gas
heating, oil heating, insulation, the ventilation section and the chapters
on heating boilers and human comfort have been entirely rewritten.
All of this material has been cross-indexed in a comprehensive manner
making this edition of greater usefulness to the user.
,
In connection with the MANUFACTURERS'-CATALOG DATA
SECTION a more determined effort has been made to carry out the
. original idea of having this data as free as possible from all unnecessary
selling talk and to present therein only such technical information and
instructions concerning each item of apparatus referred to as is of the
greatest practical value to both the user and manufacturers,- of this
apparatus.
.
While desiring to provide the engineer, architect, contractor, estimator, purchasing agent and draftsman with a complete, convenient--and ~ reliable' reference data book on modern heating and ventilating practice and equipment, The Guide Publication Committee finds that as progress is made in the industry, changes will be necessary and each GUIDE WILL represent the best known engineering practice at the time of publication.
As in the case of the first edition issued in 1922, the second edition published in 1923 and the third designated 1924-25, the fourth in 1925-26 this fifth edition for 1926-27 has extended and simplified much of the technical data with the idea of assisting the engineer, architect and contractor in designing and producing the most effective installations for heating and ventilating various types of buildings.
In every case the various chapters are the product of one or more
specialists, nearly all members of the Society and revisions have generally
been made by the original authors. Publications of the Society, as well
as other sources of information, have been drawn upon for some material
and credit has been given in each case.
-
,
` .
Great care has been taken to maintain a logical arrangement of. data
in order that it may be most useful and as in the cases of the four previous
editions all Catalog Data have been carefully edited in an effort to
eliminate exaggerated statements or claims;
'
No effort has been spared in compiling data for the improvement of
this Fifth Edition of THE GUIDE and the helpful, suggestions of its
users are gratefully acknowledged, as they have made it possible for this
volume to become the standard reference work in our field, thereby
performing a needed and valuable service in the advancement of the
science.
.
.
. >
The American Society of Heating and Ventilating Engineers having for its purpose the advancement of the arts and sciences iif its fields dedicated this volume to the service of the Industry and hopes that a closer contact between the maker and user of equipment will result in improved service to the country at large.
.. '
THE GUIDE for 1926-27 is released with the sincere hope that it \ ,
will again perform a worthwhile service in advancing the ideals of modern Heating and Ventilating.
Guide Publication Committee
'. ,
Perry West, Chairman
J
A. R. Acheson J. E. Bolling L. A. Harding C. V. Haynes E. V. Hill .
S. R. Lewis
W. J. McConnell
C. L. Riley
A. C. Willard
C. P. Yaglou
.
` . 'i
; ' .
;
V'---'--A-
r
f.
* ` .. , t.
j i IV
Qontents
~ Page Preface............................................................................................................................................... "j Code of Ethics.........................................................................................................;........ :............ v"
Heating Section.................................. i...................... 1-196
Chapter 1. Chapter IL Chapter III. Chapter IV. Chapter V. Chapter VI. Chapter VII. Chapter VIII. Chapter IX. Chapter X. Chapter XI.
Chapter XII. Chapter XIII. Chapter XIV.
Heat Losses from Buildings..................................................................... 5 Heating by Radiation........................-....................................................... 33 Steam Heating Systems...:......................................................................... 53 Systems and Piping for Hot Water Heating...................................... 75 Greenhouse Heating Systems................................................................... 89 Water Supply Systems and Piping........................................................ 99 Steam and Hot Water Heating Boilers--................................-........ 107 Code for Testing Low-Pressure Steam Heating Boilers................ 115 Pumps for Heating and Ventilating Equipment................................ 125 Warm-Air Furnace Heating...................................................................... 143 Oil Fuel for Industrial and Domestic Heating....:............................ 163 Gas Heating.............................................................................................. -- 169 Automatic Heat Control................-.................................................. -..... 177 Insulation..................... .'..................................................... :.......................... 187
Ventilation Section............................................ 197-296
Chapter XV. Chapter XVI. Chapter XVII.
Chapter XVIII. Chapter XIX. Chapter XX. Chapter XXI. Chapter XXII. ' Chapter XXIII. Chapter XXIV. Chapter XXV. Chapter XXVI.
Ventilation..........................................................................---................... 197 The Hill Synthetic Air Chart................................-.............................. - 209 How Temperature, Humidity and Air Motion Affect Human Comfort.................. ..................................=..................................................... 215 Systems of Ventilation..................................................,.......................... 227 Design and Construction of Air Ducts......................................;........ 239 Air Washers and Filters................ -.......................................................... 245 Air Conditioning and Cooling...................:........................................... 249 Drying....... ................................-................................................................... 261 Ozone in Ventilation........ .......................... -............................................. 265 Exhaust and Collecting Systems............................................. .............. 273 Mechanical Draft................................... -.................................................. 285 Ventilators and Natural Ventilation.................................................... -289
' Consulting Service Section...........-.................. ' 297-302
Catalog Data Section...........................;........ . 303-580
Manufacturers' Catalog Data........................................................................................... 303 Index to Technical Data Section (p. 1-296).......... ................................... -................ 557 Index to Modern Equipment.............................................................. ..................... -.......-...... 563 Index to Advertisers.........................................................................................................-........ 577
Roll of Membership.......... ............................ -............ 1-56
Officers and Council--1926-27.............................................. -...............-.................r------Officers of Local Chapters--1926- 27...................................... ........................... -..... ...... Alphabetical List.................................................................................:....................................... Summary of Membership............. .......................:............................... -.................................... Geographical List.---................................ -.................................... ................-..... -....... -............ Past Officers....................................................................................
2 4 43 44 53
CODE of ETHICS for ENGINEERS
NGINEERING work has become an increasingly important factor
E in the progress of civilization and in the welfare of the community. The engineering profession is held responsible for the planning, construc tion and operation of such work and is entitled to the position and authority which will enable it to discharge this responsibility and to render effective service to humanity.
That the dignity of their chosen profession may be maintained; it is the duty of all engineers to conduct themselves according to the principles of the following Code of Ethics:
J--The engineer will carry on his professional work in a spirit of fairness to employees and contractors, fidelity to clients and employers, loyalty to his country and devotion to high ideals of courtesy and personal honor.
2-- He will refrain from associating himself with or allowing the use of his name by an enterprise of questionable character.
3-- He will advertise, only in a dignified manner, being careful to avoid
misleading statements.
'
4-- He will regard as confidential any information obtained by him as to
-v<J the business affairs and technical methods or processes of a client or employer.
6--He will inform a client or employer of any business connections, interests or affiliations which might influence his judgment or impair the disinterested quality of his services.
6-- He will refrain from using any improper or questionable methods of soliciting professional work and will decline to pay or to accept com missions for securing such work.
7-- He will accept compensation, financial or otherwise, for a particular service, from one source only, except with the full knowledge and consent of all interested parties.
8-- He will not use unfair means to win professional advancement or to injure the chances of another engineer to secure and hold employment.
9-- He will cooperate in upbuilding the engineering profession by exchang ing general information and experience with his fellow engineers and
a students of engineering and also by contributing to work of engineering
societies, schools of applied science and the technical press.
10--He will interest himself in the public welfare in behalf of which he will be ready to apply his special knowledge, skill and training for the use and benefit of mankind.
VII
' American Society of Heating and Ventilating
Engineers Guide
1926-27
. PART I
HEATING
ALTHOUGH there are many ways of heating buildings the results required are the same no matter what method is used, namely to provide enough heat to compensate for the losses from the structure and maintain an adequate temperature for healthful living or working conditions.
Recognizing that uniform practice in the design of heating systems and some standards in the installation of the necessary piping and equipment are desirable the Society has undertaken the compilation of the most practical information available on the subject for the use of architects, engineers, contractors, students, etc., and for this data has drawn upon the experience of its members, the results of its ResearchLaboratory investigations, reports of its technical committees, the Transactions and other reliable sources.
Heating, like any other service, depends largely upon conditions to be met and the quality of service required. The capacity of a heating system is generally based upon the most severe conditions of outside temperatures and wind velocities to be found in a .particular locality. Its design should be governed by the character of the building, the purpose to which it is devoted, the period during which it is to be occupied and the reasonable and most practical methods for operating the heating system should be taken into consideration by the engineer. '
Attention is called in this connection to the following:
.
<
That the average winter requirements (extending over a period of about 200 days in the colder climates and 150 days in the milder climates) are about 40 per cent, in the colder climates and about.60 per cent in the milder climates, of the requirements generally estimated for the most severe winter conditions, also that these severe conditions exist for just a few dayseach season. The load factor of a heating system averages from 40 to 60 per cent of the maximum and is considerably below this during a large part of the heating season. Then a heating system designed for maximum conditions will be
1
American Society of Heating and Ventilating Engineers Guide, 1926-27
operating under a comparatively low load factor for the greater part of the time and may be correspondingly inefficient and uneconomical, unless properly designed to meet these conditions.
In the smaller plants this is hard to overcome without either having a plant too large for economy or too small to heat up in a reasonable time. This is sometimes attempted by having the normal capacity of steam boilers about 60 per cent of that required for maximum conditions which provides for their average operation at about normal capacity and at corresponding overloads for the maximum conditions. In order to make this successful the boiler plant must be adapted to operate successfully on at least 50 per cent overload for short periods.. In larger plants the boilers may be divided into two or three units, so that one unit may be operated during mild weather, one or two units during average weather and the entire plant during extreme weather which arrange ment is ideal for flexibility and economy.
Another important design problem is to bring the building up to its working tempera ture. This is a general requirement for buildings that are not heated over night, or which are used periodically and not heated during the time that they are not used. Recent tests have indicated that from 10 to 20 per cent more fuel is required for main taining normal working temperatures in office buildings throughout the 24 hours than is ordinarily required for maintaining working temperatures throughout the day and allowing the heat to be shut off during the time that the building is not in use. It may be assumed that other classes of buildings would show similar results.
In office buildings, factories and. other work places, it is not generally considered so necessary to have the temperature up to normal at the beginning of the working period as it is in schools, churches, theatres and other places of assemblage where the occupants are sitting still, and for this reason the relative capacity of the heating system may be less.
In school buildings and other buildings where the heating of the air for ventilation
is a large part of the load, this factor may be greatly reduced by recirculating the air
during the heating up period, so that while the entire normal average load on/the
building may be from two to three times as much for heating the air as for supplying
the direct radiation the heating-up load for the air may be reduced to from one-half to
one-third of its normal value, so that the total load may not be more than twice the
direct radiation load.
*
By continuous recirculation for the ventilation, arranged to vary the amount of .air
taken in from the outside from 100 per cent at an outside temperature of 55 deg. to
25 per cent at an outside temperature of 0 deg. the boiler capacity required for heating
the air may be held practically constant at about 25 per cent of that required for UK)
per cent of 0 deg. air from the outside.
.
. The load factor of the average heating plant is such that the total heat-required per
month will vary according to the following, when measured in percentage of the total
heat required for the season:
October November December January
February
March
April
7%
12%
17%
20%
!8%.'
16%
io%~
All of these points are covered in the chapters which follow outlining
the current practice in determining the heat losses from buildings,
selecting the proper size radiators, the correct pipe size, an adequate
boiler, explaining the principles of design for a steam, hot water or warm
air system, heating with oil or gas, temperature control methods and
methods of insulation.
'
In making plans for heating and ventilating, systems the following symbols for drawings are recommended:
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American Society of Heating and Ventilating Engineers Guide, 1926-27
-- -- -- -- ---------------------
High pressure steam supply pipe Low pressure steam supply pipe ' Hot water pipe--flow Return pipe--steam or water Air vent line
Hh
u
GH----Gi--
. -X-
-<f-
Flanges Screwed Union
Elbow Elbow--looking up Elbow--looking'down
Tee Tee--looking up .= Tee--looking down
. .
4- -Ab
m-
Gate valve Globe valve Angle valve Angle valve--stem perpendicular
4--A- Lock shield valve
-Ph
Check valve
-tty-
Reducing valve
a a Diaphragm valve
. .. Oh
Diaphragm valve--stem perpendicular 3
American Society of Heating and Ventilating Engineers Guide, 1926-27
Thermostat
V
H
Radiator trap elevation Radiator trap--plan
a
cn
S
C---- 3
O
Expansion joint
Column radiator--plan
'
a Column radiator--elevation
Wall radiator--plan
d Wall radiator--elevation
8 Pipe coil--plan Pipe coil--elevation
.
Indirect radiator--plan
0 Indirect radiator--elevation
0 0
Supply duct--section Exhaust duct--section
Butterfly damper--plan (or elevation)
-t.1-
Butterfly damper-elevation (or plan)
Deflecting damper square pipe
Vanes
,
Air supply outlet
1 Exhaust outlet
4
Chapter I
HEAT LOSSES FROM BUILDINGS
THE procedure to be followed in determining the heat loss from anybuilding can be divided into seven consecutive steps, as follows:
1. Determine on the inside air temperature, at the breathing line, which is to be maintained in the building during the coldest weather.
2. Determine on an outside air temperature for design purposes, based on the minimum temperatures recorded in the locality in question, which will provide for all but the most severe conditions. Such conditions as may exist for only a few con secutive hours are readily taken care of by the heat capacity of the building itself.
3. Select "or compute the heat transmission coefficients for outside wall and glass, also for floor, or top-floor ceiling, if these are next to unheated space. Include roof if next to heated space.
4. Measure up net outside wall, glass and roof next to heated spaces, as welf as
any cold floor or ceiling next to unheated space. Such measurements are made from
budding plans.
.
5. Compute the heat transmission losses for each kind of wall, glass, floor, ceiling
and roof in the building by multiplying the heat transmisison coefficient in each case
by the area of the surface in square feet and the temperature difference between the
inside and outside air. (See paragraphs 1 and 2 above.)
.
6. Select unit values and compute the heat equivalent of the infiltration of cold air taking place around outside doors and windows. These unit values depend on kind or width of crack and wind velocity, and when multiplied by the length of crack and the temperature difference between the inside and outside air, the result expresses the heat required to warm up the cold air leaking into the building per hour.
7. The sum of the heat losses by transmission (paragraph 5) through the outside
wall and glass, as well as through any cold floors, ceilings or roof, and the heat equivalent
(paragraph 6) of the cold air entering by infiltration is the total heat required for
warming any building.
INSIDE TEMPERATURE
The inside air temperature which must be maintained within a building, and which should always be stated in the heating specifications', is understood to be the temperature at the breathing line 5 ft. above the floor and not less than 3 ft. from the outside walls. Inside air tempera tures usually specified vary in accordance with the use to which the building is to be put, arid Table 1 presents values which are in conformity with good practice.
Data prepared especially for The Guide by Arthur C. Willard, professor of Heating and Ventilation and Head of Department of Mechanical Engineering, University of Illinois, Urbana. III.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 1. Inside Temperatures Usually Specified
Type of Building
Deg. Temp.
Warm Air Baths................................ 120
. no
Hospital Operating Room__ ......... 85
Bath Rooms-............................ ....... 85
Paint Shops.............. ................. ......... 80 Hospitals............................ ,....... ......... 72 to 75
Public Buildings................................. 68 to 72
Deg. Temp.
Residences....................:................. 70
70 Factories...................................... ... . 65 Stores............................................... 65 Gymnasiumt............................... .. 55 to 60 Machine Shops.......................... ... 60 to 65 Foundries, Boiler Shops, etc. ... 50 to 60
In making the actual heat loss computations, however, for the various rooms in a building it is often necessary to modify the temperatures given in Table 1 so that the air temperature at the proper level will be used. By "air temperature at the proper level" is meant, in the case of walls, the air temperature at the mean height between floor and ceiling; in the case of glass, the air temperature at the mean height of the glass, in the case of roof or ceiling, the air temperature at the mean height of the roof or ceiling above the floor of the heated room, and in the case of floors, the air temperature at the floor level. In the case of heated spaces adja cent to unheated (no heat of any kind) spaces, it will usually be sufficient to assume the temperature in such spaces as the mean between the tem perature of the inside heated space and the outside air temperature.
The air temperature at the mean height between floor and ceiling is
the "breathing line" temperature, Table 1, for rooms not over 10 ft.
in height. For rooms above this height, add 2 per cent per foot of height
to the breathing-line temperature for each foot or fraction of a foot
difference between the mean height of the vertical wall glass roof or
ceiling surface, and the height of the breathing line.
,
In determining mean air temperatures just above floors which are next
to ground or unheated spaces, a temperature 5 deg. lower than'breathing-
line temperature may be used, provided breathing-line temperature is
not less than 55 deg. fahr.
.
' OUTSIDE TEMPERATURE
,
The outside air temperature used in computing the heat loss from.a building is seldom taken as the lowest temperature ever recorded in a given locality. Such temperatures are usually of short duration and are rarely repeated in successive years. It is therefore evident that a tem perature somewhat higher than the lowest on record may be properly assumed in making the heat loss computations.
The outside temperature to be assumed in the design of any heating system must not be more than 151 deg. fahr. above the lowest recorded temperature as reported by the U. S. Weather Bureau (Table 2) during the preceding 10 years for the locality in which the heating system is
1There seems to be no agreement in this country at present as to the method of arriving at the proper outside temperature to be used in the calculations or design of a heating system. Some offices use the average of the lowest yearly temperatures for the preceding ten years. The Heating and Piping Contractors' National Association in their'.Code arrive at the assumed outside temperature to be used in the design by including a factor for wind movement as recorded for the locality in.question. Thus, of two localities with the same minimum recorded outside temperature, the locality having the higher wind velocity would be assigned a lower outside air temperature for the calculation or design of a heating system than- the other locality. However, since the effect of wind movement is actyally reflected only in the heat trans mission coefficients of wall, roof or glass, and in the inleakage (infiltration) of cold air at the cracks around outside windows and doors, its effect should be applied to the transmission and infiltration coefficients and not to the outside air temperature: In this chapter, the practice of correcting transmission and infiltration coefficients for unusual wind movement is followed and the method discussed in detail.
6
American Society of Heating and Ventilating Engineers Guide, 1926-27
to be installed. The outside temperature assumed and used in the design,
should always be stated in the heating specifications.
Table 2. Coi~ A
Climatic Conditions Compiled from U. S. Weather Bureau. Records
li|
Col. B
Col. C
Col. D
Col. E
Col. F
City
Average Temp., Oct. 1stMay 1st
Lowest Tempera
ture
Average Wind Vel ocity Dec., Jan., Feb., Miles per
Hr.
Direction of Prevail ing Wind, Dec., Jan.,
Feb.
Ala..
Ariz..
Ark..
Cal..
Colo...
Conn-- DC...... Fla_____ Ga.......
Idaho..
Bl
ind..
Iowa--
Kans.._
Ky.-- La..:--
Me..
Md..... Mass.. Mich..
Mobile--.................. Birmingham......... Phoenix.................. Flagstaff................. Fort Smith............ Little Rock--........ San Francisco___ Los Angeles.......... Denver.................. Grand Junction-
New Haven......... Washington......... Jacksonville......... Atlanta..................
Minn------
MissMo--
Mont--
Nebr..
Nev...
N. H... N. J-. N. Y...
N. M--
57.7 53.9 59.5 34.9 49.5 51.6 54.3 58.6 39.3 39.2 38.0 43.2 61.9 51.4
42.5 36.4 36.4 39.9 40.2 44.1 33.9 32.1 38.9 .40.2 45.2 61.5 56.2
31.1 33.6 43.6 37.6 29.1 35.4 27:6 25.1 29.6 56.0 40.3 43.3 43.0 34.7 . 27.7 37.0 34.6 39.6 37.9 33.4
41.6 . 35.1 . 34.7 . 40.3 . 38.0
-1 -10
16 -25 -15 -12
29
28 -29
-16 -14
-15 10 -8 8
-13 -20 -23 -24 -25
-15 -32 -35
-25 -26 -20
7 -5 -23
-17 -7
-13 -27 -24
-27 -41 -33 . -1 -24 -22 -29
-49 -57 -29 -35
-7
-28 -35
-7
-24 -14
-6 -13
8.3 8.6 3.9 6.7 8.0 9.9
7.4 5.6 9.3 7.3 8.2 11.8 8.3 4.7 9.3 17.0 10.2 11.8 8.4 6.1 12.2 7.3 10.4 9.3 9.6 7.7 13.8 10.1
7.2 11.7 11.3 13.1 11.4 11.1 11.5
7.6 9.1 11.8 11.3
8.7 10.9
9.0 9.9 9.5 6.0 10.6 7.9 17.7 13.3 7.3
N N E SW E NW
N NE S SE N NW NE NW NW E SE SW ' NW
s
S NW NW N NW SW
N SE W NW ' NW W
w
SW
NW SW NW SE NW NW SE
W SW
N W SE
1E NW NW S
w
NW NE .
7
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 2. Climatic Conditions Compiled from U. S. Weather Bureau Records__ (Continued)
Col. A
Col. B
Col. C Col. D Col. E Col. F
State
City
Average Temp., Oct. 1stMay 1st
Lowest Tempera
ture
Average Wind Vel ocity Dec. Jan., Feb. Miles per
Hr.
Direction of Prevail ing Wind, Dec., Jan.,
Feb.
N. C................ Raleigh.................................
Wilmington......................................... N. D................ Bismark.............................................
Devi! 's Lake. ............... ............... Ohio................ . Cleveland...........................
Columbus............................................ Okla................. Ore................... Baker. ................................
Portland............................................... Pa..................... Philadelphia.........................
Pittsburgh.... .................................. R. I.._..............
S. C.._ ........... Charleston-- ....................... Columbia..........................%................
S. D................. Huron....................................
Rapid City.......................................... Tenn................ Knoxville..............................
Memphis....................................... Texas--............ El Paso.......................... ...
Fort Worth. ....................... ... San Antonio........................................ Utah...... .......... Modena............................................ Salt Lake City..................... Vt..................... Va.....................
Lynchburg.......................................
Richmond....................................... Wash..... ....... Seattle....................................
Spokane...... ......................................... W. Va............. Elkins-- .............. . ...
Parkersburg................................... Wis...................
La Crosse.......................... . Milwaukee.......................................... Wyo................. Sheridan........... .... Lander. ................................
49 7 53.1 24.5
18.9 3fi 9
39.9 4S 0 34 1
45.9 41 9
40.8 37 ft 5ft 9
53.7 2ft. 1
32.3 47.0 50.9 53 0 54.7 60.7 38.1 40.0 29 3 49 1
45.2 47.4 45.3
37.5 3ft.ft 41.9 2ft.fi
31.2 33.. 0 31.0 28.9
2 73
5 8.9 sw
--45
NW
-44
11.4
w
17 sw
-20
9.3 sw
17 *
20 6 0 cr -2 6^5 H s
5 11 0 NW
-20 9 7
-2
13.7 14 6 11 0 8^0
NW NW N
NE
43
-34
-- 16 -9 2
11 5 7.5 65 9^6
10 5
NW
.w" sw
NW
NW
-8 11.0 NW
4 8.2 N
-24 8.9 : W
-20
27 2
4.9
1Q? 9Q
SE `
s
N
-7 5.2 NW
-3 3
--30 --21 -27 --36
7.4 9.1
4 ft
6.6 12_g
S
SE
sw
W'
s sw
-43
5r6 NW
-25
11."7
W
--45
NW
-36
'3.0 . NE
If U. S. Weather Bureau reports are not available for the locality in
question, then the U. S. Weather Bureau reports for the-station. nearest
to this locality are to be used, unless some other temperature is specifically
stated in the specifications.
'
In computing the average heat transmission losses for the heating season the average outside temperature from October 1 to May 1 shall be used. This average temperature -is to be that reported by the U. S. Weather Bureau during the preceding lOyears, for the locality in question.,
General Statement on Temperatures and Wind Velocity
In order that no misunderstanding may occur, the specifications for all heating systems or plants shall include a clause stating the following:
1. The lowest recorded outside temperature in the locality, as reported by the U. S.
Weather Bureau for the preceding 10 years;
8
American Society of Heating and Ventilating Engineers Guide, 1926-27
2. The outside air and inside breathing-line temperatures which were assumed and actually used in making the heat loss computations;
3. The average wind velocity in miles per hour for December, January and February, and the direction of the prevailing wind during these same months for the locality in which the heating plant is located--both wind velocity and direction are to be taken from the U. S. Weather Bureau records for the preceding 10 years.
HEAT TRANSMISSION COEFFICIENTS
Definition
The amount of heat expressed in B.t.u. which is transmitted in 1 hr. per square foot of the material as used in the building, for a difference in temperature of I deg. fahr. between the air on the inside and outside of the building, is called the coefficient of heat transmission for the material. The heat transmission coefficient for any given building material depends on the structure of the material and its density. Heavy or dense materials, the weight of which per cubic foot is high; usually transmit more heat than light or less dense materials, the weight of which per cubic foot is low.
Transmission Coefficients
By means of suitable tests on an actual wall construction, heat trans mission coefficients (Table 6) may be determined directly, or they may be computed if certain physical constants are known. If tests are made to determine heat transmission coefficients, the inside and outside air temperatures should correspond with those actually existing in heating practice, and the amount of air movement, both on the inside and outside of the test wall, should be definitely stated in reporting the coefficients. Since actual temperature differences vary widely in different parts of the country, it is desirable to adopt some standard basis for testing, such as 70 deg. inside and 0 deg. outside, and in very precise work make a correction for other temperatures. It has been found that the absolute mean temperature of the wall affects the coefficient materially. The coefficient increases with the absolute mean temperature.
Tests are usually run under still air conditions, which means there was
no wind movement, during the test, over the surfaces of the wall. In
practice, some wind movement over the exterior surface of the wall
should always be allowed for; hence still air coefficients cannot be
used in actual work as they do not provide for the normal wind movement
over the outside of the building in the locality in question during the
heating season. Moreover, still air transmission coefficients cannot
be corrected to provide for moving air conditions by multiplying by a
single constant factor, for the reasons set forth under Effect of Wind on
Heat Transmission Coefficients in Appendix to Section III., Code of
Minimum Requirements of the American Society of Heating and
Ventilating Engineers.
"""
The coefficient of heat transmission' of various building materials and types of construction as given in Table -6, are for still air and for a wind movement of_15 miles and are generally applicable to heat trans mission computations using equation (9). Such heat transmission co
.9
>/
American Society 0/ Heating and Ventilating Engineers Guide, 1926-27;
efficients are always based on the difference between the air.temperatures on the inside and the outside of the wall'.
Transmission Coefficients by Computation
.
If heat transmission coefficients are to be computed, and in many, if not most cases, they should be computed, the following analysis of the transmission of heat through a simple, solid wall is used as the basis for such computations.
The diagram in Fig. 1 exhibits four important temperatures: First the air temperature t inside of the building; second, the temperature k of the inside surface of the wall; third, the temperature l, of the outside surface of the wall, and fourth, the air temperature to outside of the build . ing. Heat reaches or enters the inside surface of the wall by radiation, and convection, since the air and objects A within the building are always
American Society of Heating and Ventilating Engineers Guide, 1926-27
Now Ki may not equal K,, in which case (k~k) will not equal (l~k). Usually, in an actual wall exposed to wind on the outside, Ko (Table 5) is greater than K, and (k~k) must be less than (t-k). Moreover, the heat Hc passing through the wall by conduction is equal to H, and Ho, and if C is the coefficient of conduction = B.t.u. transmitted per hour per square foot of material per 1 in. thickness per degree difference
between the surface temperatures, then
H, = Ho = He = ~ (i, - k) S
(3)
where x => wall thickness in inches.
Fig. 1. Temperature Curve or Gradient from Air Inside to and through Wall TO Air Outside, Wall Material Assumed Air-Tight
of
A represents warm surfaces at temperature t of inside outside air. For an actual temperature gradient curve
air; B represents see Fig. 2.
cold
surfaces
at
temperature
/o
warmer than the inside surface of the wall, when the inside air tempera
ture t is greater than the outside air temperature to- This heat must then
pass through the material of the wall from inside to outside surface by
conduction, and is finally given off from the outside surface by radiation
and convection, provided, of course, that equilibrium has been established
and all four temperatures are constant.
,.
The amount of heat reaching or entering the wall per. hour depends on t and k and a coefficient K, varying with the character of the Wall
material. K, may be defined as the B.t.u. per hour entering each square foot of wall surface per degree difference between the inside air tempera ture t and the inside surface temperature k.. Hence the heat received by inner surface of the wall per hour by both radiation and convection is
Ik - K, (i - l,) S j
(1)
where 5 is the inner wall surface area in square feet and the other terms
are as heretofore indicated.
''
Whatever amount of heat H, enters the inner wall surface must be
given off from the outer wall surface, so that if Ho represents heat emitted from outer surface
' H, ~ Ho -- K-o {to -- to) S.
(2)
10
Fig 2. Temperature Gradient Curves for Glass (Taken from. Bulletin No. 24, Engrg. Exp. Sta., Pennsylvania State College)
These equations (1), (2) and (3) are fundamental and are used for determining values for K,, Ko and C for actual wall materials by test. They cannot be used for computing heat-losses in an actual building, since the surface temperatures U and k are seldom known, although these surface temperatures can be determined in a test by means of thermo couples. Hence, for actual conditions where the only temperatures known are the inside and outside air temperatures t and t0, it is necessary to use a transmission coefficient U -- B.t.u. transmitted per hour per square foot of wall surface per degree difference between the inside and Outside air temperatures. Values of U for a limited number of walls are given in Tables 6-12. The heat H transmitted per .hour from air inside to ait
outside is then computed as.follows:
II = U (t - to) S
(4)
11
American Society of Heating and Ventilating Engineers Guide, 1926-27
and since H = H, = H, = Hc, the right hand members of equations (1),
(2), (3) and (4) are all equal.
'
The coefficient U. may be determined by test, or it may be computed for any wall provided values for Ki, K> and C are known. By proper substitution in the four equation^, the unknown temperatures t, and h
can be eliminated and the value of the transmission coefficient for a simple wall x inches thick is
A, + K, + C
and for a compound wall of several materials having thickness in inches of x,, xt, x,, etc., the coefficient is
U= xJL; 4+. ^1 +i c*i: +. a + c7+etc-
(6)
As in the case of the simple wall, K, and K, are always the inside and
outside surface coefficients for the two materials in contact with air.
If the air is still (no wind), then for the same material K, and K, are the
same, and Kx = \ but if the outside air is in motion then Kt is always
greater than Ki and will increase as the wind velocity increases. Values
for Ki in still air as determined by various investigators are given in
Table 3. Values for C, the conductivity of building materials, are given
in Table 4, and are taken from the published values of various investiga
tors. It should be noted that values of C as well as U are dependent on
the temperature range, and it is therefore desirable that the investigator
determine conductivity values when the wall is subjected to an air
temperature of about 70 deg. fahr. on the inside and about zero on the
outside.
--
Table 3. Surface Coefficients (X,) for Various Building Materials, under
Still Air (No Wind) Conditions
'.
.
The values in the table are in B.t.u. per sq. ft. of wall surface per hour per 1 deg. fahr.
difference between the mean air temperature in the room and the inside surface tempera ture of the wall.
Building Material
Asbestos (sheet).............................. Brickwork (ordinary).... ............... Cement Plaster (finished)........... Concrete.--........................................ Corkboard.............. .......................... Glass (window)............................... Magnesia (blocks).......................... Wood (finished surface)--........... Building paper.--............................
Average of all values.......
Surface Coefficient Ki (Still Air)
Harding and Willard
Wood
1.40 1.40 0.93 1.30 1.25 1.50 1.45 1.40
1.34
1.20 - 1.90
1.40
. `Average of both sides of glass 0.12 in thick and for 70 deg. fahr. total temperature difference from air to air with moving air on one side. Probable value for still air on. both sides 1.60.
12
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 4. Conductivity Coefficients for Various Building Materials2
Building Material
Harding and Willard
Authority
Peebles**
Norton
|U. S. Bur. Istandards
Coefficient of Conductivity C and Weight per Cu. Ft.
Lb. per Cu. Ft.
Asbestos (sheet).'............................. .
Asbestos Board (corrugated)........
Rrirlrwfirlf
. . ..
Concrete (Stone12:4 M ix)777.77.
Ginder Concrete--........................... Cork Board.--.................................... Magnesia (board).............................. Wood (Fir, J-fi in. thick)--.............. Yellow Pine Sheathing.................... Drop Siding......................................... Pine Plank.-......................................... Maple Flooring.......................-.......... Mortar (lime)--................................ Oak Door............................................. Wood Lath and Plaster.................. Metal Lath and Plaster.................. Gypsum Partition Tile................... Pyrobar (gypsum)............................ Gypsum Reinforced Roof Tile.__ Insulex (very light gypsum)......... Cabot's Quilt...................................... Insulite................................ .'............... Celotex................................ 1................
Fibrofelt.......... .................................... Linofelt..................................... .......... Lith....................................... ............... Mineral Wool (medium packed). Plaster Board:-................................................... Porete.............................................................-....... Sawdust (ordinary)......................................-- Shavings (ordinary)...... ................................... Cypress (across grain)--------.-........................... Keystone Hair............... ..................................... Hair Felt._............................................................ Roofing Paper and Pitch................................ One thickness building paper.... ...................
One course No. 2 tar felt............................... Cornell Wall Board A in; thick................... Glass (act. glass 91.4% total area)._.......... Double Glass ^ in. air space (glass 69.3%
total area)....................................................... 2 in. Tile, H in. plast. both surf................. 4 in. Tile, M in. plast. both surf................. 6 in. Tile, V2 in. plast. both surf--............... 2 in. Tile, plastered as above and roofing
covered
48.3 20.4 132.0 140.0
9.7 13.5 33.4
0.29 0.48 4.00* 8.30 0.32 10.51 1.00
8.00
,2.06 1.50*** 1.00*** 0.60*** ,0.47*** 0.84
6.30 5.20 0.30
6.30
1.00 1.10
1.20
1.36 1.10 1.25 1.00
1.20 0.50 0.40 0.33 0.33
1.25 0.83
0.29 0.25
4.20*** 3.00*** 2.50***
1.382
0.350f
0.56t 0.321f 0.2951 67329 0.300 0.379 0.275 3.040 0.941 1.040 0.707 0.667 0.2711 0.2461
(See Transactions. Ambkcian Society of Heating and Ventilating Engineers, Vol. 26. p. 385.
For damp or wet brickwork take C = 5. **Flat plate method using a test sample 18 in. sauare and up to 4 in. in thickness. ***For thickness-anti construction stated, not per 1 in. of thickness. The values in the tables are in B.t.u. per square foot of wall surface per hour per inch thickness per 1 deg. fahr. difference between the two surfaces, for thoroughly dry materials. For use where air temperature difference on two sides of wall is about
70 deg. and outside air is near zero.
__
*See Chapter IX by-Charles H. Herter of the Report of the Insulation Committee, A. S. R. E., Annual Meeting 1Q22, Revised to 1924. entitled "Heat Transmission of Insulating .Materials,'' for the
most comprehensive collection of heat transmission data relating to building and insulating material
which is now in print.
.
13
American Society of Heating and Ventilating Engineers Guide, 1926-27
In the case of air space construction, two additional surface coefficients
for each air space must be inserted in either equation (5) or (6). These
surface coefficients may be taken the same as the K, (still air) values for
the materials forming the sides of the air spaces; thus for a simple wall
with one air space,
'
V= K,
C
(7)
or
3 1x k+k+c
(8)
With certain very special forms of construction which have irregular
air spaces, it is necessary to use the conductivity for the unit construction
as actually assembled in the wall. This condition exists when hollow tile x2
is used as furring, in which case is replaced by yr, where Cu is the unit (1 Cu
conductivity. See third footnote of Table 4.
Table 5. Factors to be Used in Determining Values of Outside Surface Coefficients (Kf) under Moving Air Conditions
Wind Velocity in Miles per Hour
5 10 15 20
Brickwork
2.38 3.20 3.76 4.22
Multipliers of Ki* Wood
2.19 2.71 2.95 3.02
Average
2.28 2.96 3.36** 3.62
10 20 Above 20
Additional Values--Smooth Surface
....... ____ ........
2.20 2.60 3.00
Taken from Engineering Experiment Station Bulletin No. 102, of the University x>f Illinois., Addi
tional values from Engineering Experiment Station, Pennsylvania State College, reported by Professor
Wood. Tests at Pennsylvania State College indicate character of surface, rough or smooth, .more
important than material of surface.
..
This is usually taken as 3 even.
'
In each case factor is based on still air coefficient (1C,) for same material. For con
ditions where wind velocity is not known use the factor (3) or take IC, as.37C> for same
material.
, ' '
Examples of Computations for. Walls
.
.
The following examples, Fig. 3, will serve to illustrate the method of computing heat transmission coefficients for building walls, including solid walls (simple and compound) and hollow walls. In these examples it has been assumed that a wind movement of about 15 miles per hour exists on the outside of the wall.
14
American Society of Heating and Ventilating Engineers Guide, 1926-27
Tables 6 to 12 give transmission constants for a number of types of building construction. These values were determined by computation similar to that shown in Fig. 3, using the values for K and C indicated.
C = conductivity constant for the material. Cpi, Ca, Cb etc. conductivity for plaster, stucco, brick etc. Ct4 in. = conductivity constant for the actual (4 in.) thickness of tile. Considerable variation exists in heat transmission constants used by different authorities, which is due in part to the fact that further research work must be done along this line and also to the fact that the same kind of building material may differ widely depending upon the source and treatment of the raw material from which it is made.
Transmission constants are given for both still air and 15 mile wind. For practical purposes, the constants for any other wind velocity may be obtained with a fair degree of accuracy._by interpolating between these values. In. a table of this kind it is practically impossible to give values for all types of construction in use and the engineer will frequently be required to determine his own values, as in the examples Fig. 3.
15
American Society of Heating and Ventilating Engineers Guide, 1926-27
American Society of Heating and Ventilating Engineers Guide, 1926-27
a b l e 6. H e a t r a n s m is s io n from V a r io u s ypes of W a l l C o n s tr u c tio nT T T
16 17
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 6 (Concluded). Heat Transmission Through Windows and Skylights
I m3------- 7------......................... ~ U0Btu-
' \
Values given in Table 6 based upon the following
GLASS
.WOOD
authorities:
^ t,
............... -0.60
Reports of the Research Laboratory of the
rt*iLA5>.
I VZZh---------- *--- ............................1.10 "
' y
GLASS
SOLID
-- yr v
---
_>*gTAL
tz<ivs
0.6' 0 0,
GLASS \
err'i
im
`1
*-----C---z-n--\----L--4rtl.
Glass
noLWr'
1.10
l _____ ,MCTAL f ff y-....................... .'..0.60
v coa
GLASS
u
EAnmgeinreicearns. Society of Heating and Ventilating
Bulletin No. 102, 1017, Engineering Experiment Station, University of Illinois, by A. C. Willard and L, C. Licfaty.
Bulletin No. 24, 1918, Engineering Experiment Station, Pennsylvania State College, by R. B. Fehr.
Bulletin No. 30, 1920, Engineering Experiment SWtoaotiodna,nPdeEn,nsFy.lvGarnuiandShtoafeter. College, by Arthur T.
Bulletin No. 3, 1923, Engineering Experiment Station University of Minnesota, by Frank B. Rowley.
Additional Coefficients from Actual Tests Based on inside and outside air temperatures with still air on inside and a wind velocity of approximately 15 miles per hr. on outside, of walls, glass and roof.
Note--For a wind movement other than 15 miles per hr. the value of U must be computed by equations (7) or (8), using the proper value for K2. See also Tables 3, 4 and 5.
. Table 7. Heat Transmission for Floors and Ceilings Special Note--Values of U taken from pages 13-16 The Guide 1924-25 appear in Tables 7-12 ind.
ASSUME THE GROUND TEMPERATURE TO BE 50 FAHR.
CONSTRUCTION
B.T.U.
.31
CONCRETE t:i.lc i npcr fill
ROUND
.29
' -30
.29
mmmme^'XZoo^
CONCRETE ^-GROUND
-10
S'CONCReTE V: *-V-CiNDER FILL
RO UN D SLEEPERS''
.07
Wmmmk:^0Z^L .1
SLEEPERS'
rm.
-----------------------^.I'/a'WOOD FLOOR
'U&;
space
./3
SLEEPERS"'
TEMPERATURE of unheated AIR SPACE TO BE 35 FAHR WITH AN
OUTSIDE TEMPERATURE OF 0 AN
CONSTRUCTION 0 BpUnhgatgd Space
Plaster""'^ r~r--^
Latb ;
Plaster'1^
La' 6
Z
Fgs
----------LMiildl Ceiling
1 H U.M III l.qTc-- ~~ I Floor H H----Joists
..
ax.u. 60
26 36 <10
_____ Floor ` E^gSaS^^^^per
.21
__----Floor ---Concrete
' ' Concrete coSted
41
1.00 86
41 36
18
American Society of Heating and Ventilating Engineers Guide, 1926-27 Table 8. Heat Transmission for Roofs*
Construction
1* Wood, 5-Ply Paper, Tar and Gravel.... 1" Wood, Felt Roofing...... .............................. 1)4" Wood, 5-Ply Paper, Tar and Gravel. 2' Wood, 5-Ply Paper, Tar and Gravel. 2Yi Wood, 5-Ply Paper, Tar and Gravel. Tin on Wood Strips..... .................................... Tin on Sheathing................................-............ Tin on Sheathing, with Paper.--................ Shingles on Wood Strips............................... Shingles on Sheathing...................................... Shingles, Paper, Sheathing, Strips--........... 4* Hollow Tile, Paper, Tar and Gravel.... 6" Hollow Tile, Paper, Tar and Gravel.... 2* Concrete, Paper, Tar and Gravel.......... 3" Concrete, Paper, Tar and Gravel.......... 4' Concrete, Paper, Tar and Gravel.......... Flat Tile on Wood Strips...... ..................... Flat Tile on Sheathing--..................... _,-- Slate on Wood Strips........................................ Slate on Paper and Sheathing........ .............. Corrugated Iron on Strips............. ................ Corrugated Iron, Sheathing.......... ................
B.t.u. per Deg. Fahr. Difference 15 mi. per
hr. wind
0.30 0.36 0.26 0.21 6.18 1.60 0.60 0.43 0.87 0.43 0.21 0.30 0.27 0.71 0.64 0.57 1.07 0.64 1.10 0.50 1.50 0.64
Additional heat transmission constants B.t.u. per square foot per hour per degree temperature
difference between inside air and outside air.
.
Table 9. Heat Transmission for Interior Walls
' . Construction
B.t.u. per
Deg. Fahr. Difference
15 mi. per hr. wind
2" Gypsum Block, Plastered Both Sides...-................. ........................... ....... -...........
0.34 0.60 0.57 0.50 0.64 0.60
Table 10. Heat Transmission for Wood Doors and Wood Partitions
B.t.u. per Deg. Fahr. Difference 15 mi. per hr. wind
Vi
tou
1" Thick 114", "
Tongued "
and "
Grooved "
1 Va" " 1)4" 1J4' " 2" 2- . * " 2)4'
2)4" " 3"-
"
*
" "
a uu
aa u u u ` ' a au
0.65 0.60 0.50 0.42 0.35 0.30
19
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 11. Heat Transmission for Walls of Various Constructions
Thickness or Board in In.
A"
1" l A" 2"
'iA'`
Two Boards With Paper Between
B.t.u. Deg. Fahr. Differ ence 15 mi. per hr. wind
0.32 0.24 0.19 0.16 0.14
Board and Corrugated Iron
Board and Sheet Iron
B.t.u. Deg. Fahr. Differ B.tu. Deg. Fahr. Differ ence 15 mi. per hr. wind ence 15 mi. per hr. wind
. 0.45 0.36 0.30 0.26 0.23
0.50 0.40 0.33 0.28 0.25
Table 12. Heat Transmission for Walls of Clapboard
Construction
Clapboard on Studs....................................................................................................... Clapboard on Studs, Lath and Plaster................................................................... Clapboard, Paper, Studs, Lath and Plaster.......................................................... Clapboard, Studs, 1" Sheathing................................................................................ Clapboard, Sheathing, Studs, Lath and Plaster.................................................. Clapboard, Paper, Sheathing, Studs, Lath and Plaster................................... Clapboard, Studs, Brick Fill...................................................................................... Clapboard, Studs, Brick Fill, Papered.................................................................... Clapboard, Studs, Brick Fill, Lath and Plaster.--............................................. Clapboard, Sheathing, Studs, Lath and Plaster with Sawdust Fill............. Clapboard, Paper, Sheathing, Studs, Lath and Plaster with Sawdust Fill
B.t.u. per Deg. Fahr. ' Difference | 15 mi. per 1 hr. wind
0.62 0.48 0.34 0.57 0.37 0.30 0.40 0.36 0.31 0.21 0.15
AREAS WHERE HEAT LOSSES OCCUR
,, ..
Heat is lost from a building b.y transmission through all of those sur
faces which separate heated spaces from the outside air or from unheated
colder spaces within the building. In general, five kinds of surfaces are
involved: (1) outside walls, (2) outside glass, (3) inside walls or parti
tions next to unheated spaces, (4) ceilings of upper floors, either below a
cold attic space or as the underside of a roof slab, and (5) floors of heated
rooms above an unheated space. In most cases, only items (1) and (2),
outside wall and glass surface, are considered. Failure to take account
of the other heat losing surfaces, items (3), (4) and (5), when they exist
in a building, has generally resulted in more or less dissatisfaction with
the operation of the heating plant, as a result of failure to heat the rooms
having such surfaces as indicated by items (3), (4) and (5).
.
The net outside wall surface is usually determined by reference to the scale plans and elevations of the building concerned. In some cases of course, the actual building may have to be measured. The total area of all outside openings which are occupied by windows and doors is accurately measured and listed as glass. The glass area is then deducted from the total outside wall area for each room and the difference is the net wall area. The outside wall areas for any floor should be based on the vertical floor to floor heights and the horizontal distance from center to center of partitions separating different rooms. If there are no partitions, measure from inside face of one wall to inside face of next wall. The areas of walls, ceilings and floors next to cold or unheated spaces are found, of
20
. American Society of Heating and Ventilating Engineers Guide, 1926-27
course, by taking the inside dimensions of such areas, measured on the
heated side.
.
CALCULATIONS FOR HEAT TRANSMISSION LOSSES
The calculations for heat transmission losses are made by multiplying the area S in square feet of wall, glass, roof or floor through which the
loss takes place, by the proper coefficient U for such construction (Tables 6 to 12, or by computation as described under Transmission Coefficients by Computation) and by the temperature difference between the inside air
temperature t at the proper level (in many cases not the "breathing line")
and the outside air temperature t,,. Therefore,
Ht = SU (I-l0)
(9)
where
_
.
Ht = B.t.u. per hr. transmitted through the material of the wall, glass, roof or floor.
5 =-area in sq. ft. of wall, glass, roof or floor, taken from building plans or actually measured. (Use the net inside' or heated surface dimensions in
all cases.)
'
XJ = coefficient of heat transmission or B.t.u. per hr. per sq. ft. per I deg. fahr.
difference between the inside and outside air temperature for air conditions
such as exist in the given locality in coldest weather.
(I -- tf) = temperature difference between inside and outside air, in which t must . always be taken at the proper level. Note that I may not be the "breathing
line" temperature in many cases.
For examples showing application of equation (9) to practical examples
see Applications at the end of this chapter, in which the heat require
ments are computed for typical cases.
.
Wind Movement
The effect of wind on the heating requirements of any building should be given consideration under two heads:
1. Wind movement increases the heat transmission of walls, glass, and roof, affecting poor walls to a much greater extent than good walls.
2. Wind movement materially increases the infiltration (inleakage) of cold air through the cracks around doors and windows, and even through the building materials themselves, if such materials are at all porous.
It is entirely possible that a building may require more heat on a windy day with a moderately low outside temperature, than on a quiet day with a much lower outside temperature. It will therefore be evident that the wind movement in any locality must be given careful considera tion in computing the probable heating requirements of a building, and for the purposes of calculation, not less than the average wind movement in any locality during December, January and February should always be provided for in computing (1) the heat transmission of a building, and (2) the heat required to take care of the in filtration of outside air.
The first condition is readily taken care of as already explained, by using a surface coefficient K,. for the outside wall surface which is based on the proper wind velocity (Table 5). In case specific data are lacking for any locality, use an average wind velocity of approximately 15 miles per hour. In a similar manner, the heat allowance (Table 15) for infiltra tion (B.t.u. per hour per foot of crack required to raise the temperature
21
American Society of Heating and Ventilating Engineers Guide, 1926-27
of the air leaking in through one degree) through cracks, must be based on the average wind velocity for a given locality, and is explained in the next subdivision of this chapter.
, Wind movement involves both direction and velocity, and hence after transmission and infiltration losses have been computed, using coefficients which allow for average velocity, a further allowance must be made for the direction of the prevailing wind in any given locality. This shall be done by adding 15 per cent to the wall and glass transmission losses and the infiltration losses on the sides of the building exposed to the prevailing winds. Those walls which lie in the two adjacent sides of the building most nearly facing the prevailing wind are to be considered in making this correction. This is not necessarily the same as adding 15 per cent to the total heat loss of a room on the exposed sides of the building.
INFILTRATION RESULTING FROM WIND MOVEMENT
Reference has already been made to the fact that in addition to the
heat transmission of the walls, glass and roof, consideration must always
be given to the inleakage of cold outside air which must be heated to
room temperature. This inleakage or infiltration is exclusive and in
dependent of air that may be supplied for ventilation through ducts or
flues of any sort. Calculation of the heat required for this purpose is a
very simple matter if the volume of air leaking into the building pCr hour
is known.
Hi = 0.24 Q d (t -- to)
(10)
where
"'
Hi = B. t.u. per hour required for heating air leaking into building from outside temperature to to breathing line temperature t;
Q = cubic feet of air entering per hour at breathing line temperature, t. d = density (lb. per cu. ft.) of air at breathing line temperature, t.
t = breathing line temperature; to = outside air temperature for which heating system is designed; 0.24 = specific heat of air.
The determination of Q, the amount of air leaking in per hour, may be arrived at in either of two ways: (1) by assuming a certain number of air changes per hour , for each room, the number of changes assumed (Table 13) being dependent upon the type, use, and location of room, or (2) by computing the infiltration taking place through the cracks around windows and doors in that side of the room which has the greatest number of feet of such crack. In no case should the amount of crack used for computation be less than half of the total crack in the outside walls of the room. Thus, in a room with one exposed wall, take all the crack; with two exposed walls take the wall having the most crack; and with three or four exposed walls take the wall having the most crack, but in no case take less than half the total crack.
The linear feet of crack for a double hung sash is equal to the sash perimeter plus the meeting rail. For a standard type steel sash con structed of solid-rolled sections (Fenestra, Lupton and others) the linear feet of crack consists of the perimeter of the ventilating section plus the linear feet of sash section in contact with steel work as, for example, vertical and horizontal mullion steel. The perimeter of sash properly grouted with cement mortar into brick work or concrete is not to be counted as crack.
22
American Society of Heating and Ventilating Engineers Guide, 1926-27
Neither of these methods for estimating the infiltration is entirely satisfactory in view of the limited amount of data available, but for the purposes of calculation the second (infiltration) method is to be preferred
and then checked against the first (air changes per hour) method. In no case use less than one-half an air change where outside doors and windows exist. The infiltration method based on recent tests by F. C. Houghten and C. C. Schrader,- reported in Transactions, A. S. H. and V. E., Vol. 30,1924 and Vol. 31, 1925 and others may be conveniently adapted
to calculation purposes.
-
Tables 14 and 15 as well as Figs. 4, 5,. and 6 present values from the
recent tests by Houghten and Schrader at the Research Laboratory of the
American Society of Heating and Ventilating Engineers at
Pittsburgh. Table 14 and Fig. 4 based on the report Transactions, Vol. 30, 1924, No. 686 while Table 15 and Figs. 5 and 6 are based on
data presented in the Transactions, Vol. 30, 1924, p. 313.
Table 13. Air Changes Taking Place under Average Conditions Exclusive
of Air Provided for Ventilation
Number of Air Changes Taking
Kind of Room or Building Rooms, 1 side exposed
.
Place per Hour
1
Rooms, 2 sides exposed
Rooms, 3 sides exposed
Rooms, 4 sides exposed
Rooms with no windows or outside doors
Entrance Hails
.
Reception Halls
. Living Rooms
Dining Rooms
Bath Rooms
Drug Stores
Clothing Stores
Churches, Factories, Lofts, etc.
2 2
H to % 2 to 3 -
2 1 to 2
1 to 2 2
2 to 3 1
J4 to 3
Table 14 give's the leakage through a 13 in. brick wall, between the
frame and the brick, the leakage for a plain window not weather-stripped
23
T a b le 14. A ir L eakag e in C ubic F e e t per H our and B .t .u . N ecessary to H eat Such L eakag e from 0 to 70 D eg. F ah r .
for C racks ndicated and % 4 in . Cle a r a n c e, W indo w U nlocked .I
American Society of Heating and Ventilating Engineers Guide, 1926-27
3 .8 0 8 .6 4 1 4 .9 2 9 .1 4 4 .3 7 5 .6 1 1 1 .0 1 4 9 .0
P er F t . of C rack A round t h e Sash n c lu d in g M e e t in g R a ilI
Per Ft. op Uncalked Crack
A round Frame
Leakage
Cu. F t. | B.t.u. per Hour i
i
B.t.u.
Best Results
Leakage Cu. Ft. per Hour
W eather Stripped W indow
tO Tf hhiOwiOhOO ^*0''-hCtMo Oif'fO00tOCMCOO
. CCM- OCM--i'O'O' tOCM -HCMfO'OO'fO
Nt-O.O0r-^MfN ^oo'OiOTjioi'd
^ fh r*> 0 Ov O0
tO CM
.
MON'O'DlOOO
COO-OhifCOMOifrOt"-T--f'if
CM 00f-0'''00 tO'O -- CMTfO'C-r-
F--* CM to to OO T--'
B.t.u.
Leakage Cu. Ft. . per Hour
Average Results
B.t.u.
Leakage 1 Cu. Ft.
per Hour i ..... i
Plain Unstripped Wood W indow
tOOOOOOO CMOTtC.'OO-Mrf
-H - CM ^ O
ONN^IOCJN iOOOF--' iFO--i CMOCMnOtonto
^>000000 oicci'OiD-H H'OOO ifNOi-lH^*O-H COM CM0C0O 0^<
f0o0 000000 O'CMif^i--tfOON
to O oo CM NO'to Os 1-t 1-1 CM CO to
CM Wt*100
CM *-* r> IfOD TOf CO'^C4 *t
Nr--O0cot-*ifCMto -ooifodo'OO'b^*
1-* CM to 'O ON
NNOOto^fOOO*. -iOO -hn^^CoMotoOo'0n0o"H^
i-l NO rJ'CDfD'O-nOOO' ii'O^-CH CMM it--o CtoOC'O-OCOO
tCToOt CM O' to tO i-H to CM to 00 fO to Tt
1-1 CM ^ to
1 I
NO ^ C-- CO CM NO 'O'O^HC-00tO'O
1-*
to
NO
1--'
CM
CM to
to it*
NO NO CO C- >0 'ONO'ONOj'OO'
I
CCMOOO'OC*)^* tO to it* CO *0 CM CO
-HfONOOO-HCM --1 "* to Tt*
-1 CM ID 00 O to CO *1 CM to
B.t.u.
Leakage Cu. Ft. per Hour
W ind V elocity
M iles per H our
to
to
t--H
to 1--
CM
to
^
to
, to lON--Ot-O1 COM COO Q^ OID
oja 'uiooj
ui ajnssajd jo dn
*S}S3j Ajo^Eioqeq
j Suipimq iO} jaoi\b
Aq pauiuuaiap
OJ * 1U3D J3d 03
A|ien)5e saniBA
' Aqpaonpajsan[BA jsaj a3ej3Av lasn
i xvvd
IBDtpBJd joj sanjBA
II XVVd
24
Per Sq . Ft . of 13' Brick W a ll;
Pl a s t e r e d
T a b le 15. L e a k a g e for D o u b le H ung U n lo c ked W indow s C. F. H . per F oot of C rack per M il e W in d V e lo c it y a n d B .t .u . per HoyR per F oot of Crack per M il e W in d V elo c ity per 70 D egrees T em perature D ifference
American Society of Heating and Ventilating Engineers Guide, 1926-27
a
C- Os to If. to CM CM tO C- 00 O'
. to to CM O' o CM to c-- 00 On i-i
r-- c- O' 00 NO oo " CM
PM CM CM CM CM CO
CO CO CO CO CO if
CM CM CM CO CO CO
a
fM(t9> O*--' to ri--t Ci*M cCoO oCOo vtOO OO TOt*' "d* tio-1 C^M* OTt* iCtM* >tOD CitO* CtOM O0'
t i^i CM CM CM CM CM
CM CM CM CO CO CO
CM CM CM CM CM CM
WNNCNNM
CM CM CM NNN
1 CM CM CM CM
CM CM CM CM CM CM
1-1 cm cm cm cm
O' i~> CM <0 CO ' fMCN(NCSC4
O !N fD fO it't rH CM CN n (N fN
s:
Si..............
-- CM CM CM CM CM
> lO'O' tO ^ 3 i- CM CM i CM CM CM CM CM
5 t-. c- r-- r-
^'OOOhioO rO'ONOON'O
JJ c CJ
CM (0 CM
<0
CM CO CM
5
s?[nsaH
I XH Vd
aSeiSAv
II XVVd
isax
___
ah aaNiwaaxaa ativoldv samvA
d;3 *raooj '
1 SJnSSdJd JO
dh SuipimQ
joj mojie
O} JU3D Jdd
03diAq
pwnp a
} S 3 "J 38BJ3
-Ay iasn toil
oexd joj S3n'[EA
III XVVd
25
American Society of Heating and Ventilating Engineers Guide, 1926-27
and the leakage for the same window fitted with a good weather-strip for various wind velocities.
Table 15 gives the leakage in cubic feet per hour pier foot of crack per mile wind velocity for a plain frame window and also for a frame window fitted with weather-stripping. The leakage is given for various cracks around the sash perimeter and also for various clearances (Fig. 5) between the sash and the stop and parting bead.
Tables 14 and 15 are both divided into two parts, the first part con taining values based upon the original Research Laboratory test data, and the second part containing the same values reduced by 20 per cent in accordance with the suggestion from the authors. In these tables both the best laboratory resultsjand the average of all laboratory results on weather-stripped windows are given.
African Society of Heating and Ventilating Engineers Guide, 1926-27
be slightly less for a given velocity because of a building up of pressure
within the room before the air leaks out the opposite side of the building.
Attention is called to the fact that air leaks in on the' windward side of
the building and out on the leeward side and, since wind will blow from
various directions at different times, heating for any room having only
one exposure must be based on the maximum loss. The heating plant,
however, need not be figured on the sum of all maximum leakages, but
in general only half of the total. However,' the table gives accurate
comparative figures which are probably not much too high for actual
practice. In order to apply these values, a further study of the overall
results as found in practice should be made, and the figures modified, if
necessary, to fit practical conditions."
IflPlCATCP W ltlD V E LO C ITY -M ILLS PEP M0U`
Table 15 gives the leakage per mile wind velocity. This is based on the assumption that the leakage is proportional to the wind velocity, while ' this is practically true for a non weather-stripped window it is not so accurate for a weather-stripped window as indicated by the value for different velocities in Table 14. This accounts for the discrepancies ii>
certain parts of the two tables. The two tables are, however, practically .
in agreement for a thirty mile wind velocity.
.
According to the authors of the paper: "The values given in the
table are from the tests as made and are probably somewhat higher than those actually found in practice. They represent the leakage when the . pressure drop through the window is a certain value which represents a definite wind velocity at right angles to the window. If the wind strikes the window at an oblique angle the component of the velocity at rightj angles to the window must be considered. Pressure difference between
the outside and the inside surfaces of the window for an actual wind will
26
Fig. 6. Leakage through Plain Window with Various Clearances
In their discussion of results as presented in the 1924 report of the
Transactions, the authors state:
'
. "The principal facts brought out in the first report were that increasing
the crack around the perimeter of a plain sash did not materially increase
the leakage, and that weather-stripped sash, while permitting much
less leakage, showed a small increase in leakage with increase in crack.
These facts were established by making several hundred tests. The
present report deals with the effect of increasing the width of the stile,
that is, increasing the clearance.
^
"Fig. 5 illustrates what is meant by crack and clearance. The crack
around the sash perimeter is equal to one half- the difference between the
width of the frame and the width of the. sash, that is, the crack is the same
on.each side of the sash. The clearance is the difference between the width
of the stile and the thickness of the sash. These terms are chosen arbi
' 27 . ...
American Society of Heating and Ventilating Engineers Guide, 1926-27 .
trarily to distinguish the two principal air passages which are found in double hung windows, and they will be used frequently throughout the report and should not be confused.
"Four sets of sash were fitted.with cracks of gg,
gg and 34 in.
Each set was tested with clearances varying from gg to 34 in. Each test
was repeated a number of times because no two tests gave exactly the
same leakage, and it was necessary to obtain average results. Before
duplicating any test the window was opened and closed, and the stops
were removed and then returned to as nearly the same position as possible.
The weather-stripped sashes were tested in the same way.
Fig. 6 gives the results of tests on a plain window with various clearances. The tests proved that the size of the crack around the perimeter of the sash has no appreciable effect on the leakage. There fore the results apply to any window of the type tested with a crack of from A- to 34 in- In practice most new sashes are fitted with the crack at least gg in., and this crack becomes greater as the sash dries out and shrinks. I't should be clearly understood that each curve is the average obtained from a number of tests, and the results of any one test may vary from the given curve by four or five per- cent. The figure shows that the leakage increases rapidly with increase in clearance.
Calculations for Infiltrations
In order to arrive at the heat required for warming up the air entering by infiltration, the following procedure is necessary:
First, determine the average wind movement in miles per hour for the locality in question (Table 2);
Second, determine the inleakage of outside air per lineal foot of the given window or door crack in cubic feet per minute at the given wind velocity, Table 14 or 15;
Third, express the heat equivalent in B.t.u. per hour per foot of crack to heat this air 1 deg. fahr.
Thus, for a plain window having gg in. crack and gz in. clearance (see Fig. 5), which means the air channel around the edge of the sash is approximately gg in. wide, the heat equivalent of the air leaking in for a 0-70 deg. fahr. temperature difference is 157 B.t.u. per foot of crack per hour (Table 14, Part II). This value is found in the seventh column of the table. The computation for obtaining 157 is:
where
124 X 0.075 X 0.24 X 70 = 157 B.t.u.,
124 = cubic feet of air per foot of crack per hour for a 15 mi.
wind for
in. clearance from the 6th column of
Table 14.
0.075 = air density at 70 deg. fahr., pound per cubic foot.
0.24 = specific heat of air, and
70 = difference in temperature between inside and outside air.
The most convenient values for use in infiltration calculations are the coefficients of infiltration, for the particular kind of crackage with a wind velocity of 15 miles per hour under average conditions, with ^ in. crack and -gz in. clearance reduced by 20 per cent (Table 14, Part II).
For a wind velocity other than 15 miles per hour, use the proper velocity for that locality in place of 15.
28
American Society of Heating and'Ventilating Engineers Guide, 1926-27
(1) Plain unstripped window:
124 X 0.075 X 0.24 = 2.23 B.t.u. per hour per foot of crack.
,
(2) Weather-stripped window:
22.9 X 0.075 X 0.24 = 0.41 B.t.u. per hour per foot of crack.
Hence, use the values 2.23; and 0.41 for the heat to be supplied in B.t.u. per hour, per foot of crack for an average wind velocity of 15 miles per hour for each of the two kinds of cracks respectively. In case of very
2.23 good double hung plain windows use --=1.11.
For special cases, select proper values from Table 14 or 15 and compute
the B.t.u. per foot, of crack as already shown for the average case, using
the proper wind velocity in miles per hour.
HEAT SOURCES
Heat Available from Sources other than Heating Plant
The heat supplied by persons, lights, motors and machinery should always be ascertained in the case of theaters, assembly halls, and in dustrial plants, but allowances for such heat sources must be made only after careful consideration of all local conditions. In many cases, these heat sources should not be allowed to affect the size of the installation at all, although they may have a marked effect on the operation and con trol of the system later. In general, it is safe to say that where audiences are involved, the heating installation must have sufficient capacity to bring the building up to the stipulated inside temperature before the audience arrives. In industrial plants, quite a different condition exists, and heat sources, if they are always available during the period of human occupancy, may be substituted for a portion of the heating installation. In no case should the actual heating installation (exclusive of heat sources) be reduced below that required to maintain at least 40 deg. fahr. in the building. The following allowances may be made when required:
Table 16. Heat Given up by Persons and Lights
Persons;
.
Man at rest.......................................................................................... 400 B.t.u. per hr.
Man at work........................................................................................500 B.t.u. per hr.
Lights:
'
Electric lamps, B.t.u. per hr. equals watts per lamp X number of lamps X
3.415
Gas lighting:
.
.
*
1 cu. ft. producer gas............................................................................. 150 B.t.u.
1 cu. ft. illuminating gas.....................................................................:.700 B.t.u.
1 cu. ft. natural gas.............................................................................. 1000 B.t.u.
A Welsbach burner averages 3 cu. ft. of gas per hour and a fish tail burner 5 cu. ft. per hour.
For more detailed information see Table 17. Heat Emitted by Persons per Hour at Different Room Temperatures. '
Motors and the machinery which they drive, if both are located in the room, Convert all of the electrical energy supplied into heat, which is retained in the room if the product being manufactured is not removed until its temperature is the same as the room temperature.
29 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
1'
l
3 American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 17. Heat Emitted by Persons per Hour at Different Room Temperatures
H = Heat emitted by man at rest per hour. HI = Heat emitted by man at light labor per hour. Ha = Heat emitted by man at average labor per hour. Hh = Heat emitted by man at hard labor per hour. H = Heat Energy = (Ft-PoU-^Per hour) = 84 B.t.u., 168 B.t.u. and
' 252 B.t.u. respectively for light, average and hard labor.
T = Room Temperature.
H = 13.2 (98.6 - T)
Heat due labo
T X HE 100
HI,
Ha,
or
Hh
=
13.2
(98.6
-
T)
plus
--T X HE 100
Room
Temp.
Deg. Fahr.
,
* Rest
Heat Emitted by Man*
B.t.u. per Hour at
84 B.t.u. 168 B.t.u. 252 B.t.u.
Light Average
Hard
Labor Labor
Labor
Condition Required to Balance Excess and Shortage in Heat Emission
30 905 931 954 981 Increasing Humidity 40 773 807 838 874 :Heavy Clothing for Reduction or Pre 50 642 684 723 768 vention of Radiation 60 509 559 606 660 68 404 461 518 575 Normal Condition 70 378 436 491 . 554 75 312 375 438 501 Decreasing Humidity 80 246 313 375 447 .Air Currents for Producing Evapora 85 180 251 322 394 ,tion of Perspiration 90 114 189 259 342
For children use one-half of table values.
If power is transmitted to the machinery from the outside, then only the heat equivalent of the brake horsepower supplied is used. In the
.,
Motor horsepower w ,, ,
first case the B.t.u. supplied per hour =
----------- j--------- X 2046, and
Efficiency of motor
in the second case B.t.u. per hr. = b.hp. X 2546, in which 2546 is the
B.t.u. equivalent of 1 hp. hour. In high-powered mills this, is the chief source of heating and is frequently sufficient to overheat the building even in zero weather, thus requiring cooling by ventilation the year round.
For intermittent heating allow 10 per cent additional for rooms heated in the day time only, and for longer intervals of several days or more, add 25 per cent in determining minimum heating requirements, and size
of plant.
Application to Factory Heating3 (See Fig. 6)
Lowest outside temperature for Philadelphia, Pa. = -- 6 deg. fahr. (Table 2), hence use ( --6 + 10) = + 4 for heat loss computations. Average wind movement (Table 2) for December, January, February = 11.0 miles per hour from the Northwest. Long axis of building is north and south.
Inside breathing line temperature = 60 deg. fahr.
Walls: 9 in. concrete (stone), furred with 2 in. tile, plastered x/i in.
Ki -- 0.93 plaster in still air, (Table 4). Kt = 3 X 1.3 concrete moving air, (Tables 4 and 6). Ci = 8.3 foe stone concrete, (Table 5): c2 = for tile as shown use 0.99 (not per 1 in.), (Table 5).
.
3In this example a design temperature only 10 deg. fahr. above lowest on record instead of 15 deg. fahr. above was used. Infiltration values were taken from Table 14 for a plain window.
30
1
i'
\i
i
+
K, K2 ^
+ -J-+ _L + +
^ c, 0.93 ' 3.9 ^ 8.3 ' 0.99
.
0.292 from equations (6) and (7).
The air temperature at the mean height of inside walls is greater than at breathing line. Mean heightof walls is 16 4- 2 = 8 ft., which 8 -- 5 = 3 ft. above breathing line. Allowing 2 per cent per foot above 5 ft., or 2X3 = 6 per cent, makes the mean air temperature 1.06 X 60 = 63.4 deg. fahr. The triangular areas in the end wall are practically at the mean height of the roof at which level the air temperature is 78 deg. fahr.
Wall-vSection A-A
FIg. 7. Elevation of Factory Building
Roof: 3 in. concrete (stone), with in. tar paper and slag.
I,!,*,, i. 1 1 3 0.125 K, K2 ^ c, "* c2 1.3 "^4.2 ' 8.3 ' 0.40
The air temperature just below roof is higher than that at the breathing line. Mean height of roof is 16.+ 4 = 20 ft., or it is 20 -- 5 = 15 ft.
31
American Society of Heating and Ventilating Engineers Guide, 1926-27
above breathing line. Allowing 2 per cent per foot above 5 ft., or 2 X 15 = 30 per cent, makes the under roof temperature = 1.30 X 60 = 78 deg. fahr.
Floor: The 5 in. concrete floor is laid on the ground, and hence there is only one surface coefficient Kt = 1.3 (Table 3).
U = ----i------- = 0.717
----------- h --
1.30 ^ 8
The air temperature at floor level = 60 -- 5 = 55 deg. fahr.
Windows and Doors: Wood sash and doors with single thickness of glass. Take coefficient U for glass as 1.13 B.t.u. per sq. ft. per degree pier hour for heat transmission (Table 6). Doors are solid wood 1% in. thick and coefficient U = 0.37 B.t.u. per sq. ft. per degree per hour (Table 6).
Infiltration: Window crack assumed xg in. and doors at in. By Table 14 (Part I) for a 10 mile wind velocity the leakage pier foot of crack is 85 c.f. hr. for a plain window. The heat equivalent per hour, per degree is
. 85 X .075 X 0.24 = 1.53 B.t.u.
and allowing for an 11 mile wind the factor becomes 1.53 X = 1.68
(see preceding note). Allow twice this for door crack or 2 X 1 -68 = 3.36.
Building Material.
Exposure
Concrete and Tile__ N
N
Doors
................. N
Crack yt*................... N
-
Calculation Sheet Entire Building (See Fig. 7)
Coeffic.
Area Trans.
Width Height Sq. Ft. and Temp.
in Ft. in Ft. or Lm. Infill. Diff.
Ft.
M X 50
8^ 213 0.29 74.0
50 16 656 0.29 59.4
12 12 144 0.37 56
1 pair doors
60 3.56 56
Net
4,570 11,300
2,980 11,900
Exposure Factor
1.15 1.15 1.15 H* X 1.15
Total B.t.u.
5,250 13,000
3,430 6.850
' 28,530
Concrete and Tile__ Glass............................ Crack >6'........... ..
W
w w
120 16
15 X 4
9
Double Hung
1380 0.29 540 1.13
450 1.78
59.4 59.4 59.4
22.900
36,200 47.500
1.15 1.15 X 1.15
26,300 41,600
27,300
Windows (15)
95,200
South Wall................. Same
as N East Wall................... Same
See above
30,750
M* 24,800
as W
See above
106,600
. 82,850
Roof 3* Concrete
and Slag............ No
Ceiling 52.5 120 6300 0.60 74 280,000
None
280,000
Floor 5' Stone Con
. crete.... .................... On
Dirt
50
120 6000 0.717 5
21,510
None
21,510
Grand total of heat required for building in B.t.u. per hour at -j- 4 with 11-mile Southwest wind.. 532.890
Notes--(1) This building has no partitions and whatever air enters through the cracks on the wind
ward side must leave through the cracks on the leeward side. Therefore, only one-half of the total crack
will be used in computing infiltration for each side and each end of building.
(2) An exposure allowance of 15 per cent is also to be added to the wall and glass transmission losses
and to the infiltration losses on the two adjacent sides of the building most nearly facing the prevailing
wind as stated in paragraph 36.
'
(3) It is also possible to compute the heat required to take care of infiltration on the basis of M of an
air change per hour as given in Table 13 for a factory with minimum conditions. Volume = 50 X 120 X
20 (mean height) = 120.000 cu. ft. and heat required per hour is
.
120.000 X K X 0.075 X 0.24 X 59.4 = 64,200 B.t.u.
Based on infiltration through one-half the total crackage in all walls, the heat to be supplied per hour is from preceding table,
. 6.850 + 27,300 + 5,950 + 23,750 - 63,850 B.t.u.
This value based on crackage should be used, but if building is to be heated intermittently, not less than
one air change per hour should be allowed.
'
32
Chapter II
HEATING BY RADIATION
CALCULATING RADIATION
RADIATION can be classified as direct, semi-direct, and indirect, and is usually made of pipe or cast iron; when it is made of pipe it is termed pipe coil, and when made of cast iron it is termed column,
wall, semi-indirect, or indirect radiation.
.
The unit of measure'in figuring radiation is the square foot of heating
surface, which is the external surface.
The amount of heat a square foot of heating surface (radiation) will give off depends upon the temperature of the heating medium (steam-, or hot water), the temperature of the surrounding air, and the velocity
at which the air passes over same.
Tables 18 to 24 on succeeding pages indicate the number of B.t.u. a
given size column or wall radiator will transmit in 1 hr. with steam as the
heating medium and Tables 26 to 30 give similar data with hot water as the heating medium. The ordinary practice in calculating the amount ' of radiation of various kinds to meet a variety of conditions will be
briefly stated.
To determine the amount of direct radiation to heat a room, figure all of the heat losses, add the proper amount for exposure, and refer to Tables 18 to 30 to find the proper size radiator.
If a radiator of more than 20 sections is required, multiply the value, B.t.u. pier intermediate section, for the particular radiator, Tables 18-24, by the number of additional sections above 20 and add this amount
to the value, Total B.t.u. per hour, for the 20 section radiator. This will
give the total B.t.u. per hour for the required radiator.
Example.--What is the total B.t.u. per hour for a 30-section .32 in., single column radiator?
Solution.--626 B.t.u. X 10 Sections = 6260 B.t.u. 6260 B.t.u. + 12,875 B.t.u. = 19,135 B.t.u. Total per hour for 30-section radiator.
The values, B.t.u. per square feet of intermediate section and B.t.u.
per square feet of end surface, are given on the tables to show the rela
tionship between the two. The greater exposure of the end surface on
the radiator, obviously will give a greater emission per square feet of
surface.
.
To determine the amount of semi-indirect~(sometimes termed directindirect), radiation to heat a room, figure all the heat losses, adding the
Prepared especially for The Guide by R. V. Frost, Norristown, Pa. 33
. American Society of Heating and Ventilating Engineers Guide, 1926-27
proper amount for exposure add 40 per cent and refer to Tables 18-24 to find the proper size radiator.
. Example.--The heat losses including allowance for exposure for a given size room is 17,200 Ebt.u. + 40 per cent or 24,080 B.t.u., requiring a 19-section 45 in. 3-col. semi-indirect radiator.
Pipe coils should be of the header type* with provision made for ex pansion by a mitre piece. The steam supply should be at the mitre end and all coils should be securely anchored at the return header so as to throw the expansion toward the mitre end. The coils should be made of l]4 or 1J4 in. pipe and not over 60 ft. in length, not including the mitre, which should be at least one-tenth the length of the coil.
SELECTION OF RADIATIQN
It is usually necessary to select the type and location of radiation to conform to the conditions and space available in the room. In general it is usually most convenient and practical to locate the radiation on the exposed side of the room. The size of the radiator to take care of any particular heat loss can be best selected from the sheets compiled by the Society's Research Laboratory in cooperation with the U. S. Bureau of Mines Experiment Station, which are based on experiments by the late Director John R. Allen, and F. B. Rowley. As the heat emitted per square foot of radiation varies in radiators of different heights, widths and lengths, and also with the steam pressure and the temperature of the ' room, errors will occur if the same factor is used for all radiators.
Examples for the Usd of Tables.---Assume that the heat loss from a room is 15,497 B.t.u. pier hr., to heat the room to 70 deg. fahr. Two-column 38-in. radiators have been selected using steam at 1-lb. gage or approxi mately 215 deg. fahr.'
Solution.--In Table 19 for two-column radiators, under 38 in., it will
be found that a 17-section radiator will emit 15,960 B.t.u. There
fore a 17-section two-column 38-in. radiator will be required with
a rated surface of 68 sq. ft.
.
If in the same example steam at 5-lb. pressure or approximately 227 deg. fahr. was used and the room was heated to only 60 deg. fahr. re quiring 13,300 B.t.u. and three-column 26-in. radiators are selected the radiation would be estimated as follows:
Solution.--In Table 25 following down the first column to 5-lb. gage
pressure and then over horizontally to 60 deg. fahr. room
temperature the conversion factor 0.864 will be found. The heat
loss 13,300 X 0.864 (the equivalent heat loss) = 11,480 B.t.u.
In Table 20 for three-column radiators under the heading 26 in.
it will be found that a 13-section radiator will supply 11,242 B.t.u.
under standard conditions which is the closest to the amount
required. Therefore a 13-section three-column 26-in. radiator
will be required.
.
34
395 263 395 .
7309 7752 8193 8635 9080
443 266 394
American Society of Heating and Ventilating Engineers Guide, 1926-27
T o ta l B.t.u. per hr.
rO 04 1-- C4 CC O\0DN(n'O to On <*-0 wm C4
cq to oo to tcOq cOq itWo tbo*t^**
tloOootOcoq>ciqt^tt)coNqoHo-* rt< rt< LO lo
Tf oo 00 *to^O'toONtOOot '0'0c*b00
z
o cq ioO'oO'o to o to to o O to to to
ON cq to to NO OO On cq ^cq*icOqcc*qocOq tOo
Rated Surface
sq. ft.
26.66 2 8 .3 3 30.00 3 1 .6 6 3 3 .3 3
li
as z
H 11
>5 za Cn
J o
U
<c
va c .= z
S5<tdcKt, c/>
z 0245
23 n .I
Total B.t.u. per hr.
Rated Surface
sq. ft. 1 .6 6 3.33 5.00 6 .6 6 8.33 1 0 .0 0 11.66 13133 15.00 16.66
Total B.t.u. per hr.
654 1112 1555 1997 2440
rq -rf r- O' cq OOM'OO'O 00 CO t-- cq O cq to to ^
to oo cq to oOn ttoo ooo cq onoo LO to to nO
ttoo NNOO ttoo o--oi cq --cq> tooq tcoq
rbO--*MtOoOn rO--rO04OttOoo --i l 04 04
oo o NttooeotoootrosOoOo*'^tPo
o"HolOcqxtKtlOOtNi^. On Tf O' v lO'O'CCC
cs'tooo
cq
no oo
cq rt no oo cq cq cq cq to
ccqo to <o otoo Tt
8489 9000 9515 10028 10544 .
514 257 385
Rated Surface
sq. ft.
Q H^ >
<?
go
s
z 0eo
5KoUvo
Rated Surface
sq. ft.
T o ta l B.t.u. per hr.
OOO-HTf t> On to 04 <50 rf
-<<Nf4fO
oo to ^ cq oO> CtrNjNt. ttIOoo otOooN *NN--Oi
'0 0 0't"t Otcoq- 'toO--o oOOo-HOc^n '
NcqO NO
LO o to to
mionon
to to io -- ocq ccqq cqo
to to to o~cqtot-- cq to to to to
to o O' crqf to r-- to
--H< do' t0o4 CtoO ^
tNoO
On
tcoq
to
00
cT-t Ttojt cvq O-N nr--o
00fCO*C*O^C' C44 oo to to
do ON O' ^
to t-* O' ^ tO C00. tvo-t tcoq ON cq ^ to ^
tt--o to
T o ta l B.t.u. . per hr.
38 n .I
Rated Surface
sq. ft. .
to vO On C4 to
o*-oi c-q*i cq ccq* to
to no O' cq o to to to ^ ^
to to to
N o .I OF Sections
L ength nches
cq to lo 'ONOOO'O -h cq to ^ to Ni-Owc--wQO^Oc' q
5 10
to to --i cq cq
35
to to to
6* cn
40 45 50
B .t.u . per Interm ed. Section 728
243
" " " End Surface
10372 10999 11624 12250 12875
250 380
R e s e a r c h L a b o r a t o r y St a n d a r d D a t a -- A m e r ic a n S o c ie t y o p H e a t in g a n d V e n t il a t in g E n g in e e r s
R e s u lt o f C o o p e ra tive W o rk W ith U . S. B ureau o f M in e s E x p e rim e n t S ta tio n , P itts b u rg h Pa
C o p y r ig h t 1921
'`
T a b l e 19. H e a t E m it t e d b y D ir e c t R a d ia t io n -- T w o -C o lu m n R a d ia to r s
413 415
American Society of Heating and Ventilating Engineers Guide, 1926-27
T otal B .t.u. per hr.
CO CO -if CO oo co oo co p-
CM NO O CM Tf O' oo p-* p vo (CSOIC^DCrMpNTCp vM/->
CO to O0 CM OO to CO CO CM r- cm r- cm
Tf CO CM -h On CMI^CMh* -- 00 <30 O
CO Tp
rp CM
z
cm
cm ^ oo
CMrjN'OOO
CM rp O0 CM CM CM CM CO
CM rp oO CO CO CO CO ^
R ated S u rfa c e sq. ft.
240 242
638 565
T o ta l B .t.u. per hr.
Room Temperature at 70 dee t a k e
23 I n .
R ated S u rfa c e 8Q. ft.
T o ta l B .t.u. per hr.
26 In .
R ated S u rfa c e
#q. ft.
9464 10032 10601 11167 11736
l-- O ro vO CS O' O fO vo CM
HNc^tO
O' nO fO . Or*Tfoo
00 CO O' to CO rp rp to
oo co r^-HOOtt 'Omc-cooO t-* r-- oo oo
14.00 16.33 18.66 . 2 1 .0 0 ; 23.33
CO CO CO NO CO NO CM rp r-- ON r-1
co CO to O0 CM to CM CM CO to to
co co co to
f'OCNrf'O CO ro rp rr
NO CO CM c- co O 'O
H-ifs)rocO
On r- CM OO CM O On CO CM On to -n 00 rp tP tO NO
CMccoor--
-- w
CM to CM -- -- CM CO
7471 8109 8746 9383 10020
16.00 18.66 21.33 24.00 | 26.66
NO co NO fO O CO O NO CO cm to oo co
CO co co co
cm rp p- CM co CO CO TP
co co co co CM LO O0 co rP rp rp to VO
r*iHcov)(N
(ONONIO CM *^ ^*
CM CO rp
CM 00 On CO CM On NO CO CM CM ON tO CO to to no r-% oo
CM 00 CM OO CO w
*- OO rp CM --> CM
t-^OOOO CO CO -- OO C>. to to CM CO TP to
JN.
3.33 6.66 10.00 13.33 16.66
CO nO to CO O CO
CO N CO CM CM CM CO CO
co co cO to CO co VO NO
>0 to to CM CM CONNN.1^
tO rp CO CM --* t-t CM CO rp to
CM CM OO Nr^'O'O'O On oo P*. N
O'GC-OOOn
P-* P- t-- rp
NO
O -- CM (O Tf
CM oo to to to oo t-. to to t-. oo
006
T otal B .t.u. per hr.
32 In .
R ated S u rfa c e sq. ft.
.-
233 400
36.66 40.00 43.33 46.66 50.00
225 396
T o ta l B .t.u. per hr.
38 In .
R ated S u rfa c e
sq. ft. -
rp 00 CM NO
rp oo cm CM CM CO to
Tp CO CM O Tf to to
tP OO CM o *->. p- oo
T otal B .t.u. p e r hr.'
18143 19227 20311 21394 22478
1083
CM to O' CM *0 On p- o rp CM 00 O *-t CM ri cm tP to
oo NO CM to O P- rf to CO ^ to NO CM 00 On --
t CM rp CO CM -- t>* to
p- oo oo CM CO rp to P>
CN. 00
pCM to
z
kO nr
to to to
l CM CM
to to CO CO ^ 0
to to to to p-*. rs
to to o OO OO
R ated S u rfa c e sq. ft.
V-* CM CO rp to nO r oo r-> CM CO rp to P- 00
Steam Temperature at 215 deg. Jahr.
40 45 50
B .t.u. per Interm ed. Section
" " Sq. F t. " " " " " End Surface
No.
OF Se c tio n s
30 35
L e n g t hI nches
to
to to ^ CM CM
36
5 10
40 45 50
B .t.u . per In te rm e d . Section 1239 " " Sq. F t. " " 206 " " " End Surface
7185 8243 9300 10358 11415 12473 13530 14587 15645 16703 1057
211 380
226 236 380 390
Ro01n Temperature at 70 deg. fa h r.
American Society of Heating and Ventilating Engineers Guide, 1926-27
'| S
T o ta l < B .t.u. j per hr, 1
8863 9398 9931 10464 10989
000^-4 *-* CO CM OO Tp Tp
^HCMft)
CO Tp VO tooo-''5pr-- o i-* CO 9 -Np to to
CM CO CO CO
*-t^*P-co
CM r-- CM 00 CO
oo
co to
z
oo 10 to CM VO r-- CM CM rp --l
voovo CM VO *-
co Oco0 rp CrPM VrpO
13.50 15.75 18.00 20.25 22.50 24.75 27.00 29.25 31.50 33.75
R ated S u rfa c e
aq. ft.
11323 12000 12679 13361 14040
T otal B .t.u. per hr.
CO'Np.-P co -< p- *o
00 rp oo n-t CM CO co
CM ^ 00 co --' Tp to CM O0 to CM Tp to lO t--
t*-. OO CM CO CM 00 ^ CM P* 00
On t--
z
CM CM
CO CM tO
oo Tp t- CM CM CM CO
CO O' CM VO OO^'tNQ CO CO CO rp tP. rp to tO IO
R ated S u rfa c e
SQ. f t .
9595 10418
1
11242 12065 12889
822 219
T a b l e 20. H e a t E m i t t e d b y D i r e c t R a d i a t i o n -- h r e e - C o l u m n R a d i a t o r sT
>MSC 1<w3 gS
s 5i
** X
ftW
5M= -- CM ft
Z3O
a< csl g-
*3 | CO o
<(/5y
IA*o g
< <u
si
oU
X<83
tf
32 n .I
Z (0 CN
z to
38 I n .
T o ta l B .t.u. per hr.
R ated S u rfa c e sq. ft.
T o ta l B .t.u. per hr.
R ated S u rfa c e sq. ft.
T o ta l B .t.u. per hr.
R ated S u rfa c e sq. ft.
T o ta l B .t.u. per hr.
CM tO P" O *-- t- *-*i rp CO <-t OO rHCStOtONp
to OO OO CM to O0 CM tO t-- ^co--*r iO r- t>- O0
CO rp to n-* CO tO P-*
to co -* co rp to
60.00 63.75 67.50 71.25 75.00
to to to r-- to cm t-- (OC-HlOfiO
O vo to to cm r- to cm O co r* CM CM CO co CO
iO VO tO CM w VO CM ^-i tO O0 CM rp rp rp to to
vo vo VO rp rp COOI'-NJ" to THCSfOMMO
GO **-- CM CM C-- ^ CO CO <M CM CM w CM CO ^ to
to o *o Tp CO 00 CM
--i CM
vo VO P-'-'NOOvo CM CO CO tP ^
to to to tpOOf^N. Tp to to
O to vo CM --1 vo
r-- oO oo
00 VO CO oo to -- r- cm O0 O O *-- w CM ^ to
t-* CM --i p-- co p-. oo oo P- OO --1 --r *--i --< CM CM
to to to --( CM CM
tO VO co CO o* O* VO
to to to to t-- t--
to *o oo oo
-*"* OO CM tO
cm Tp --< CM CO Tp NO O-
tO C" vo vO CM CO ' vO rp <-' ro OO CM co
CM.CM CO ^ CO rO r-- --' to OO co VO ^ttor^oo
CM OO rp cOrrP00 co to P CM CO rp to CM CM CM CM CM
CM 00 ^ r-l --i CM CO
CM 00 O' Q CO rp Tp to
CM 00 rp r--p^oo
cm 00 rp *--< CM
' 6512 7481 8453 9420 10391 16207 17174 18144 19118 20088 969 215 370
co
rP r-- CO
R ated S u rfa c e
sq. ft.
-- CM CO *nP tO
i-- oo
w CM CO rp vo
p-- oo
Steam Temperature at 215 deg. fa h r.
No.
OF Se c t io n s
L e n g t hI nches ; {
to VO n-m CM CM
37
i
O vo CO CO
R esearch L abo rato ry Stan o ar d
American Society of Heating and Ventilating Engineers Guide, 1926-27
Gf^N0Ol^
3 3.2
O" >.
c'-nOcnOcInONO<-<'
H&
rO CS -i COio
0000\|>
> 00
oo 00
O'
*-i
oo o
'OO' lONsOO0"OOOfO00
a--l CN CN t4<
*2,1 S|5 <#>'0 0'NiO iSls
z. g2 M.e O Mh
g| 55 Is.
S
HI S&scs- siSss
log
Ip III
3
S'2
:8$ |Ij
o a*
2
- SDa fid
J O CJ D O
2 O'
9 Pd
it* ScS
&o o (J
> n Q CO e
5 W H C u K'
e* W iO aa ci *3
to N*
3 =.2 ,*i * Hm s
O *-< --j cn fONHOft
cn ^ ^ t4 oooo0tt'-^0iorv-o)<o^o^<>
CcOOO'f-"tN'.NNO^^fOOQOOofo'OOSsO
rT^o*t-<osio^vSt-Oot^Oi~o-' iOCoOsl
S|i
^"OONOO TTS-i
IN M fD CO '
OOON^fO
KSils3 ^-S
o*i k. Hffl
a-t CN ft so
NcnOoo't'i^fO t'OOO'Oii
ON*-ON
lwO *O0s *0 0C0N
CN ^ so
C? 5 S ^
7 8,j 5j5gis ^ if)
010 -0^*^00
toOO'O*'O0 ON-*Ko
O *o O *o < 00 OO Os O' (
3^ *i k. Hog
sOCO-SiHVfO)UOTOOJjsiscOOs)WflOH
'ONCOrJi^
Os ^ 00 o OO 00 CN *0 Os CN OO *-l CN t4<
t'f^01/) CN t-~ CN -- 'tOo OSOsOfO^O'Os *O-
CN
t"* Os CN 00^0'^'
CNt-. CN CN CN CN CN
31 s
toowco
O to O to o
to o to O to
O to O to o
Q 3_j
r*i i-
Hm *
so to co _ to *-< r-- co os cn ^ to oo
tooo O<os --to1 ttoo s*-o<
SO SO CN OO CN to to SO
so 00 O O CN Os *- r-- o to to O' to w 00 O' -i to t* HiHCNNCsj
SO *4* CN CO CN 00 to CO Os to o SO r- Os -< cn CN CN CN to to
Do*: (lg
N O Qs Oio so Os VO O O
S33.*
*4,
OO^N OOiOOn 00
tCoN
COO'
*so4CO
tCO-N
CN CO CO 1 ,, t-- to to w CO to t-- Os
to CO to to CO
ooooo
O tN00O
HOCON OCO Q^a*H OtaC-xj
R ated S u rfa c e sq. ft.
'Of'OOO'Oa--< CN -tj* VO O N. CO O' o *-i CN to NM to
No.
OF Se c tio n s
36 42 .
L e n g t hI nches
v CN
CO Tf O CN to oo
CQ
American Society of Heating and Ventilating Engineers Guide, 1926-27
Total B.t.u. per hr.
861 1391 1921 2448 2979 3509 4038 4568 5099 5626
530 265 430
\iTO--* OsQSCONH^r--^Ct^N so o t*- 00
. tOottoo ^ftOosOCN
OoOo
to
O'
Ooos
oto
oS'
2
- . OC-) a.
g U*J NstOOOO CN Tf V O0 O CCNN'CtN'OCNOCON Oto CtON t^O to 0tO0 O^
Total B.t.u. per hr. 4036 4644 5251 5859
6468 261
Oi
td 2 23*^ Wi o f 23
33 O
2S = 3 Og uv gS H^
0C4O
W
OOOss
sso^O
tCC--oNN
OOCONN
CNs fO
JTOXf ^tC'OoOO OOCONf'l0OO0S'O*tOos
^^oCNtMCN ntO^'Ti OOo-iO^'N
00 s
4) cwCs*~j
to SO Q to SO to s O fO s
sis CN C- OS
OO ttoo Os oo CtoO t--4*i s>--oi 0*--0i CN tCON
ss QO ttOO ss QO tCoN OCON OtO CtON ttOo
ttOo oO CO r- O' c*n* ^ ^
CN
11378 12062 12744 13425 14111
256 423
P-.
td C >.2
2
<V3
-
cn oH fid
5< <
Total . B.t.u.
per hr.
OO CN OO Os
cr---n<i
oy----o>i
COrNf'
r*C--O1
CsCO
N^totONlCONOr-*OtQoO' 'OOOPOCNN
>lsOO0' sO0o Ott0oo>'OOO'OOOSO'
co
zg S3
<
2'f.
CO
C4
vo U4r1t'*--J
sSO
rtoo
OO
S
s
ctoO
OO SSOO tfOO OO ss
rCOO OO sO CCOO Oo
oo
Sgs CN to oO O to s 00 CN CN sCON 0CN'MtOrCtO,lC>O 0rf CN T}< oTto< to
gw
o K
a.5s
css
1* 2; o
^r^OOO
Oto-H'
C"Ni
CN
Oto0
*Oto"O"
tT"j--v
OttioooO\stOooc' Os'-Io' tCOooNotsoooo
tCJO*
sO O'
c*tOo-mi
T*t^--o-t<i
O' 'C-Ni
OOtOo
OCONO'
oo SO
00 ^
^4*
CN
^ -^
T4< tN
o CN
Total B.t.u. >er hr.
u< vCfl2
HCQ o
<wi
H <
Q < ft5
H U U
<N
CO
V c O *J 4* (Q<~
ttoo VO OO ttoo sS
QfOsOOfO O to s O to
O o
CO tO
SO
Q O
so O
3 3 g to SO O to SO
Ktn *
OCN tCoN CN Oto tCOO
CoO'
o
rJ1
to
-*f
^
tO
O
829 418
13487 14640 15789 16940 18090 19248 20400 21551 22705 23850
1152 960 230 240 393
h x: < z?
Q
>
CQ .
Q
(4
Total B.t.u. Per hr.
oCt--ONo( OtCOtN*' ttfcOOooCt^ONoO^t64oO*
Os O CN
t^O
O
s CO
CN to
OO
'Ot^oOO'O
CtC4NN*
-i
OCN
cn
to
OCN''
^4*
OO O to
t~~ t--1 CN OO
40NOW O O O' O' 00
'O--* N--1t'.--O< O--1 O--4'
S
' H 00 S2 I i
II
H *2.
oO S<3 <o
<. b] cw E -3
t *w S2 oCNi C^N
td a ^
Total B.t.u. per hr.
Rated Surface eq. ft.
O0 CN-S O TH -H N
Tj 00 CN Q
CN CN CO tO O*
s 00 - t*< to
>0 --1 CN Os CN tJ* to h tO ^4* *0 O
tCoN troo--o oCONo tGoO ttooo NOOO CN
Orf0
CN
SO
V-O
Q
^ O0 CN r- Ooo
'
*
si
.*
_w . V Xa
lO
On-i
tyo*
O
CN
to
CN
oto tCoO O to tO
to
lO
o
to
o
OOO
00 00 O' Os o
'OC 'wuQJ
*
O
u2 3 J)
*0)
d 3 o
a 4- w
Sti
2 ou.2
Cr zD
in
--i CN rO to
w&s t^oO Os O
*-H CN CO t4< so
i--<t*'--Oi O--< O--<'OCN
_
*
o> tt 3
K cn
IS
"
6 12 18 24 30 36 42 48 54 60
3 i3 3
CQ
12466 14513 16559 18604 20650 2046
293 319
American Society of Heating and. Ventilating Engineers Guide, 1926-27
: 4> >2
H2 i t,
8!
<"
PS
<!
a25p*<b*iSc>-j
3
Is <2
u2
u td OJ
2gm3 o <2W-o l=> H JS
Q
Q
Id
s
3*
. 2o> 2 4>
w
<H
2 CCM4
2
g& co ' 3 '
2
o<->
Oi '--
w.
mJ
"O_
<N
=1 h 12
wo
S'
g
"1
a
V
I
I
No.
OF Se c t io n s
Rated Surface
sq. ft.
T o ta l B.t.u. per hr.
Rated Surface
sq. ft.
Total B.t.u. per hr.
Rated Surface
sq. ft.
T o ta l B.t.u per hr.
0to0 00 t0o0 oo
*-<
ccmo
r-
co
oo P
OO O' 00 co ^ tOo' Coo O' CM rf to
to to to CM CM
lO to CO CO ^ Tt* to
^ttoo to P- tPo
to to co 00. O' O'
'CtO-O'OPCMNP-OCM CCMM CM CO C0O0 Tt*
0T}4 OC' CMO ^00pCM- pTp p* oooo oo CM CM CM CM CO
0C0Mrj<NOH' CM H00 O'O'OOt-i CCMO rrOf CPO- COO' rf<
p- ^ --i oo to --< CM CM CO
C^M ^ o CO P-
P- --i CO to P- 00 O' O'
C-`M On' rMCcOo^
41904 44508 47110 49715 52322 .
2603 289
tCoO to tOo' CO oo Tt CM CM to OO co
O' PI rj< O
00 tO
POT0~f
p* --CM
<PCM0-
OCMO CM
oo 0o0o
to Orf*'
QOtp'
O'
o OCM'
00 ^ ^ O'
CM co CO cO co
co
O0 P- to 'HfMfOTjt
r# to
CO CM P-
--00<
O'
oo p- to O' CM co.
rf CO CM ^ rf to r^* OO
c .2 <_>
<S) 0)
-2 ` '<5u ua. *oJ> c
^ CM CO
to
P`00 0'0
-h CM co ^ to
41 ^HPHr 0H0 CO'M a
3
CQ
"
" Sq. Fl
3 3
40
17160 18708 2 0 2 6 1 > 21812 23363 24913 26461 28008 29560 31110 1550
310 331
" E n d S urface
American Society of Heating and Ventilating Engineers Guide, 1926-27
5 = JS
*t u
COMOCMO-^<-OH'OC0'
iHpr~HrNf t^fOP-
P>. rf
r*. t/5 co -* O' --i oo to
hONOOO'
NiONOoO oo to cm O' o
oo O' O' O
C--M.rrOffMC'lOOMOcc^Coo* cOoo
/>
co NO O' CM to
Ve. 2,5*
2 W_c
1
<^ 5 <
ae
>.2
o
51 si
> !>
2 =?J3
O 'i Htt S,
OCMiOJO''-cOo N
co - O' oo CM CM co rf
tO Prf- Ooo' C-M< trof rufvCOM Nf-OC' PO*
to p- oo rf
P- o -< to
to co CM OO O' r-4 CM CM
oo
--*
fo
00 co
to fO -* O'
co ^ to
>V 5.5 <N
GS2
WOuq. ^H
2U< 3rJt 0~g 2 3 eu
UttO <w5 u
Q < 05
I'
Q Id e
2 LU
H < W K
33
cO P --1 OO
3 3.j= e*! > Hffl
CO ^ O fM o
-< P- fo
C^. CM CCOO c^o Oto'
Pco- C-SO1 0o0 tCoM -
O' O -^ CM 00 O' ~*
to oo to
CM P- co O' CMCOCOrfrf CM co ^ to
rf 00 O' to r-
tpo- tooo O' p- p^
--i --< *_ CM CM
<m H1
Ob. 2
pr oo O'
CM CO to
ui
oa
2 a
O2
J-
41
m
American Society of Heating and Ventilating Engineers Guide, 1926-27
These conversion factors m u ltip lie d b y th e heat loss fro m a n y ra d ia to r, operating under the indicated conditions, give th e heat loss b y the same ra d ia to r operating a t 215 deg. fahr. in a room a t 70 deg. fahr.
50 deg. fahr.
R esearch L abo rato ry Stan d ar d D a t a -- A m e r ic a n So c ie ty op H e a t in g a n d V e n t il a t in g E n g in eer s Resutt of Cooperative W o rk W ith U . S. Bureau of M ines E xperim ent S tation, P ittsburgh, Pa.
C o pyrig ht 1921
Cs| CN lO /5 O' *h oo oo O'
lO^Nr^OO'
ot#r~-u--->um^rcMM'Co--oi<oo oooooooOooootN-fi
60 deg. fahr.
T emperature of R oom in deg. fahr. .
t^OTOfOiH"0w>if0lQ r-- to ro on s-->
cn'Ob~oO'#r~oOr-i rCfN^OOsOO'rO~O'O0O'QtO-rOOOt"'.
65 deg. fahr.
OH06
U
<
1.828 1.621 1.451 1.311 1.195 1.095
U* Z O
NrH^mN-Oao(MOb<~OOcoO>'OH OnOsOnOsQOOOOOCO
O
Id
>
Z o U
70 deg. fahr. 1.934 1.701 1.517 1.364 1.239 1.135
z o
Qr~OiO'C9Q-' o rO*' O't' nO' oO'*oOo"ooo c0o0
^ooodoo <
Q < cl
75 deg. fahr.
lfOO Oto'OOiftSoO*--OCtN'' CM r-l'^H
OCMiOOr^O~t4r->tOfO~l--^`fo^omuci o.O'O'O'OOoo r- -H . O
Q w g
80 deg. fahr.
3
W
00O00"OOv0o0ofOOs Hto iHODOrf t^CS
H CM I-- s--I a-H <
W X
e m p . !T OF St e a m in i DEG. FAHR.
tHr>r'HOrtH--HoortOCsSI
lOOiNlfiNOlOO cmcmcmcmcmcmcmcM
H
HUIO'-nno) i~* O' to to
to Ti< to Os V*
C* 00 00 0"0 oo oo o> m vo t^-oo O' 09 rt ^_,^H^-,*-,^_CslcMCM
Lb. A b s o lu te
P ressure
t*< r-- co ro r-- i/-) CCOMO-sHto-aCrMt oo 'O
sHMfO'J'lOOOOO
L b.
Gage
Vacuum In. Hg.
42
1.064 1.030 1 .0 0 4 0 .9 8 2 0.964 0 .9 4 3 0 .9 0 7 0 .8 7 5
T a b l e 2 6 . H e a t E m is s io n o f D ir e c t C a s t k o n R a d ia t io n f o r H o t W a t e r -- S in g l e C o l u m n R a d ia t o r sI Mean Water Temperature at 170 deg. fahr..Room Temperature at 70 deg, fahr. ___________________________________________________________________________
!
American Society of Heating and Ventilating Engineers Guide, 1926-27
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jls* 3883 88388 38838 83g83
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43
American Society of Heating and Ventilating Engineers Guide, 1926-27
z
CO
IL e n g t h nches
5 10 15 20 ' 25 30 35 40 45 50
IT a b l e 2 7 . H e a t E m is s io n o f D ir e c t C a s t r o n R a d ia t io n f o r H o t W a t e r -- T h r e e - C o l u m n R a d ia t o r s
Mean Water Temperature at 170 deg, fahr,__________________________________________________________Room Temperature at 70 deg, fahr._____________
N umber or
Se c t io n s
I| 45 n .
j Rated
1 SSuqr.faFcte
S____
Total B.tu. per Hr.
SR
O CM ao Mj. OCMOOQ t PM OO Mt tO PM Op ^
-i-cMc,
-- cm co ^ w> VSoisgoao vSvSWvSvS--cMfpjMpto VHHVNoNooao
1480 2295 3115 3930 4750
5560 6380 7200 8020 8830
oimncos aoO"CM
9650 10470 11390 12100 12920
13750 14570 15380 16200 17000
|
o to'O'Ot'-r- u co a a o
-- -- cn pm co to
l!3* to O to WG to to to to O to to O to
eo n
z
3
Z PM TO
z
MO
Total B.tu. per Hr.
SR
1 Rated
Surface
Sq. Ft.
.1
s
WG 0 WG t/> W> WG o M*> I/) V) O WG tp a CG OC CM r~ -- MO to a^OOIGN CM O -- to
cm eo co ^ ^ tfl'O'O'O c>iMoocoa
1250 1950 2645 3345 4040
4740 5430 6130 6830 7540
8225 8930 9625 10320 11010
11700 12400
13100 13800 14500
1100 1740 2380 3020 3660
4300 4940 5580 6220 6860
7500 8140 8780 9420 10060
10700 11340 11980 12620 13260
Rated Surface
Sq. F t
S
3.'75 7.50 11.25 15.00 18.75
22.50 26.25 30.00 33.75 37.50
I 1
41.25
45.00 48.75 52.50 56.25
60.00 63.75
67.50 71.25 75.00
Total B.t.u. per Hr.
SR
905 1450 1990 2525 3070
'
3620 4170 4710 5250
5790
6310 6855
7400
7950
8500'
9050 9600 10130
10670 11200
VYllGYlO
VMM -- CMCMCMCG
iGga<MiG ao -- ^ t-~ ID O a CM to oo -- *#.
Rated Surface Sq. Ft.
S
Total B.t.u. per Hr.
8R
750 1200 1645 2095 2540
2990 3435 3885 4335 . 4780
5230 5680 6125 6575 7025
7475 7920 8360 8810 9260
Rated
Surface Sq. Ft.
8
1 2.25* 1 4.50 i
1 6.75
9.00
11.25
' 13.50
i 15.75 1 18.00 l
20.25 . 22.50
24.75 27.00 29.25 31.50 33.75
36.00 38.25 40.50
42.75 45.00
'
Z
Total B.t.u. per Hr.
SR
600 945 1295 1640 1990
.
2340 2695 3045 3395 3750
4100 4450 4800 5150 5500
5850 6200 6550 6900 7250
44
American Society of Heating and Ventilating Engineers Guide, 1926-27
z
M mMflwtS^OWS) lOwN> OOlWx)Oo UN1 QS>lG'Y0I>N0 ONwglGMWiC
mrsvosivcsav}s NpMN<toftorI>G* mit i^G<VQ>N0<I0G <0 C<*CG rO- pvss rtso.
X co ba
2za-oz
-j--i
toPMvs
ovos
T able 28.
N umber or
Se c tio n s
(MIGpIG MD Pco a mCMCGM'IG g Is OO a O
IH e a t E m is s io n o f D ir e c t C a s t r o n R a d ia t io n f o r
Mean Water Temperature at 170 deg, fahr,Room Temperature at 70 deg, fa h r.
*n i t i
|
*I St
Z
0CO0 i M-oo--(M--PoM PtfM-aPMoCrMO C'COJ ^ m^ppootopmt'oOg >etgMp|mM<Oo 0
<G--O<--GOcm<Gm cOtgG^OM'Gf>g tiGoOgtGNOilG. egWa> oatoao
Rated
Surface
Sq. F t
iS
Total B.tu. i per Hr. ; SR
1300 2060 2820 3580 4340
5100 ' 5860
6620 7380 8140
8900 9660 10420 11180 11940
12700 13460 14220 14980 15740
Rated Surface Sq. Ft.
S
Total B.t.u. per Hr.
SR
Rated
Surface Sq. Ft.
S
Total B.tu. per Hr.
SR
1075 1710 2345 2980 3615
:
3.33 6.66 10.00 13.33
16.66
920 1470 2010 2560 3105
4250 4885 5520 6155 6790
20.00 23.33 26.66 30.00 33.33
3655 ` 4205 . 4750 5295 5840
7425 8060 8695 9330 9965
36.66 40.00 43.33 46.66 50.00
'
6390 6940 7485 8035 8580
10600 11235 11870 12505 13140
53.33 56.66 60.00 63.33 66.66
9125 9670 10220 10765 11310
9Z \H
H o t W a t e r H o s p it a l R a d ia to r s -- T w o -C o lu m n
Rated Surface
Sq. F t
S
2.66 5.33 8.00 10.66 13.33
16.00 18.66 21.33 24.00 26.66
29.33 32.00 34.66 37.33 40.00
42.66 45.33 48.00 50.66 53.33
Total B.tu. per Hr.
SR
745 1195 1645 2095 2545
3000 3450 3900 4350 4800
5255 5705
: 6155 6605 7055
* 7510 7960 8410 '8860 9315
Rated
Surface
i Sq. Ft.
1.
8
2.33 4.66 7.00 9.33
11.66
14.00 16.33 18.66 21.00 23.33
' 25.66
28.00 30.33
32.66 35.00
37.33
39.66 42.00 44.33 46.66
Total B.tu. per Hr. 1 SR
'660
1061 1462 1863 2264
2665 3066 3567 3868 4269
4670 5071 5472 5873 6274
!
1 6675 : 7076 l 7477
7878 8280
CCOSCPO'OroOCOO ^O
CCMM CpM 'COM OCMO COO
CvsMvs^tvOsOvsOpOm
PlM'goO
vs
I20 n.
Rated Surface Sq. Ft.
S
Total B.tu. per Hr.
SR.
ofi-o. oaCMNo(n-<oCVMooPa- NCcMgP'CoO.MCocOMooccIMogccN'o PooTf.Io^McloP'C. --otMo p^1G. CctGoM--OoC'oCtOoM-oGf'gCpIMMm
PM
P*G
to pm
e^o MWtf)t O
45
IKt-o"ICC--OoImOo
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g -ro ^ to oc-ooao -s pm c-g sp i/g o^cioac
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to to to to to to to to to to to to to to to to to to to t t--*<i 0c"~0i --< ttoo O-oO tNoIaOOoili tc o>oto p'OTfiM-
oo
t0o\
-<
to cm
tp
ttoors etogOo t--o
o-torootocoitoor- Otj---CM oIGotoC"i . PM ^ WG --p*5'9' -- ~ `
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 29. Heat Emission of Direct Pipe Coil Radiation for Steam
Steam Temperature at 240 deg. fahr.--Pressure 10 lb. per sq. in.--Room Temperature at 60 deg. fahr.
WALL COILS--Coils Placed Vertical-Pipes Horizontal
B.t.u. per Lineal Ft. of Coil per'Hour. (Not Lineal Ft. of Pipe.)
Size of Coil
Single Row............................ ........
Two......................................
........
Four.............................. ............ ........
Six. .........................
........
Eight........................................... .......
Ten............................................. .......
Twelve........ ..................
.......
l'
175 335 584 752 864 970 1075
1H' 215 413 724
930 1064 1200 1330
245 462 816 1050 1200 1350 1500
WALL COILS--Coils Placed Vertical--Pipes Vertical
Emission varies in inverse ratio of the height of the coil. Use 133 B.t.u. per lineal ft. of pipe as an average for 134 in. coil, 10 ft. high.
CEILING COILS--Coils Placed Horizontal--Pipes Horizontal
Emission is equal to that of a single row coil.
Allowance must be made however, if the coil is at the ceiling in a higher temperature.
In this case use 167B.t.u. per lineal ft. of pipe for 1 in. coils. 206 " " " " " " "1)4 in. coils. 231 " " " " " "lj^in. coils.
Note.--This Table hasbeen developed by amethodof deduction from the available data on such experimental work on pipe coils as has been recorded, and does not represent definite results of tests as in Tables 17 to 30. The values are therefore approximate only but can be used with assurance that they are more accurate than those obtained by the usual method for calculating pipe coil surface.
Table 30. Heat Emission of Direct Pipe Coil Radiation for Hot-Water Water Temperature at 180 deg. fahr. Room Temperature at 60 deg. fahr.
WALL COILS--Coils Placed Vertical--Pipes Horizontal
B.t.u. per Lineal Ft. of Coil per Hour. (Not Lineal Ft. of Pipe.)
Size of Coil .
Single Row.-.............................. ...... Two. .......................................... ...... Four............... ................. .'______ ...... Six............ .................................... ...... Eight............................................ ...... Ten............................................... ...... Twelve.................-...................... ......
i' '
105 198 352 456 520 583 645
1H" 131 248 432 558 640 720 . 800
l Pi"
147 276 488 630 720 810 900
WALL COILS--Coils Placed Vertical--Pipes Vertical
Entission varies in inverse ratio to the height of coil. Use 80 B.t.u. per lineal ft. of
pipe as an average for 1)4 in. Coil 10 ft. high.
,
CEILING COILS--Coils Placed Horizontal--Pipes Horizontal
Emission is equal to that of a single row coil.
"
Allowance must be made however, if the coil is at the ceiling where the temperature is higher.
In this case use 100 B.t.u. per lineal ft. of pipe for 1 in. coils.
'
125 " "
" " " " " 1)4 in. coils.
138 " "
" " " " " iy2 in. coils.
Note.--See note under Ceiling Coils for Steam.
46
1
American Society of Heating and Ventilating Engineers Guide, 1926-27
RADIATION FOR ROOM TEMPERATURES
The following table from the Establishment of Standard Methods of Proportioning Direct Radiation, by James A. Donnelly (Transactions, Vol. 21, p. 535) gives the proportionate heat losses from buildings, the proportionate transmission from direct radiators, and the proportionate radiation required (with steam at 210 deg.) for various room temper atures, when the outside temperature is zero:
Table 31. Effect of Room Temperature on Heat Loss and Size of Radiator
Room Temperature
PROPORTIONAT E
Loss in B.t.u.
Difference in Temperature Between Radia tor and Room
Proportionate Transmission
in B.t.u.
Room Temperature
Proportionate Surface
Required Sq. Ft.
35 40 45 50 55 60 65 701 75 80 85 90 95
100
105
110
115
120
0.50 0.57 0.64 0.71 0.79
0.86
0.93 l.OOf 1.07 1.14
1.21
1.29 1.36 1.43 1.50 1.57 1.64 1.71
175 170 165 160 155 150 145 140f 135 130 125 120 115
110
105
100
95 90
1.34 1.29 1:24 1.19 1.14 1.09 1.05
l.OOf 0.95 0.91 0.87 0.82 0.78 0.74 0.70
0.66
0.62
0.58
35 40 45 50 55 60 65 70 f 75 80 85 90 95
100
105
110
115
120
0.37 0.44 0.52 0.60 0.69 0.78 0.89 l.OOf
1.12
1.26 1.40 1.56 1.74 1.93 2.15 2.39
2.66
2.95
.
f Standard Conditions.
Assuming that the rate of heat loss from a building varies directly with the difference be tween the outside temperature and the building temperature, and considering the heat loss for zero outside, 70 deg. inside as the standard, or 100 per cent; the second column shows the proportionate loss of heat from a building when the outside temperature is zero, and the inside temperature is as given in the first column.
Assuming that the rate of transmission from a direct radi
ator to the air of a building is in proportion to their difference in
temperature, with a variation in the rate of transmission of
2 per cent, greater or less, for each 10 deg. increase or decrease
in their temperature difference, and considering 140 deg. differ
ence in temperature (steam 210 deg., building 70 deg.) as
standard, or 100 per cent trans mission, the second column
shows the proportionate trans mission when the difference in
temperature is as given in the
first column.
Assuming that under stand ard conditions of outside tem perature zero, building tempera ture 70 deg., and radiator tem perature 210 deg. (or 140 deg. difference between the radiator and room) the amount of radia tion necessary is 100 per cent, the proportionate amounts of radiation given in the second
column are those necessary to
heat a building to the tempera
tures given in the first column,
when the outside temperature is zero.
Note.--The amount of surface required for heating is always obtained by dividing the heat loss from
the building by the amount of heat transmitted per square foot of radiation. Therefore, as-may be seen
from the above tables, the proportionate amount of surface required for heating is obtained by dividing the proportionate heat loss from the building by the proportionate transmission of the radiator, in
each case.
`
The preceding table may be used to find the proportionate amount of radiation necessary to heat a room to any desired inside temperature, other than 70 deg., when the outside minimum temperature is other than zero, arid with' a radiator temperature other than standard. Find the difference between the outside temperature and the room temperature in the first column; divide the proportionate heat loss opposite this amount,
47 '
American Society of Heating and Ventilating Engineers Guide, 1926-27
in the second column, by the proportionate transmission opposite the
difference in temperature between the radiator and the room, as given in
the fourth column, and the result will be the proportionate amount of
radiation required.
'
Example.--What is the proportionate amount of radiation required to heat a room to 90 deg., with a temperature of 20 deg. below zero outside, and a steam temperature of 240 deg.
Solution.--The difference in temperature between 20 deg. below outside, and 90 deg. inside, is 110 deg. Opposite 110, the propor tionate heat loss or 1.57 is found in the second column. The difference in temperature between the radiator and the room (steam 240 deg., room 90 deg.) is 150 deg. Opposite this, the proportionate transmission 1.09 is found in the fourth column. Divide 1.57 by 1.09 and the quotient, 1.44 is the proportionate amount of radiation required.
EFFECT OF HUMIDITY
The late John R. Allen, while Director of the Society's Research Laboratory, submitted a paper as a report (A. S. H. V. E. Transactions, Vol. 26, p. 11), which in addition to the treatise on the heat emitted by
Fig. 8. Effect of Humidity on Heat Transmission .
"
various types of radiation, from which the preceding tables were calcu lated gives other'data from which'the following is taken.
Fig. 8 shows the effect of increasing the humidity upon the heat transmission. It will be noted that with extreme change of humidity there is a slight change in the heat transmission, the heat transmission reducing slightly as the humidity increases. Humid ity can have very little, if any effect upon radiation, and the effect of humidity must therefore change^the converted heat lost by the radiator. This change of converted heat is probably clue to the change in the density of the air passing over the radiator.
48
American Society of Heating and Ventilating Engineers Guide, 1926-27
. EFFECT OF AIR CIRCULATION The amount of heat given off by a radiator may also be increased by increasing the velocity of the air over the surface of the radiator. This increase.in velocity will increase the amount of heat carried off by convection. No exact data are available on the effects that may be introduced by increasing these velocities over radiator surfaces, but in rooms with moving machinery the heat transmission is increased approximately 10 per cent.
WARMING THE RADIATOR It is often very important to know the maximum condensation that occurs in a radiator when steam is turned on. Fig: 9 shows the condensation rate in pounds per hour for the time elapsing after steam is turned into the radiator. It will be noticed that the maximum condensation occurs 10 min. after steam is turned on, and in that
Time elapsing after Steam is turned info Radiator (in Minutes)
Fig. 9. Chart-Shows Demand upon Boiler for Heating-Up Plant
case it amounts to about three and one-half times normal condensation. After the end of 25 min., the radiator had reached a normal rate of condensation. This curve was made from observations at intervals of 10 min. so that the intermediate points between the 10 min. points are not known, and the form of the curve is not exact. It shows, however, that in starting a plant, the demand made upon the boiler may be very much higher than the normal demand.
EFFECT OF PAINTING The effect of painting was originally determined by experiments made with a cast iron rectangle, and in applying these to radiators of standard type, corrections must be made to allow for the difference between the area of the radiating and converting surfaces. The effect of painting is to change the radiation constant of the radiating surface and has practically no effect upon the heat lost by convection. It is, therefore, a surface effect and it makes no difference what paints are placed on the radiator as a priming coat, the results are always dependent upon the last coat of paint put upon the radiator. In radiators having a large proportion of radiating surface such.as pipe coils or wall coils, the effect of painting will be more marked than in four-column radiators having a comparatively small radiating surface in proportion to convecting surface. All finely ground materials have about the same radiation constant. Therefore all paints having finely, ground pigments will give about the same effect. Metals have a poor radiating effect so that any paint involving flake metal, such as the bronze, will have a low radiating constant.
49
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 32. Effect of Painting
.
The result of painting is largely dependent upon the last coat, and is more marked on
radiators having a large proportion of radiating surface, as pipe coils or wall radiators,
than on radiators having a comparatively small radiating surface in proportion to
convecting surface.
,.
Percentage of Effectiveness
Based on Values in Tables as 100 per cent
Cast Iron, bare..................................................... .................... Painted with flat black............................................. .......... Painted with aluminum bronze........................................... Painted with gold bronze............................... .................... Painted with white enamel......... ............. .............. .............. Painted with maroon japan.......................................... ....... Painted with white zinc paint.............................................. Painted with no-lustre green enamel................................
100% 100%
80%
81%
101% 100% 101%
96%
EFFECT OF ENCLOSING THE RADIATOR
The practice of enclosing radiators has become so general that there is
an insistent demand for definite data on the heating effect when so
enclosed.
.
It has been observed that enclosed radiation may give greater heating effect with less condensation than exposed radiators. This result is brought about by a decrease in the radiant effect and an increase in con vection effect due to the enclosure.
To accomplish best' results, care must be exercised to follow certain rules in designing the enclosure, the most important of which are:
1. Enclosures should be insulated with 1 in. magnesia or asbestos block, lined with bright tin or non-corrosive sheet metal, placed next to the radiator.
2. The surface of the radiator should be painted flat black, maroon japan, white enamel or white zinc. If the radiator is entirely concealed it may be unpainted.
3. The free area of the grill or opening at the outlet should be not less than the free area through the sections of the radiator.
4. The free area of the grill or opening at the inlet should be not less than 80 per cent
of the" free area at the outlet.
*
5. If the outlet is in the face of the enclosure so that the air flow is horizontal, the
free area of the outlet should be at least 150 per cent of the free area about the radiator,
and the clear height between the top of the radiator and the underside of the top of
the enclosure should be not less than the depth of the enclosure.
' '
6. Best results- are obtained with a tight fitting enclosure, provided the free area about the radiator at point of greatest restriction is not excessive. As a general rule the efficiency of the radiator is inversely proportional to the depth of the enclosure.
Case 1 is 10 per cent more effective than a direct radiator when properly constructed.. Case 2 is 5 per cent more effective than a direct radiator when properly constructed. Case 3 is equally as effective as a direct radiator when properly constructed. Case 4, with E equal to one-half A,--percentage of reduction is 10 per cent. Case 4, with E equal to A,--percentage of reduction is 20 per cent. Case 4, with E equal to 1 ViA,--percentage of reduction is 35 per cent. Case 5, with E equal to A,--percentage of reduction is 30 per cent. Case 6, percentage of reduction is 5 per cent.
This data applies to the use of cast iron column radiation, with en
closures built-in as part of the architectural treatment of the room and
does not apply to other types of enclosed radiators.
`
50
'
American Society of Heating and Ventilating Engineers Guide, 1926-27
EFFECT OF POSITION
The effect of position on heat transmitted by a radiator is a subject that has been investigated to a very limited extent. Experiments that are now available show the heat loss from a radiator is about the same whether it is placed on the floor, at the ceiling or in the middle of the
fflimrrmgig
| i
ZL
k
y/77//77/7//7s/////S?y.
Case 4 Fig. 13
Case 6 Fig. 15
Different Arrangements of Radiators in Enclosures
room, air temperatures being the same. It seems to make very little difference whether it is placed near the wall or near the middle of the room, as far as condensation is concerned. There is, however, a considerable difference in the heat of the room and the maintaining of a warm floor. This is particularly the case in rooms in which there is very little circula tion of air, due to mechanical means. Many factories that were effec tively heated with-ceiling radiation when belt drives were used have found it necessary to relocate the radiation at the floor, when direct
5! ^
American Society of Heating and Ventilating Engineers Guide, 1926-27
motor drives were installed on machines. It has been found under these conditions that high temperatures prevail at the ceiling while low tem peratures prevail in the working space. Not only operators have been affected under these conditions but also the output of the individual machines. Best results are obtained when the radiators are placed under the windows and adjacent to doors to the outside. The air heated by the radiators under the windows, rises, mixes with the cold infiltrating air from the windows, circulates across the ceiling, gradually settles to the floor, is drawn up by the radiator and the cycle continues. The advantage of placing radiators adjacent to the door is that the infiltration at this point is compensated for, the infiltrating air being warmed before it enters the heated space.
Placing a radiator close to an outside wall heats the wall immediately behind the radiator, but the infiltrating air through this wall absorbs this heat in part, the rest being used to compensate for the transmission losses through the walk
SPECIFICATION CLAUSES
Specifications for radiation should contain the following clauses:
1. Manufacturers must guarantee that the heat emission per radiator shall not fall below the values given in Tables 18 to 30.
2. Radiation must be free from flaws on surface and leaks at nipple connections, and guaranteed to stand a. hydrostatic test of not less than 100 lb. per sq. in.
3. Radiation must be thoroughly cleaned of all core sand, and if for vapor or modu lation steam systems must be washed out and the openings plugged before shipment.
4. Radiation must not be placed where dirt can get into the interior and if to be
placed in the weather or damp location must be given a priming coat of paint before shipment or immediately upon delivery at location.
5. Long or low radiators should be crated, and the crating not removed until placed
in final location.
.
6. Radiators supported from the wall or ceiling shall be supported on steel or wrought iron hangers.
52
Chapter III
STEAM HEATING SYSTEMS
PIPING systems for steam heating--one broadly classified as one-pipe, two-pipe, vapor and vacuum systems; condensation returning to boiler by gravity or mechanical devices. One-pipe system may be installed as a circuit or as a divided circuit, the steam mains rising close to the basement ceiling above boiler and then grades down from this high point, carrying with it steam and condensate. When the last radiator has been served the main may drop below the water line of boiler, when its size is reduced as the run back to the boiler carries only water, this run is called a "wet return." This return may be run above the water line of boiler, then, it is called a "dry return." In this system the condensate from the radiators returns to the steam main through the feed branches and risers as there is but one connection to the radiators. The air from the system is ejected through air valves properly placed on radiators at the end opposite steam supply, also, on mains properly placed near ends.
Two-pipe systems have two connections to the radiators, one for steam and the other for condensation, air being ejected through air valves properly placed as in the one-pipe system.
Vacuum systems employ a vacuum return pump to produce a vacuum in the system and return the condensation to the boiler.
Vapor or air return systems are two-pipe systems in which all the air and condensation are returned from the radiator through a dry return to a central point, from which point air is ejected from the system and con densate returned to boiler.
This system may or may not use thermostatic traps on the return end of radiators and the pressures used are generally not over a few ounces. Graduated supply valves may or may not be required. There are many variations employing various specialties which are usually patented and determine the name of the patented system. Owing to.their specialized nature, none are illustrated here but catalog data on several systems are given in this volume.
Gravity Circulation is the term used to indicate any system where the condensate returns to the boiler by natural flow. Wherever this is the case a certain distance must be allowed between the water line in the boiler and the low point of the steam main and the dry return in order to allow for the pressure drop in the piping system and the proper return of condensate to boiler.
Material for this section'corapiled by Perry West, consulting engineer. Newark. N. J.; R. V. Frost, consulting engineer, Norristown, Pa., and S. E. Dibble, professor of heating, ventilating and sanitation, Carnegie Institute of Technology, Pittsburgh, Pa.
53
American Society of Heating and Ventilating Engineers Guide, 1926-27 54
'VACUUM -CHECK VALVEj
. American Society of Heating and Ventilating Engineers Guide, 1926-27
Mechanical circulation indicates any system where the condensation is returned to the boiler by means of mechanical devises. Pumps for pro ducing mechanical circulation are discussed in Chapter VIII Page 115.
There are two broad divisions that may be very definitely made in the subject of pipe sizes for the heating and ventilating of buildings. The following capacity tables of steam mains and branches, radiator connec tions, etc., under average conditions should be applied for sizing pipes.
Of the two divisions proposed by James A. Donnelly in Code of Minimum Requirements for the Heating and Ventilation of Buildings, the first covers the distribution of the steam, and the second its use. The conveyance of steam for any considerable distance is a problem by itself, needing separate analysis and altogether different handling from any of the problems concerning the use of the steam after it has arrived at the building to be heated. Steam flow tables should be used for distribution, and tables giving the capacities of steam mains and branches, radiator connections* etc., under standard and average conditions of use should be applied for sizing the pipes within the buildings.
For this reason, data on the subject may be distinguished as:-- (1) transmission mains; (2) service piping.
Transmission mains are those that have to do with the conveying of steam for a distance of considerable extent, through or between buildings and for collecting and returning the water of condensation from the several sections or buildings.
Service piping is that part of the apparatus by which the radiating units are connected to the transmission mains.
The velocities of-flow used in the distribution of steam are only limited by the available or allowable drop in pressure, while the velocities within the buildings where the steam is used are limited by the critical velocities or the velocities which will allow of sufficient separation of the condensation so that defective circulation or water hammer will not occur.
STEAM HEATING PIPE SIZES
In using tables for steam heating pipe sizes, it is frequently hard to
determine the length of run upon which they are based. Usually some
allowance is made for one or more such items as: condensation in the pipe, equivalent length of fittings, and valves, etc., but it is generally
hard to determine what factors have been allowed for, and what per
centage of allowance has been made. In compiling the tables and other
data for The Guide, 1926-27 every attempt has been made to eliminate such indefinite and conflicting factors.
The principal factors upon which the determination of pipe sizes
for steam heating depends are:
-
1. The equivalent length of the run from the boiler, or source of steam supply, to
the farthest radiator,
-
2. The total pressure drop, which may be allowed, between the source of supply and the end of the return system.
55
American Society of Heating and Ventilating Engineers Guide, 1926-27
Length of Run
.
The length of run must not only include the actual linear feet of straight pipe, but also the proper allowance for fittings, valves friction and other items which cause drop in pressure. .
Pressure Drop
'
There are, theoretically, several factors to be considered, including: the initial pressure, the pressure required at the end of the line, fluctua tions in the initial pressure, the distance between the bottom of low point of steam main and dry return and the water line of the boiler (where the condensation is to be returned by gravity), the extra load on the system during heating-up periods, and the critical velocity, of the steam (especi ally in risers and branches where the steam and condensate flow in opposite directions), and in other lines where high velocities are objection able from the standpoint of noise, or the entrainment of condensate.
With a high initial pressure it is theoretically possible to allow
much greater drops in pressure if there is. sufficient distance between
the low point of steam main and dry return and the water line of the
boiler. In attempting any very great drop in pressure, the following
practical difficulties present themselves:
,
1. If the system is designed to secure the same drop in pressure for each unit of radiation (including those nearest, as well as those farthest from the source of supply) the velocity necessary to equalize these drops in the shorter runs will be so high that serious trouble will be encountered from noise and the entrainment of the condensate.
2. If the system is so designed as not to equalize these pressures, the condensate returning from radiators near the source of supply will be at a correspondingly higher temperature than that from radiators farthest from the source of supply, thus causing re-evaporation and pressures in the return system with consequent backing-up from one radiator to another, the holding-up of the return and the filling of the return lines, with too large a percentage of steam instead of condensate.
It has been found, that while it may be theoretically possible to design a system for reatively' large pressure drops, it is generally more satis factory to design heating systems on the basis of a low initial pressure and reasonably low total drops in pressure. The matter of fluctuations in pressure should be taken into consideration wherever the steam is to be supplied directly from the boiler, to the radiators at boiler pressure and the system should be designed to operate properly with the lowest pressure under which the boiler may operate.
With reasonably free venting, the steam supply requirements during the heating-up period may run as high as 300 per cent of the normal maxi mum load under running conditions (see p. 49, Fig. 9). Allowances should'be made for this extra demand, but inasmuch as the steam supply and the demand are somewhat self-regulating, so that if the demand is greater than the supply the pressure will drop and the supply be auto matically reduced, the allowance generally made is considerably under 300 per cent. It is more economical to allow for a certain-amount of over loading of the system during the heating-up periods and to allow a little more time for heating up than would otherwise be required.
56
/
American Society of Heating and Ventilating Engineers Guide, 1926-27
In the matter of initial pressure and return conditions it is undoubtedly
true that with a constant initial pressure (such as is produced by a high
pressure supply by means of a pressure reducing valve, or from the boiler
direct where the pressure is maintained constant), somewhat higher
drops in pressure and correspondingly smaller pipe may be successfully
used. It is also undoubtedly true that, with a mechanical return line
system where a constant vacuum of any desired degree of from 5 to
15 in. of mercury may be maintained, the factor of fluctuations in initial
pressure and the difficulties from high velocities and re-evaporation are
reduced, so that the pressure drops may also be higher and the pipe
sizes smaller. .
.
Unusual Conditions
.
Under this heading are the character and class of the building, the periodicity of use and the degree of normal temperature to be attained at the beginning of each period of use.
In public buildings, schools, offices, places of assemblage, and such buildings (where the occupants are normally at rest) the building should be heated to its normal temperature at the beginning of each period of use. In some buildings (especially offices, schools and public buildings), the time between heating periods is relatively short; whereas, in others (such as churches, places of assemblage, etc.), these periods are com paratively long. In commercial buildings such as factories, warehouses, etc., where the occupants are normally exercising, it is not necessary for the building to be heated to normal temperature at the beginning of its period of use. These facts should be taken into consideration in the matters of allowances which are to be made in the capacity of
the system.
GENERAL DATA ON PIPE SIZE TABLES
The following pipe size tables have been compiled for use in designing
steam heating systems, and may be used, by those experienced in the
profession, with satisfactory results. The following general principals
should be followed:
.
1. The initial pressure should not exceed 16 oz. gage.
2. It is recommended that the drop in pressure in the mains and-riser to the farthest radiator should not exceed 1 oz. per 100 ft. of straight pipe or its equivalent length, with a lower rate of drop-for systems with long runs.
3. In small installations, such as residences, where the longest actual run is seldom over 200 ft., and where the firing periods extend over several hours, resulting in boiler pressure, fluctuating from zero to about 1 lb., the total pressure drop should not exceed 2 oz. In larger buildings; where boilers are under the constant care of a fireman, a uniform boiler pressure is maintained, and where the water line difference will permit, the total drop in pressure may range from 2 to 8 oz., depending upon the equivalent length of the longest run. The total drop in pressure between the boiler and the farthest radiator, even in a skyscraper, should not exceed 8 oz.
4. The total allowable drop in pressure depends upon (a) the water line difference, {b) the equivalent length' of main and riser from the boiler to the farthest radiator, and (c) the regularity of the pressure maintained at the boiler or source of steam supply.
57
American Society 0/ Heating and Ventilating Engineers Guide, 1926-27
Fig. 20.
Connecting Two Boilers Using Check Valves and. Equalizers in Returns
5. The water line difference or distance between the water line of the boiler and the
low point of steam main or dry return main should not be less than 24 in., because of
the heavy drop in pressure from condensation in heating up a cold system. This
difference should be increased 2 in. for every ounce pressure drop in the system. If the
total pressure drop were 6 oz., the water line difference should be 6 X 2 + 24 or 36
inches.
.
6.. There should be a uniform drop in pressure between the source of steam supply and the farthest radiator on every riser. With a boiler pressure of 16 oz. and a maximum total pressure drop of 8 oz., the steam pressure at the supply valve of the farthest radiator on each riser should be 8 oz. The riser whose farthest radiator is 100 ft. from the main would be sized on a drop of 8 oz. per 100 ft. minus the drop in the main to
Fig. 21. Connecting Two Boilers Using the Hartford Return Loop 58
American Society of Heating and Ventilating Engineers Guide, 1926-27
this riser connection; while one, 200 ft. from the main would be sized on a drop per 100 ft. __ one-half of the difference between the drop of 8 oz. and the drop in the main to the riser connection.
The total drop, minus the drop in the main to the point of connection to any riser, divided by the equivalent length of the riser from the main to the farthest radiator in hundreds of feet, gives the drop per 100 ft. in the riser. For a total drop 6 oz., with the farthest radiator on riser No. 4, 200 ft. equivalent from the main and this riser connection 100 ft. from the source of supply, this riser would be sized on a basis of --^--
or 2J^ oz. drop per 100 ft. of riser.
Table 33. Flow of Steam in Pipes
P -- Loss in pressure in lb. d =* Inside diameter of pipe in inches L -- Length ot pipe in teet D = Weight of 1 cu. ft. steam W = Lb. of steam per min.
/ P D d& wTM^(i+3_6)l
d. 3.6\ W2 L
r -- u.uuuxaz yx T f D d&
Pressure
Loss
inOz.
Col. 1
1p
87.04/----y/ ioo
Inside Dia. Pipe
1
2
3
4 5
6 7 8 10 12 14 16 20 24 28 32 40 48 80 160 320 480
2.175 --3.076
3.767 4.350 4.863 5.328 5.754 6.152 6.878 7.532 8.138 ' 8.700 ` 9.727 10.655 11.509 12.290 13.756 15.069 19.454 27.512 38.863 47.652
i
IK m 2
m 3
3K 4 4M 5 6 7 8 9 10 12 14 16
--
--
Col. 2
1 ih
0.522 1.177 1.828 3.709 6.109 11.183 16.705 23.630 32.098 43.719 69.718 105.35 150.33 205.37 271.16 437.51 733.90 925.19
.........---
-...........
Steam Pressure By Gage
Col. 3
___
1
V
0.0 0.3 1.3 2.3 5.3 10.3 15.3 20.3 30.3 40.3 50.3 60.3 75.3 100.3 125.3 150.3 175.3 200.3
--...
0.193 0.195 0.201 0.207 0.223 0.248 0.270 0.290 0.326 0.358 0.388 0.415 0.452 0.507 0.557 0.603 0.645 0.685
--
... -- -
--
Length Pipe in
Feet
Col 4
v--
20 40 60 80 100 120 140 160 180 200 250 300 350 400 450 500 600 700 800 900 1000 1400
2.240 1.580 1.290 1.120 1.000 0.912 0.841 0.793 0.741 0.710 0.632 0.578 0.538 0.500 0.477 0.447 0.407 0.378 0.354 0.333 0.316 0.267
Column lX2X3X4=lb. steam per min. will flow through a straight pipe for a
given condition.
.
-
Example.--1 oz. drop -- 2-in. pipe -- 1.3 lb. press. -- 100 ft. long -- 2.175 X 3.709 X 0.201 X 1 = 1.615 lb. per min., then 1.615 X 60 -- 20 per cent = 77.28 lb. per hr.
Preceding table does not allow for entrained water in low-pressure steam, condensa
tion in covered pipe and roughness in commercial pipe, therefore reduce calculated
capacities approximately 20 per cent.
'
59
American Society of Heating and Ventilating Engineers Guide, 1926-27
In using this method experience indicates that no pipe carries a velocity above the critical value of 20 ft. per second where steam and condensate flow in opposite directions, or above 50 ft. per second elsewhere on account of noise and entrainment difficulties.
7. In order to get uniform distribution of steam throughout the entire system, it is necessary to control the flow by reducing the riser sizes nearer the boiler. The nearer the riser is to the boiler, the greater will be its drop in pressure per 100 ft., since the total drop at the top of all risers should be practically the same.
8. Pipe sizes are figured on a pressure drop basis for steam and water flowing in the same direction or on a critical velocity basis when flowing in the opposite directions.
9. Due to the high rate of condensation in heating up a cold system the critical velocity should be figured at not over 20 ft. per second which will give velocities con siderably below the critical velocity once the system is heated.
PIPE SIZES
Table 33 gives the numerical value of the four factors of the Babcock
formula for various sizes and lengths of pipe and various initial pressures
and pressure drops. By multiplying together the four factors for any
set of conditions the pounds of steam per minute which will flow through
the pipe may be found, as illustrated in the example accompanying the
table.
.
Table 34 is a basic table giving the theoretical capacities of pipe in
square feet of direct cast iron radiation (based on lb- steam per hour
per square fpot) for various pressure drops in ounces per 100 ft. length of
pipe or equivalent length and with an initial steam pressure of 1 lb. gage.
This table does not allow a factor of safety for variation in pipe size,
condensation in the pipe or other variables and should not be used without
taking these factors into consideration.
'
Table 35 is the same as Table 34 except that it allows a 20 per cent factor of safety to take care of condensation within the pipe- itself, varia tion in size and roughness in the pipe due to blisters, scaled corrosion and other factors. This table is recommended for general use. .
In determining the length of pipe used in any system, the actual length must be increased for the various fittings, and values ,in deter mining the equivalent length before applying any of the tables given. Table 36 gives the length in feet to be added to the actual length of pipe for various fittings and values in determining the equivalent length. If it is desired to determine the capacity of a pipe for any other length than 100 ft. or for any initial pressure other than. 1 lb. such capacity may be found from either Table 34 or 35, by multiplying the capacities found in those tables by constants given in Table 37.
Example.--What is the capacity of a 140 ft. 4 in. pipe with an initial pressure of 1 lb. and pressure drop of 2 oz. in the 140 ft.?
Solution.--From Table 35 it is found that the capacity of a 100 ft. 4 in. pipe with 1 lb. initial pressure and 2 oz. pressure drop, is 2780 sq. ft. Multiplying this value by 0.841 the constant for a 140 ft. length as given in Table 37 gives 2337 the capacity for the given conditions.
Example.--What is the capacity of a 100 ft. 4 in. pipe with 2 lb. initial pressure and pressure drop of 1 oz.?
60 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
Solution.--From Table 35 find, 1926, the capacity of this pipe with a 1 lb, initial pressure. Multiplying this by 1.03 for a 2 lb. initial pressure as given in Table 37 gives 1984 the capacity for the given condition. By using the capacities given in Table 34 rather than Table 35 in examples 1 and 2, the capacities for the given conditions without allowing for a factor of safety of 20 per cent may be obtained.
Table 38 gives the capacities of various sized pipes for parts of systems
based upon stated conditions. Column B gives the capacities of various
sizes, of supply mains, branches, to risers which are dripped, down-feed
risers, or any other part of any system where steam and the condensation
either from radiation or from the pipe itself flow in the same direction,
based upon 1 lb. initial pressure and a drop of 1 oz. per 100 ft. and allow
ing a 20 per cent factor of safety. These capacities apply particularly
to two-pipe steam and two-pipe vapor systems.
"
Column C gives the capacity of supply mains, branches to risers not dripped, up-feed risers, or any other part of any system where steam and condensate flow in opposite directions, based upon a steam velocity of 16 ft. per second. These capacities apply particularly to a one-pipe system and those parts of any two-pipe system where the condensate from radiators or from the pipe itself are expected to flow in the opposite direction to the steam.
Column D gives the capacity of branches to radiators based upon steam velocities of 12 and 16 ft. per second respectively for such branches with in- and 1 in. pitch per 10 ft. length.
Table 39 gives the capacity in square feet and pressure drop in ounces
for various sized pipe and various steam velocities ranging from 12 to
40 ft. per second.
,-
Tables 40, 41 and 42 give the capacities of return mains, return risers and radiator connections, for vacuum systems. The capacity of supply mains and risers for vacuum systems may be taken directly from Table 35 if the allowable pressure drop is greater than 1 oz. per 100 ft. or from Table 38, Column B, if a pressure drop of only 1 oz. per 100 ft. is to be allowed. .
Table 43 gives the pounds of steam which will flow per minute through standard pipe at 4000 ft. velocity, and the resulting pressure drop in pounds per 100 ft. equivalent length. This table is particularly applicable to transmission mains and should not be used without particular con sideration in designing distribution systems.
Either capacity of a pipe in any part of a system is limited either by the allowable pressure drop along the pipe, or by. the steam-velocity through the pipe or both. If condensate, either from radiation supplied or from the pipe itself, is to return counter to the flow of steam the velocity of the steam must not exceed certain critical values. If the velocity exceeds the critical value the system may continue to operate, but will be noisy. If the velocity exceeds a higher maximum value the condensate will cease to return counter to the-steam and will be along with it clogging the radiator if it has a one-pipe conn passing through the radiator if it has a two-pipe connection.
T a b l e 3 4 . P r e s s u r e o s s e sL w it h L o w P r e s s u r e S t e a m
N o allowance fo r condensation in pipe or co n strictio n due to scale or corrosion or o th e r factors
American Society of Heating and Ventilating Engineers Guide, 1926-27
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a.is c o^i
fin'ONN'*oo<'
62
American Society 0/ Heating and Ventilating Engineers Guide, 1926-27
Table 36.
Length in Feet of Pipe to be Added to Actual Length of Run to
Obtain Equivalent Length
.
Size of Pipe
St'd. Elbow
Side Outlet Tee
Gate Valve
Globe Valve Angle Valve
Length in Feet to be Added in Run
2"
2W 3" 3 y2" 4" 5" 6" 7"
8" 9" 10' 12" 14"
5 16 7 20 10 26 12 31 14 35 18 44 22 50
26 55 31 63 35 69 39 76 47 90 53 105
2 18 3 25 3 33 4 39 5 45 7 57 9 70 10 82 12 94 13 105 15 118 18 140 20 160
9 12 16 19. 22
28 32 37 42 47 52 63 72
Example of length in feet of pipe to be added to actual length of run.
MEASURED LENGTH.
OZrO
5:0z
. . --------------
S6-0:
EQUIVALENT LEN6TH * 193 -0`
Table 37. Constants for Various Initial Pressures and Lengths
Steam Pressure Gage Lbs.
Constant bt Which to Multiplt Capacitt op ant Pipe tor 1 Lb. Gage Steam Pressure to Obtain Capacity op Same Pipe tor Pres
sure in Col. 1
Length op Pipe
Fr.
Constant bt Which to Multiply Capacity op 100 Ft. Pips to Obtain Capacitt op Same Sized Pipe With Same Pressure, and Lenqth as Given in Col. 3
' Co!. 1
CoL 2
Col. 3
Col. 4
(' .
<_
' '/,
:
*
Is i!
0
1
2
5
10
15
20
30 40 50 60 '75
100
125 150 175
200
I i!3*
0.92
1.00
1.03
1.11
1.24 1.35 1.45 1.63 1.79 1.94 2.08 2.26 2.54 2.79 3.02 3.23 3.44
'--
....
20 .
. 40 60 80
100
120
140 160 180
200
250 300 350 400 450 500 600 700 800 900
1000
1400
63
'- !
2.240 1.580 1.290
1.120
1.000
0.912 0.841 0.793 0.741 0.710 0.632 0.578 0.538 0.500 0.477 0.447 0.407 0.378 0.354 0.333 0.316 0.267
T a b l e 3 8 . C a p a c it y o f P ip e i n S q u a r e F e e t o f D ir e c t R a d ia t io n f o r O n e a n d w o - P ip e St e a m S y s t e m s , W h e n P r e s s u r eT D rop is n o t O v e r 1 oz. per 100 f t . o f E q u iv a l e n t L e n g t h o f R u n .
_____________ I n it ia l Steam Pressure 1 lb. Gage_________________ ________ ;_______________________ C apacity in Sq.' Ft. o f R a d ia tio n_____________
American Society of Heating and Ventilating Engineers Guide, 1920-27
Drips to Returns Steam iRsers .
0. - O filss $*=>
{ass
*a
' 3
Jl
QO * O--H LPOO. -
QOOO -< PO
g, o jS a'gi ^ Cm J O Cm 3' 5 >
0^00.2CO . 43> X Q
&
5 IS
gs
,,sr.s
BS .
Q 18 e'S"-
SfiO-Sii Z
II
ESU
45sS
IS 82
*2
|l|o
O o J' -Z.
325 < 0o S"C OB
PQ
pCm -u- y, 2eJ .5 208
*&!
HiiiCsQS 3C/KQ1 J> a0s. 2S|gl|
*<z a < s>,
faSa"l"
A|ftaSMJ2 i2ge
0Q
S3 *C
w,, 151
OOQQOQC
0H0^NaO>oOoOoO>Cc
8OO 8oo8O8O8O5<
:? 'O*>CoMOoCoN -m CN
Drips to Returns
C'J rr> Tf<
& w'vmX
S eo\M\rt\
S e.2oJ
1' -< ^"<- C*
SO0 `O*NO''OO'HOOnHOrOOQTOf'OOO
"f^tNO0'^*'H2OC>OO0f0O0O0O>OOtOif'ONa cn M rn CO B* Tf
pvlopioo^imoUDro'oOi
6o ** c 01
D,p
^'a =5*
64
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 39. Capacity of Pipe in Square Feet of Direct Radiation and Pressure ' Drops in Ounces per 100 ft. of Equivalent Length of Pipe for
Various Velocities of Steam
Initial Steam Pressure 1 Lb. Gage.
Size . 12 Ft. per Sec. 16 Ft. per Sec.
20 Ft.J'eh Sec.
25 Ft. per Sec.
30 Ft. per Sec.
40 Ft. per Sec.
Pipe
Sq. Ft. P. D.* Sq. Ft. P. D.* Sq. Ft. P. D.* Sq. Ft. P. D.* Sq. Ft P. D.* Sq. Ft P. D.*
3A"
l"
mn lw
2"
tw r iW 4"
25 40 63 90 150 220 340 440 650
1.0 0.8 0.4
0.4 0.2 0.18 0.17 0.16 0.15
35 60 90 120 210 300 490 630 800
2.4 2.0 0.8 0.6 0.3
0.3 0.25 0.2
0.19
45 70 115 152 260 370 590 780 1000
3.9 2.7 1.2 0.9 . 0.7 0.5 0.4 0.3 0.2
55 85 145 195 325 460 750. 960 1260
6.0 3.8 2.4 1.6 1.3 0.7 0.7 0.4 0.3
65 102 172 235 400 560 900 1150 1500
8.0 5.6 3.2 2.5 1.7 1.2 0.9 0.6 0.5
90 138 235 312 530 750 1210 1550 2000
16.0 10.0
5.8 4.2
3.0 2.7 1.8 i:5 1.0
*P. D. *= Pressure drop in ounces.
Table 40. Capacities of Wet Return Mains in Square Feet For Vacuum Systems
.
-- *
-
Size of Pipe
1# 1)4' 1)4' 2* 2)4' 3' 3M'
'Length 300' 600 1,200 3,000 8,200 15,000 28,500 40,000
"
800'
375
750 1,875 5,200 9,700 17,000 25,000
" 1,000'
700 1,700 4,680 8,700 15,100 23,600
" 1,500'
610 1,420 3,850 7,150 12,300 18,900
" 2,500'
1,125 3,000 5,600 9,425 15,000
Length equals measured distance from vacuum pump to end of riser.
Table 41. Capacities of Return Risers in Square Feet for Vacuum Systems
Size of Pipe
K' 1'-/ IK'
"Length 100' " 200' " 400' " 600' " 1,000' " 2,000'
925 1,850 3,910 700 1,400 3,150 560 1,120 2,480 420 840 1,750 350 700 1,470 230 460 1,050
Length equals measured distance from boiler or pressure reducing valve to end of riser. Capacities as given in Tables 40 and 41, include allowances for elbows, tees, etc.
Table 42. Radiator Connections for Vacuum Systems
Capacity in Sq. Ft. Radiation
Size of Inlet
Valve
Supply
Vertical
Pipe to Inlet Valve
Horizontal Runout to
Vertical Inlet Pipe
Return
Size Trap
Horizontal Stub to Trap Runout
to Stub
1 to 60 61 to 100 101 to 200 201 to 350
w
i"
i %" 1w
i*
\ys
m*
i"
IK" 134" 2"
34" 34" 34"
34" 34" K'
K" K" K"
K" '
K"
Radiators to be water pattern tapped or bushed top and bottom opposite ends.
'
Steam pattern radiators can be used when tapped or bushed eccentric opposite ends with supply bushing
turned up and return bushing turned down.
.
65
American Society of Heating and Ventilating Engineers Guide, 1926-27 66
Courtesy Crane-Company.
American Society of Heating and Ventilating Engineers Guide, 1926-27
- RESULTS OF LABORATORY EXPERIMENTS
The Research Laboratory of the American Society Heating and Ventilating Engineers has investigated this subject1, and has found the critical velocity for quiet operation to be about 22 in. per second for the sizes of pipe investigated and apparently increasing with the size of pipe. The maximum velocity, however, with counter flow of condensate where noise is not objectionable is considerably higher and increases rapidly with size of pipe. In the case of horizontal runs both the critical velocity for quiet operation and the maximum velocity where noise is not objectionable, depend upon the pitch of the pipe. The maximum capacity and velocity where noise is not objectionable for horizontal pipes with various pitches are given in Table 44.
Mum ber of Z
Riser _____. 4
I 1
1*1
Type df Entrance Jquared Cntrano
Ilb*<ioiHEtiof2n,11iADToiAaiom4.1I[IAtSe0i5*Sr0mTc|&153ToDTocipjItBA
at s
IPATooniontSi1IxAo'EMpfnc_11XT]oISo
I c.
it)
Btomcd ' &' 3
3 s iS $
iS i i 1
Bounded
ViqldlMddkr
&S I
w Wm
Three
7 j r
^t-------
--5 --
----0 -----'-m
--C-----
(--A--4
-----K-------*
Vwarco Entrance Reamed Entrance
W=r
. Rounded Entrance 5<NeLE^rHRceWtaQjCurrcR
(P) tt>)
(?)
DufttAO or MINES ooTt^tnnifTcr-'ano(tpMRWpaf.tMq-
Fig. 22. Effect of Reaming Entrance to One-Pipe Risers
The capacity of risers with various shaped entrances is very important and those shown in Fig. 22 gave the following maximum capacities:--
Reamed entrances.................. ............ .. 24.7 lb. per hr. Rounded entrances___ ____ ............... 23.9 lb. per hr. Squared entrances.................. ............... 22.2 lb. per hr. Three wheel cutter................. ............... 19.2 lb. per hr. Single wheel cutter................. ............... 17.6 lb. per hr.
Per Cent Decrease
0.0 3.2 10.1 22.2 28.7
Where the velocity of steam is the limiting factor of the capacity of a pipe, care must be taken that this velocity is not exceeded in any part of
Reports by Houghten & Ebin, Transactions, American Society of Heating and Ventilating Engineers, Vols. 28-32, inch
67
American Societv of Heating and Ventilating Engineers Guide, 1926-27
the pipe or fittings by a constriction, since the velocity at any one con striction will limit the whole system. For this reason, particular care must be taken to ream such pipe and guard against dope constricting it at joints. Iron pipe should also be examined for constricting blisters, Fig. 22 and Table 46, from the Laboratory reports already mentioned show the importance of these factors. '
Table 46 shows variation in capacity of a pipe as affected by variation of size and smoothness of pipe generally found on the market. The maximum and minimum results were obtained by picking out very smooth and very rough pipe from the stock room.of a large manufacturer.
Table 44.
Maximum Capacity of Steam Lines at Various Pitches Pitch of Pipe in Inches per 10 Ft.
Pitch op Pipe--# in. H IN.
1 IN. ' IMw.
2 IN.
3 IN.
4 IN.
5 IN.
Pipe Size.
Sq. Ft Rad. Based
on 240 B.t.u.
iM s
Sq. Ft Rad. Based on 240 B.t.u.
iff 5
Sq. Ft Rad. Based
on 240 B.tu.
Max.Vel. Max.Vel.
Sq. Ft Rad.
Based
on 240 B.tu.
Sq. Ft.
Sq. Ft.
Sq. Ft.
Sq. Ft
Rad. Based
on 240 B.tu.
> a a
Rad. Based
on 240 B.tu.
>aK*
Rad. iff
Based
on 240 B.tu.
3
Rad. Based
on 240 B.tu.
> .3
w
w
2"
25.0 12 30.3 14 37.3 18 40.4 19 42.5 20 46.1 21 *47.5 22 49.3 23 45.8 12 52.6 15 63.0 17 70.0 20 75.2 22 83.0 23 87.9 25 90.2 26 104.9 18 117.2 20 133.0 23 144.5 25 154.0 27 165.0 28 172.6 29 178.2 31 142.6 18 159.0 21 181.0 23 196.5 25 209.3 27 224.0 28 234.8 30 242.6 31 236.0 19 263.5 20 299.5 23 325.5 25 346.5 27 371.5 28 388.4 29 401.1 30
Table 45. Results of Tests on Angle and Globe Valves
Nominal Size of
Pipe In.
X
l
IX
' Area of Pipe Sq. in.
0.537 0.835 1.459 1.927
Area Valve Seat
Opening Sq. In.
Per Cent of
Area of Pipe
0.4418 0.822 1.258 1.773 .
82.2 98.4 86.2 92.2
Maximum Pipe
and Valve
9.68 22.10 30.00 46.13
Capacity Pipe Alone
Per Cent of Capacity
of
Pipe Alone
13.52 23.30 47.5 68.5
71.6 95.0 63.1 67.4
Nominal Size In.
X i ix m
Valve Stem --Vertical
Capacity of Pipe and Valve
Lb. per Hr.
1.38 7.73 13.20 18.81
Per Cent of Capacity
of Pipe Alone
11.8 35.7 31.2 33.0
Valve Stem---Horizontal
Capacity of Pipe and Valve
Lb. per Hr.
8.83 14.06 22.88 32.00
Per Cent of Capacity
of Pipe Alone
76.3 66.1 54.3 56.7
.
Table 46.
Per Cent Difference in Capacity Due to Variation of Pipe Size and Smoothness '
Maximum Condensation, Lb. per Hr.
Capacity of Pipe.............................. ............ Maximum........................................................
X"
14.00 15.20
8.6
1"
24.89 30.08
20.8
IX"
45.42 52.08
14.7
IX'
70.50 82.00
16.3
*\ ' '
American Society of Heating and Ventilating Engineers Guide, 1926-27
tUVOTlQW
. . fcwmc WVTMOSIT- omp.
Note --Allowance for expansion must be made in long runs of mains both vertical and i^nzontal. One expansion joint or swing should be installed in any run over 100 ft. 0 in. long and one foreach additional 100 ft. 0 in. of run. All branch connections should be made so as to allow a swing both at
the main and the other end connections.
__ '
Fig. 237 Typical Expansion Connections for Risers
69 -. i
I American Society of Heating and Ventilating Engineers Guide, 1926-27
70
!
THtfMOMATiC TCAP
American Society of Heating and Ventilating Engineers Guide, 1926-27
American Society of Heating and Ventilating Engineers Guide, 1926-27
TYPICAL CONNECTIONS TO MANIFOLD COILS OF MOT OVER S PIPES
ionstypical connect
TO manifold
COILS HAVING MORE THAN S PIPES.
Fig. 27. Indirect Radiator Connections
I?etu*n
Connections
Blast
Cons
.
Fig. 28. Return Connections to Blast Coils 72 73
American Society of Heating and Ventilating Engineers Guide, 1926-27
WITH OWOtttARVHgATlHG COIL
Fig. 29. Connections to Coils in Tanks
74
Chapter IV
SYSTEMS AND PIPING FOR HOT WATER HEATING
A HOT WATER HEATING SYSTEM consists essentially of heaters,
radiators, and a connecting system of pipe through which water
\t,
circulates while conveying heat from the heater to the radiators. The connecting pipe lines should be arranged and proportioned so
that every radiator will receive its proper share of heat when the total
quantity of heat required by all the radiators is being delivered to the
water at the heater. There are a large number of systems or methods
of arranging the pipe lines in a hot water system. A few are indicated
in Fig. 31.
The force maintaining circulation is either that of gravity, which acts
because the water in the return risers is heavier than the water in the
supply risers, or the force supplied by a pump placed in the return
main near the heater. When circulation is due to gravity, it is called a
Gravity System; when circulation is produced by a pump, it is called a
Forced-Circulation System.
OPEN AND CLOSED SYSTEMS
Hot water heating systems may be either open or closed. Open systems have expansion tanks vented to the atmosphere. Closed systems are operated under pressures higher than atmospheric.
In designing the pipe lines for a Closed System the same methods and formulas are used to determine the pressure heads and friction heads as are used in designing an'Open System.
The principal difference between a closed system and an open system is that in a closed system,' the pressure on the water in the system can be regulated by a set of valves whereas, in an open system, the pressure on the water is only that due to the atmosphere and the column of water extending from the expansion tank to the point where the pressure is measured. In general, the pressure on the water is higher in a closed system than in an open system and, consequently, the water can be heated to a higher temperature in the former without boiling. As the temperature of the water in a heating system is increased, the size of the radiation and of the pipe lines, necessary to supply a given quantity of heat, is decreased. An open system can be made the equivalent of a closed system in this respect by elevating the expansion tank to a sufficient height. For example, if, in a closed system, a pressure of
Chapter especially prepared for The Guide .by F. E. Giesecke,. professor of mechanical engineering.
University of Texas, Austin, Texas.
.
75
American Society of Heating and Ventilating Engineers Guide, 1926-27 76
American Society of Heating and Ventilating Engineers Guide, 1926-27
15 lb. per square inch is maintained in the highest radiator and if, in an open system, the expansion tank is located 15 x 2.4 or 36 ft. above the
highest radiator, the two systems will be alike so far as pressure and
boiling points are concerned.
Since water is only very slightly compressible (a change in pressure of
10 lb. per square inch will produce a change in volume of about 1 in
33,000) its density and its coefficient of friction may be considered
independent of pressure and hence the laws governing pressure heads
and friction heads are also independent of pressure and are the same-for
closed systems as for open systems.
-
PRESSURE HEAD
The force maintaining circulation is sometimes expressed in pounds pier, square inch but more generally in terms of the height of a column of water which would produce this pressure, i. e. in feet of water, millinches of water, etc. The height of such a column of water is the Pressure Head.
FRICTION HEAD
The forces resisting circulation are the frictional resistances in the heater, the radiators, the pipe lines, the several fittings and valves, and in the water itself. These resisting forces are also expressed in terms of water column. The height of this column is the Frictional Head.
Tests by Professor F. E. Giesecke demonstrate that the friction head for new commercial black iron pipe of American manufacture is
h -- 83 1/1.88 d - 0.04 d - 1.275
where
h -- friction head, per foot of pipe, in millinches of water,
V = velocity, in ft. per sec.
,
d = actual internal diameter of pipe, in inches.
It has been found by experiment that the friction of water in com
mercial black iron pipe varies, approximately, as the 1.8 power of the
velocity and that the friction in fittings, valves, and in radiator and
heater inlets and outlets varies, approximately, as the square of the
velocity of the water in a .pipe having the same nominal size as such
fitting, valve, etc. It is, therefore, impossible, to express with accuracy
the friction in a pipe fitting in terms of the friction in the pipe. For
example, if the friction in an elbow is equal to the friction in 3 ft. of pipe,
when the velocity of the water is 1 ft. pier second, the friction in the
elbow will be equal to that in 4.1 ft. of pipe when the velocity is 5 ft.
per second, and equal to that in 2.2 ft. of pipe when the velocity is 1/5 ft.
per second.
.
-
It is possible, however, to express, with sufficient accuracy, the friction in one pipe-fitting in terms of the friction.in any other pipe-fitting or in any valve. For example, if the friction in one open globe valve is equal to that in twelve elbows, when the velocity is 1 ft. per second, the same relation will exist at all other velocities, if the friction varies as the
77 . -
'. !
Prejjure Head in M il in c m e j per Foot o r
Water C olumn
American Society of Heating and Ventilating Engineers Guide, 1926-27 Temperature or Water in Flow Pijer
78
American Society of Heating and Ventilating Engineers Guide, 1926-27
square of the velocity in both cases. Since more 90 deg., elbows are used in hot water heating systems than any other type of fitting or any valve, all fittings, valves, and other obstructions, found in radiator circuits, shall be expressed in terms of elbow equivalents, for the determination of their friction heads. For this purpose the following table of equivalents may be used:1
1 90 deg. elbow......................................... 1 45 deg. elbow......................................... 1 Open return bend................................. 1 Tee._......................................................... 1 Open gate valve..................................
1.0 0.9 1.0 2.2 0.5
1 Open globe valve............................ 1 Angle radiator valve.................. 1 Radiator....... _.................................... 1 Heater.................................................
12.0 2.0 3.0 3.0
To avoid friction head calculations by complicated formulae, the diagram of Fig. 33 may be used to find the friction head in one foot of pipe, as the diagram of Fig. 34 is used to find the friction head in one
elbow.
GRAVITY SYSTEM
The pressure head for any radiator or group of radiators, in a gravityflow system, shall be determined by calculating the maximum difference in the pressures caused by the water in the. flow and return risers and dividing this difference by the density of water whose temperature is the mean of the temperatures of the water in the flow and return risers. To illustrate: If a radiator is located above the flow main so that its risers are 12 ft. high, and if the temperature of the water in the flow and return risers is, respectively, 180 and 160 deg.,' and if the density of water at 180, 170 and 160 deg. is, respectively, 60.58, 60.80, and 61.00 lb. per cu. ft., the maximum difference in the pressures caused by the water in the two risers is 12 (61.00 -- 60.58) or 5.24 lb. per sq. ft.; the corresponding pressure head is 5.24/60.80, or 0.0829 ft., or 995 m.i. of 170 degi water.
Instead of calculating the pressure head, it may be determined, with sufficient accuracy, from Fig. 32. To illustrate: For the example cited, find 180 on the upper margin of the diagram; from there traverse vertically downward to the intersection with the inclined_160 deg. line; from there, horizontally to the left margin and read 82 m.i."per foot of water column; multiply by 12, the height of the risers in feet, and find 984 m.i: of 170 deg. water, which differs only by about 1 per cent from the head calcu lated previously.
After the general arrangement of the pipe lines has been decided upon, the pipe sizes are determined so that, for any radiator or group of radiators, the friction head is equal to the pressure head when the system is operating at a uniform or constant rate.
The friction head for any radiator or group of radiators should be determined by calculating and adding together the friction heads.!n the heater, radiator, pipes, pipe fittings, and valves which constitute the circuit for that radiator or group of radiators.
'These values are based, .with slight modifications suggested by later research, on experimental
determinations by F. E. Giesecke and published in Domestic Engineering, November, 1912. A record
of these tests is shown in Harding and Willard, Heating and Ventilating, p. 259 and in Marks,' Machine
Design, pp. 239-240.
.
.
79
American Society of Heating and Ventilating Engineers Guide, 1926-27
American Society of Heating and Ventilating Engineers Guide, 1926-27
F riction Head in M ilincmcj pep Foot o r Pipe F rictio n H e a d ' in M iu n c h c s per E lb o w
Fig. 34. Chart for Finding the Friction Head Per Elbow 80 81
American Society of Heating and Ventilating Engineers Guide, 1926-27
Gravity hot water heating systems may be designed for even circula
tion at any range of water temperature difference between flow and
return, within practical limits. Small differences in temperature result
in large pipe sizes, uneconomical both in cost of installation and operation,
and slowness to respond to outside temperature changes. Large differ
ences in temperature result in undesirable small piping and difficulty in
balancing for circulation. While gravity systems have been designed
and installed on as low as 10 deg. and as high as 60 deg. difference,
best results are obtained for difference between 20 and 30 deg. with 20
deg. difference applicable to most conditions.
.
The calculations of pipe sizes to the radiator most unfavorably situated on the basis of one or more different temperature differences will usually make the best practical temperature difference evident. The criterion which determines whether one radiator is more unfavorably or favorably situated than another is the value of the quotient when the height of the center of the radiator above the center of the boiler ia feet is divided by the total travel of the water through the radiator in question.
In selecting approximate pipe sizes the following Table 47 may
be used:
'
Table 47. Approximate Pipe Sizes for Gravity Circulation for a Temperature Drop of 20 Deg. and for Velocities Ranging from 2 to 6 In. per Second
Pipe Size
w.~
K'-
r...... iK"-
iK"--
2"...... 2K"3"......
3K"~4".........
4 K"-
5"...... 6"............
Capacity in 1000 B.t.u.
1.5 to 4.6 2.7 " 8.1 4.4 " 13.1 7.6 " 22.7 10.3 " 30.9 16.9 " 50.8 24.2 " 72.5 37.3 " 111.8 49.9 " 149.6 64.3 " 192.9 80.7 " 242.0 102.0 " 306.0 146.0 " 438.0
The capacities shown in the table vary directly with the temperature drop and the velocity. Since the velocity depends on the pressure head and on the friction head it cannot be predicted or estimated accurately before the system is designed and, consequently, Table 47 must be usea only for very approximate determinations of pipe sizes.
A much better approximate determination of pipe sizes may be made
by the following method:
-
1. Determine the equivalent length of the circuit by adding the length of the pipe
in the circuit to the equivalent length of the elbow equivalents, placing each elbow
equivalent equal to a pipe whose length is equal to 24 diameters..
.
-
.
'
2. Determine from Fig. 32 the pressure head for the circuit and divide it by the
equivalent length of the circuit to find the average friction head ot the circuit in
millinches per foot of pipe.
'.
3. Determine from Fig. 33 which pipe size has that particular unit friction head when the given quantity of heat is being conveyed.
82
American Society of Heating and Ventilating Engineers Guide, 1926-27
To illustrate the application to practice, let it be required to determine the sizes of a few of the pipes for the hot-water heating system shown in Fig. 35.
This system is intended for a three-story building in which all rooms are to be heated to 70 deg. The first floor radiator is to dissipate 10,000 B.t.u., the second floor radiator, 8000 B.t.u., and the third floor radiator, 12,000 B.t.u., per hour.
Fig. 35. General Arrangements of Heating System
The system is piped so that water, leaving the heater, may take any' one of three paths, through Radiator, 1, 2 or 3. The correct solution of the problem requires that the three paths be so proportioned that the proper quantity o'f water will flow through each of the three radiators.
Proceed with the design as follows:
__ .
. 1. Divide the three circuits of the system into sections so that every section will contain only one pipe size and only one rate of flow of heat. For example, the circuit of Radiator I should be divided into four sections; the first section extending from H to A ; the second from A to 1; the third from 1 to 5; and the fourth from B to H. ' The point A must be the
83 '
American Society of Heating and Ventilating Engineers Guide, 1926-27
division point of two sections because the Section H-A conveys the heat
for all three radiators, whereas Section A-l carries only the heat for
Radiator 1.
.
For a similar reason B must be a division point. The reason for selec ting 1 as a division point is that it'is often necessary to select a different pipe size for Section A-l than for Section 1 -B, in order to secure the proper friction head for Radiator 1. If it were certain that the pipe size for Section A-l could be the same as that for Section 1-B the pipe line from A to B could be called one section; since it is impossible to know in advance what the pipe sizes leading to and from the radiator must be, it is best to make the radiator the division point of two sections.
2. Having divided the several circuits into sections prepare a table,
like Table 48, and record there the designations of the several
sections, the quantity of heat conveyed by each section, and the number
of feet of pipe and the number of elbows or elbow equivalents in each
section. All of this information should be obtained from the plans for
the heating system. In Fig. 35 is shown only a diagrammatic repre
sentation of the system to illustrate the general arrangement. In this
case a number of elbows, valves, air valves, and the expansion tank are
omitted in order to simplify the drawing. For the actual design, a
complete drawing, such as that shown in Fig. 36, must be available
or the designer must be sufficiently familiar with the proposed installation
to be able to insert the correct pipe length and the correct number of
elbows or elbow equivalents in the description of each section, as recorded
in Table 48.
'
3., Calculate the pressure head available for the circuit by means of Fig. 32 and record it in the table.
4. Calculate the pipe sizes for the several sections by means of Figs. 33 and 34 so that the sum of the friction heads in all the sections com posing any one circuit is equal to the pressure head available for that circuit.
Table 48. Circuit I* Pressure head = 7 X 90 = 630 m.i.
Section
B.t.u.
Feet Elbows
Assumed Diameter
In.
Unit
Total
Friction Friction
Selected Diameter
In.
Unit
Total
Friction Friction
H-A A-l 1-B B-H
30,000 10,000 10,000 30,000
8.67 3.5 1.2 5.5 2.67 7.5 10.7 4.5
Total....
m IK
1
IK
12
35 3.5 7.5
12.5 24.5 12 35
104 122
4 41 33 183 128 157
772
: iK IK IK m
3.5 7.5
104 122
4 41
9
56 128 157
621
*The calculations for Circuits II and III are made and recorded in a similar manner. 84
American Society of Heating and Ventilating Engineers Guide, 1926-27
FORCED CIRCULATION
In designing the pipe lines for forced-circulation systems, the same methods and formulas are used to determine pressure heads and friction heads which are used in the design of gravity-flow systems, with the one exception that in forced-circulation systems the force producing the necessary pressure head is supplied partly or entirely by a pump.
The designing engineer should determine, in every case, what portion, if any, of the force necessary to produce the required pressure head
Centro! .Station r 6"
13? --
1,000000 --1 1 "A
1,000,00b 6' -4-4-- . Zl B
6h
Si.
i,5oqooc cj
2. '1
zi
Section Length 1000 Btu*. Pipe size Velocity rrictionhead feet per* he inches ft per sec in.of water
O-A . 339 12,500
6
7.15
64.75
A-B
B-C C-D D-E
t-r
F-G G-H
346
339 339 346 339 339 346
1 1,500 10.500 9.000 . 6000 7000
3500 4.500
6 6 5 5 5 4t 4i
655 6.00 744 660 570 560 476
69.20 6441 105.09 96.60 71.19 74.50 6ZJE>
-
h- I l-J J-K
339 339 346
3.500 2,000 1.000
4 - 451 3t 334 zi 345
K-o
339 12.500 1
6
7.15
61.02 47.46 6304 64 75
y
3i
horse power 1
904.65 x )Z.50qOOO - || 9 I2x40x 3600x550 '
4t s
1_
t -----1
I500000l-
_ s4'
: 1-
1.00000c
5' At'
G
--H--
1000.000
3*
At'
rl
1500000
Fig. 37.
Central Hot Water Heating System Supplying Group of Eleven Buildings
will be supplied by gravity. For example, in a central heating system, the pump may supply the entire pressure head for the distributing mains while gravity may supply all or part of the pressure head for the Service lines in the several buildings.
In forced-circulation systems, the pressure-head caused by the differ ence in density of the water, and which maintains circulation in gravityflow systems, is generally small when compared with the pressure head
..
85
'
American Society of Heating and Ventilating Engineers Guide, 1926-27
produced by the pump. It may be neglected in the design if it is less than 20 per cent of that produced by the pump.
To illustrate, let it be required to determine the pipe size for the central hot-water heating system shown in Fig. 37.
The system is to supply 12,500,000 B.t.u. per hour to a group of eleven buildings with a temperature drop of 40 deg. The system is provided with a reversed return. The pipe sizes are selected so that the friction heads in the eleven circuits are practically equal. The
Fig. 38. Layout for Sizing Hot Water Mains
velocity of the water varies from 3to
ft. per second. The theo
retical horsepower required to circulate the water through the main is
11.9. The table in Fig. 37 shows the calculations for one* of the eleven
circuits.
'
' If the circulation within the buildings is maintained by the pump,
the power required therefor must be added to that already calculated.
Each flow and return pipe, connecting a building and the mains, should be
provided with a gate valve and a thermometer and the gate valves should
be adjusted so that the temperature drop in each of the eleven buildings
is 40 deg.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
SIMPLE RULE FOR SMALL GRAVITY SYSTEMS
In designing a hot-water system for a residence or other small buildings the following simplified method by N. S. Thompson and C. A. Fuller gives good results for the usual two-pipe basement main system.
Determine the size of radiator tapping and connection from Table 49 and the size of riser and main from Table 50.
To illustrate assume the layout in Fig. 38. The radiator connections determined from Table 49 are as follows:
A -- 1 in. B = 1 in.
C = 134in. D = 1 in.
E = 1M in. F = l\i in. G = 1 in.
H = IH in.
Where one radiator only is supplied the riser and mains are sized
the same as the radiator connection. Where more than one radiator
is supplied the pipe size is determined from Tables 49 and 50 as
follows:
'
A = 1 in. = 10 Equivalent carrying capacity
B = 1 in. = 10
"
""
20 = 1J4 in. pipe between D and C C = 134 in. = 20 Equivalent carrying capacity
40 = 2 in. pipe between D and C D = 1 in. = 10
50 = 2 in. pipe between J and D
Proceeding in like manner the other sections of pipe are found to be as follows:
E to F = 134 in. /7toG = 2 in. G to H = 2 in.
H to Mains = 23^ in. J to K = 3 in. .
Table 49. Hot Water System Pipe Sizes and Connections
Pipe Size
First Floor
Second Floor
Third Floor
Fourth Floor
w
r
IK" m" 2"
40 70 110 180 300
50 60 70 80 90 100 120 135 150 195 210 230" 350 400 500
In connection with Table 49, the following equalizing Table 50, should be used to determine the size of risers and basement mains.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 50. Equalizing Table for Sizing Risers and Mains
Size of Pipe '
Equivalent Carrying Capacity
. Size of Pipe
Equivalent Carrying Capacity
W ' H"
i"
1M'
m"
2" 2'A"
2 5
10 20 . 30 60 110
3"
3^" 4" 5" 6" 7" 8"
175 260 380 650 . 1050 1600 2250
88
Chapter V
GREENHOUSE HEATING SYSTEMS*
GENERALLY speaking greenhouses are heated either by hot water or steam systems, both being used in all forms: gravity hot water; accelerated circulation of hot water, i.e., where there is some circulation due to gravity and an accelerator or impeller is used to accelerate that circulation; forced circulation of hot water; gravity low pressure steam; gravity low pressure steam with return by means of automatic steam pump and return by means of an electrically driven automatic pump; vacuum return systems; high pressure steam systems with high pressure in mains and reduced pressures in the coils in the houses and even in some odd cases by high pressure steam throughout. There are countless modifications of all of these systems.
Hot water heating is older, simpler and the more common method in small houses and small ranges of greenhouses.
Although the same tables, formulae and other data that .are used to estimate the heating requirements of systems in the usual types of buildings are also applicable to greenhouse heating and although the same pumps, traps, regulators, valves and other devices and fittings are used in greenhouses as in other systems, there are many differences that must be kept in mind so that due allowances may be made in the specifi cation of a plant.
For instance--the highest temperatures in greenhouses are required at night, whereas with residence systems the maximum temperatures are required in the day time.
Greenhouse fires are banked during the day almost always throughout the firing season, even in midwinter when the sun is shining, and fuel consumption is heayiest at night; this in marked contrast to practically all other types of heating systems where the fires are banked at night.
Greenhouse radiation is almost exclusively made up of piping. The temperature demands are almost always below 70 deg. and horizontal, piping carries a higher co-efficient of emission than the radiating surfaces used in other systems; special care must, therefore, be.given to the selection of the boiler; the demands on it will be higher than with any other form of radiation in quiet air; its surplus must be greater than with boilers for any other sort of quiet air heating.
The usual boiler ratings, inflated as they many times are for residence heating purposes, must be discounted still more for greenhouse work, especially so where there is no night fireman, as with the smaller plants, and where fires are left for long periods without"attention.
^Greenhouse heating section prepared by F. J. Eider, Irvington, N. Y.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
.
Long runs of pipe are used and expansion and contraction require more consideration than in house heating work; piping must be tied up, anchored, installations must be flexible; expansion joints are no more desirable in greenhouse heating than elsewhere; expansion must be com pensated for by "spring" of pipe and by swivel fitted joints, and expansion joints used where expansion may not be compensated otherwise.
. Table 51. Temperature Required for Different Purposes
House
Temp. Required, Deg. Fahr.
General Purposes.....................................................................:...... *...................... Cool Greenhouse (Show)..................................................................................... Forcing House--...................................................................................................... Tropical, or Stove H..................-.............--................................................... -- Conservatory (General Collection) (Winter Garden)............ ................... Palm House--................. ......................................................................................... Tropical Palm House....................................................................-....................... Cool Palm House................................... ................................................................ Orchid House...... ...... -............................................................................................ Cool Orchid House..................................................... -.......................................... Rose House................................1........................................................-.................... Carnation House.... ...... -...................................................................................... Violet House..................... ....................................................................................... Propagating House--........-............................................. -.................................... Camelias and Azaleas--........................................................................................ Cool Vinery,,--................................................................. -.....................................
55 to 60 45 a 60 60 a 65 65 u 70 60 a 65
60 a 65 65 u 70 50 a 55
65 u 70 50 a 55
55 a 60
45 u 55
40 u 45
55 45
a
u
60 50
Gool andl Damp
Early Vinery (Start January and February)............................-..................
65 to 70
Second Vinery (Start February and March)..........................-.................... Late Vinery.................................................. 1..........................................................
a 65 " 70 65 u 70
Cool Peach House (Cold Damp Weather), Early Peach House (Start January and February)..................... J............................................................
65 a 70
Second Peach House (Start February and March), Late Peach House (Ripen November and December)..--..........................................................
Tomato and Cucumber House................................................ -................. r-- Lettuce House.... ................................................ -................................................. Mushroom House................................................................................................... Fern House.......................................... -.................. ........................................... -
65 a 70
65 40
u
u
70 45
55 u 60
60 u 65
The matter of levels also affects the design and proportions of the heat ing mains. In many greenhouse ranges the walk levels are not more than; 2 ft. 6 in., or 3 ft., above the top of the boiler and where all of the.radiating surface is made up of pipe coils on a level not higher than I ft. 6 in. above the floor, especially If there are short benches requiring short coils under them, special care is necessary to avoid short circuiting, or interference with the flowthrough low temperature drops in the short coils.
The temperatures required in houses are given in Table 51.
ESTIMATING HEATING REQUIREMENTS
Heating requirements, i.e., the amounts of radiation for greenhouses, are not obtained by scientific calculation or intricate formulae; at least, they are not so obtained by greenhouse specialists. In this calculation only the exposed glass surfaces and other exposed surfaces reduced to the
90 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
equivalent of glass surfaces are considered. The loss of heat by conduc
tion through the glass is, of course, by far the greatest loss, but there is
another considerable loss which it is very difficult, if not absolutely
impossible to calculate, that is, the loss by air leakage between the lights
of glass at the laps. These two make up practically all of the losses.
The only other losses are those through open doors and through vents.
The latter are generally intentional, and used to reduce the greenhouse
to the required temperature; but a change of air is necessary for plant
growth, so the vents are not opened except for reducing the inside
temperature.
-
Modern greenhouses are glazed almost exclusively with double-thick glass in lights 16 in. wide and 24 in. long. The glazing bars, or ribs, are then usually 16j^ in. center to center. The lap of the glass is % in. by eye measurement. Sometimes 24x24 in. glass is used, but not often, and with this size, the bow, or spring, of the glass when the wind blows is greater, and the heat loss through the laps may accordingly be greater as a consequence.
The cubic contents in ratio to the surrounding glass surface, the size and the shape are, of course, more or less factors, but as previously stated, only the glass and glass equivalent enter into the calculation for the quantities of radiating surface. The engineer may modify somewhat the quantities so obtained because of the ratio of the contents to the enclosing glass, or the size or shape of the structure, or because of its geographical position or its elevation, or because the greenhouse is in a particularly exposed position. The calculation is merely that of dividing the glass and the equivalent surface by the proper divisor; and where proper allowances are made for special conditions and where boilers are suf ficiently large so that a liberal factor of safety or proper surplus is. pro vided to cover these conditions over which the designer has no control, there is no better method known than the application of the table of divisors given in Table 52. The conditions for which the engineer must provide, and which are largely out of his control are as follows:
Workmanship in construction and glazing of glass house or houses;
ratio of cubic contents enclosed to the glass surface; draft,.if chimney is
not designed by the engineer; fuel and its quality; firing habits of the
operator, time of turning on steam and making up. temperatures inside
against falling temperature outside; attention to venting greenhouse
heating coils--there is no one thing that the heating engineer can do
which will so efficiently offset these negative factors, as the providing of a
generous boiler power.
'
. WATER TEMPERATURE
The average temperature of. the water in a gravity hot water heating system is assumed to be about 150 deg. fahr. and the average co-effieient of transmission of the radiating surface (pipe surface) is assumed to be 2.
Pipe in different locations and banked pipes have different values, it is true; overhead, mains, or pipes overhead free and unobstructed have the highest co-efficient, but because of their proximity to roof glass are not the best possible heaters; flat coils of parallel lines are more efficient than
91 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
wall coils, one pipe over the other; pipes pocketed under plant benches or
in narrow walks against the sides of solid beds are less efficient than those
ini the open, but greenhouse heating engineers must deal with averages
and the co-efficient 2 has been found to be safe.
'
Only the glass and other exposed surfaces, reduced to the equivalent of
glass are considered in the calculation. The factors or divisors for glass
surfaces are derived from the following formula:
where
r = (T -- t) X G (150 - T) X 2
T " temperature desired, fahr.;
t = temperature out of doors (0 deg. fahr.);
.
150 = temperature of water in radiating surface, fahr.;
G = glass and glass equivalent surface;
2 = coefficient of transmission;
R = radiating surface.
From the above formula the divisors in the table following are derived:
Table 52. Factors for Glass Surfaces
For 70 to 75 deg. divide sq. ft. of glass and equivalent by 2.0 For 65 to 70 deg. divide sq. ft. of glass and equivalent by 2.28 For 60 to05 deg. divide sq. ft. of glass and equivalent by 2.62 For 55 to 60 deg. divide sq. ft. of glass and equivalent by 3.0 For 50 to 55 deg. divide sq. ft. of glass and equivalent by 3.46 For 45 to 50 deg. divide sq. ft. of glass and equivalent by 4.0 For 40 to 45 deg. divide sq. ft. of glass and equivalent by 4.67 For 35 to 40 deg. divide sq. ft. of glass and equivalent by 5.5
It will be noted tfiat the temperatures given in the table are not 75 deg., 70 deg., 65 deg., etc., but 70-75 deg., 65-70 deg., 60-65 deg., etc. Greenhouses are so very sensitive to wind arid- so very unamenable to exact calculation that the initiated greenhouse man allows himself-5 deg. as leeway or as a factor of safety, and when he intends to heat to 60
deg. he specifies 55-60 deg.
.Greenhouses do not respond exactly to figures in various ways: The
sam^amount of glass may in two different houses enclose vastly different
volumes; the air loss between the laps, though probably never calculated,
may be quite different per square foot of glass in two houses of the same
size, design and construction', on account of the difference in workman
ship or of glass quality, or of both. The humid atmosphere of greenhouses
--and for some purposes the atmosphere is much more humid than for
others, as for instance, for rose growing--at some temperatures causes the
laps to seal with condensation, checking, or stopping the air loss through
the laps. At lower temperatures these laps are sealed with ice and at still
lower temperatures the inside surface of the glass is entirely frosted over
so that its conductivity is changed. It may be much more difficult to
heat a greenhouse at 15-20 deg. above zero, or even at 25 deg. above zero,
with the wind blowing, than at zero or below, because the low temperature
house may be sealed with ice, as stated.
,
92 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
A greenhouse that is not stocked, i.e., in which the crop is not planted
and therefore not watered, and which does not carry the normal humidity
is much more difficult to heat than a live house, one in operation. And so,
the same formula will not work out exactly for outside temperatures below
zero because of the varying heat loss. In some parts where the mini
mum outside temperature is above zero, or where the minimum of zero
is rarely reached and then for short periods only, as in some Southern
states, while it is true that the same amount of heat is required to offset
the low outside temperature, the duration of the cold spell is so very
short that it is unnecessary to pipe the houses or to provide boilers as
large as the same house or houses would require further North so that the
judgment and experience of the heating engineer is vital.
RATIO OF AIR CONTENT TO GLASS SURFACE
The ratio.of air content of the greenhouses to the glass surfaces increases with the width, so the number of changes of air through laps of glass, however many they, may be, are less per hour with a wide house than with a narrow one, and the experienced heating man knows this and judiciously omits a line or two of pipe in very wide houses, after having divided the glass surface by the proper divisor.
Fig. 39 shows in section two conventional, even span, adjacent green houses of the ridge and furrow, or saw-tooth type, converted by extending the roof lines until they bisect each other, into one even span house; and the sketch also shows at once that above the eaves line the cubic contents contained by the same amount of glass in the large house is just twice the quantity contained above the eaves lines in the two small ones, and, obviously, it requires less heat units to heat the one large house than it does the two small houses, although the glass surfaces are the same. But how much less heat? Who can say? Glass laid by eye measurement, and glass of varying quality are inconstants. How may the air loss be determined?
A table compiled for purposes of comparing the cubic contents and the glass surfaces in the roofs of the houses in widths of 20 to 80 ft. with the same roof pitch shows that the air content above the eaves line in the 20 ft. houses bears the following relation to the glass in the roof.
Glass : Contents : : 1 : 2.34 whereas in 80 ft. houses, with the same roof pitch:
Glass : Contents : : 1 :9.8
''
KINDS OF PIPE
Greenhouse radiation is almost always made up of pipe surface-- horizontal pipe placed on the side walls, on._the sides of solid beds and under raised benches, sometimes on the columns supporting the roof.
For hot water heating in private greenhouses,
in. cast iron pipe', in
9 ft. lengths, is best; this pipe is provided with a hub and a spigot; it
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American Society of Heating and Ventilating Engineers Guide, 1926-27
weighs about 11 lb. per line ft.. and holds 2 qt. of water per lineal foot; its superficial surface is-about 1.05 sq. ft. to the lineal foot.
The two principal virtues of the 3.^ in. cast iron pipe are that it is practically indestructible--it resists corrosion in the humid atmospheres of greenhouses much longer than any wrought pipe, and its large water content provides stability of temperatures, which is very desirable in private greenhouses, where the gardeners give no attention at all through the night to fires, or at most look after them only on especially cold
nights.
Pipe of 2 in. diameter, both wrought iron and wrought steel, is used in small commercial houses where hot-water heating is suitable. The . genuine wrought iron pipe costs considerably more than the steel pipe and hence is not used as frequently. Steel pipe as now manufactured is
much more durable than formerly.
Pipe that is f]/i in. in diameter is used almost exclusively for steam heating in whatever form. With hot-water heating, in order to provide even temperatures throughout the length of the greenhouse, it is desirable that the number of flow lines be equal to the number of return lines, consequently as much as possible the designer of the system always plans for coils of even numbers of lines which are usually placed under benches
in two rows, the upper rows the flows and the lower the returns.
With steam heating, when overhead mains are used, coils may be considered as returns and it does not matter much whether there are an equal number or not. Mains and connections are designed so that the pressure drop will be low and with little loss of,.pressure there is very little
difference in temperature end to end.
Gravity hot water coils constructed of 2 in. pipe are not practical in
lengths of over 200 ft., indeed they are not really practical in lengths of
over 150 ft., whereas steam coils or steam return lines.are frequently
installed 300 ft. in length.
Cast iron pipe of 3x/i in- size is jointed by means of what are commonly
called "rust joints;" the pipes are laid
in. center to center; fittings are
manufactured with hubs or bells and spigots; all are caulked together
with rust joints.
Rust joints are not as well known or understood as they should be though they have been made for a century or more; the average fitter ' does not seem to take to the making of greenhouse rust joints and these mechanics seem bound to use salamoniac, salt or some such substance to set up rapid oxidation. These joints are properly made as follows:
Tarred rope cordage, or hemp is caulked into the hub or bell and.then clean, moist iron borings are caulked on top of the rope foundation; the borings should be moist, just so that they will cake in the hand and should not be wet and they should be added a little at a time and caulked, not tamped; the more they are hammered, the better they are.. They should be caulked sufficiently so that the finished joint w^H present a hard
metallic surface.
Such joints properly made will permit turning .on the water and operation of system immediately after the last'joint is caulked and they
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American Society of Heating and Ventilating Engineers Guide, 1926-27
improve with age. Some old time steam heating systems are constructed with mains of cast iron pipe and caulked joints and the joints held against low pressure steam.
Besides the advantages of durability and of large water content, resulting in stability of temperatures, cast iron pipe is really desirable because it reduces labor costs, necessity for skilled labor and for cutting and threading tools--no tools are necessary, other than vise, pipe cutter, hammer, cold chisel and caulking tools. Tbe use of vise and pipe cutter
has only developed within recent years; formerly greenhouse pipefitters cut all pipe with cold chisels.
The making of a new connection or the repairing of a leak in a 3H in.
pipe line is much less serious an affair than the placing of tees in 3j4 in wrought pipe lines, pieces may be cut in and cut out and ends sleeved together easily and economically.
The 2 in. pipe is placed center to center.
in. center to center and
in. pipe 3 in.
POSITION OF RADIATION
Greenhouses are piped in all sorts of ways to suit the great number
of different ideas of greenhouse owners and operators; their different ideas
on the subject of plant bench or plant bed arrangement which Arrange
ments govern largely the location and arrangement of the piping; arid
to suit the special requirements of the plants or flowers to be grown in
the houses. In houses for vegetable growing, where planting is directly on
the floor of the greenhouse, piping should be, mainly and if possible,
entirely on the sides so as to provide the maximum growing surface. For
rose growing the piping is required to be more scattered or distributed
than for any other purpose--if there are raised benches, some heating
surface must be under every bench; if there are solid beds, some radiating
surface must be in every walk.
,
' The bulk of the piping for all purposes, however, should be on the side
walls, or just inside the outer walls of the greenhouse. For sweet pea growing, most of the pipe surface should be on the side walls and some on the pipe columns, generally high enough to permit walking under; how ever there is much latitude in the placing of pipe coils and it may be said
that the greenhouse heating engineer does not always place piping, the radiating surface, just where it belongs,, or just where he should place it, but rather he places it where he may, or the operator's planting arrange ment permits.
As intimated, there are many problems of distribution of coils. When they must be large or long, and small or short coils served by the same mains, care must be taken to avoid short circuits through the short coils. Long pipe coils always present the problem of taking care of expansion.
The coils need not be graded very considerably in order to produce circulation; pitch, or grade, is required to produce.high points in hot water heating where air may collect and be released and in steam systems for the purpose of drainage. Condensation should always, flow with the steam current.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
'
A grade, or pitch, of jHsth of an inch in 10 ft. is ample in either case.
1 There is a dearth of dependable data and rules for the sizing of mains with which to connect the coils with the boiler or boilers, owing to the fact that greenhouse heating uses more pipe for radiating surface with less head or elevation than is required or used with any other type of gravity heating. Resistance through the heating unit is less, it is believed, in greenhouse heating than with any other unit; the frictional resistance through, coils made up of two or more lines of steam piping 300 ft. long must be less than through a smiliar quantity of radiating surface in any other form.
Mains generally are planned for shortest distance between two points; there is a minimum of bends in greenhouse heating mains. For gravity hot water heating and for gravity steam heating in greenhouses it is believed that greater quantities of radiation are carried on mains than for any other purpose for the reason above given. .
When it is found that the size of the system is so large as to call for large mains, say 7 in. pipe, or larger, it may generally be stated as a fact that the system is a little too large for. gravity hot-water heating. Greenhouses should then be heated with steam, or at any rate the cir culation should be accelerated by means of a centrifugal pump or hotwater circulator or accelerator, because large mains in gravity hot-water heating systems almost always present difficulties in the way of distinct self-contained circulations and counter currents.
For steam heating, lj^-in. pipe is used almost exclusively, and the greenhouse man has found that where one line of 3J^-in. pipe is required to produce a certain specified temperature with hot water as the heating medium, one line of lJ4-in. steam pipe at low pressure will do the same work. This fact is inconsistent with the application of the divisors given
Fig. 39.
Sketch Shows Relation of Cubic Contents and Roof
Glass Surfaces.
'
for quantities of radiation, but the difference is probably, accounted for by the fact that lJ4-in. pipe, being of so much higher temperature, is better distributed. Much of it is distributed in single lines; most of it in flat coils, and seldom in two rows, one over the other, and even then the coils are constructed so as to provide drainage, with a pitch from the supply end to the return bends at the opposite end, and back^from the return bends to the return header, so that the coils converge and are not close
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American Society of Heating and Ventilating Engineers Guide, 1926-27
together. The pipe lines do not, therefore, interfere with each other in radiating their heat. Furthermore, with the proper boiler power it is easily possible to increase the pressure and consequently the temperature so that a greater range is possible than with hot water systems.
LARGE RANGES HAVE STEAM SYSTEMS
Hot-water heating was used almost exclusively 20 to 25 years ago. Now the use of hot-water heating is confined to private ranges and to small and medium-sized commercial ranges. It is practically never used in large commercial greenhouse ranges. Its cost would be prohibitive. Hot water is, of course, much more economical in small'houses, but in large ranges a properly designed hot-water plant and a properly designed steam system would be equally economical, but the first cost of hot'water is very much above the first cost of steam. In very large ranges vacuum steam heating is frequently used. Thi^ermits the use of smaller mains, smaller return connections and has the advantage of quick circulation, and immediately responds to sudden demands.
Overhead mains,-generally speaking, are very desirable in a steam heating plant and not at all desirable in a hot water system; it should be understood that overhead mains are a little too near to the glass roof, that convection currents are almost entirely above the mains and riot below, that most of the heat given off by these overhead pipes is lost through the glass.
A steam system, especially in long greenhouses, and commercial green houses are generally long, must be so fitted up as to provide for expan sion, it must be flexible, and furthermore the clear space underneath plant benches, or the heights of solid beds, are. sucb that there is insufficient room for running in,converging coils; this makes overhead mains abso lutely necessary in some cases and very desirable in others, but with hot water heating the runs of pipe are not so long and the temperature range is not so great, consequently there is not so much expansion to be provided for. There is not, therefore, the same necessity for overhead mains and furthermore, greenhouses that are heated with hot water, in which overhead mains are run to the far end and there deliver to floor coils, on walls under benches or in walks, which are in a sense return lines, are very unevenly heated as must be perfectly apparent.
In such systems the hottest water is of necessity in the overhead
mains, the coldest water is necessarily too in the returns, the floor coils.
The floor coils are naturally hottest at the far end of the greenhouse and
they lose their heat in their progress towards -the boiler. Furthermore,
the far end of the house, the end at which the coils are fed by the overhead
main, is the warmer end.
.
.
The coldest days, the zero days, especially in this part of the country, are few, indeed, probably in all six such days in the whole firing season. Most of the days of the firing season are mild'and even in midwinter, during coldest weather, when the sun shines, there is very little need for heat and at such times, with overhead hot water mains, the small amount
97
American Society of Heating and Ventilating Engineers Guide, 1926-27
of hot water made is overhead, where it is not required, and in order to
heat the floor coils from end to end, and it is impossible to heat them
evenly from end to end, a little larger fire must be maintained than would
be necessary if the coils were in two rows, i.e., going and coming, flows
and returns under the benches. '
.
With gravity hot water heating, boilers should always be in pits. The use of overhead mains never makes up for lack of depth of boiler pit.
98
Chapter VI
WATER SUPPLY SYSTEMS AND PIPING
HE lack of data upon which to base water pipe sizes for plumbing
Tfixtures, branches and mains is probably due to the great number of variables which enter into their proper determination. ' Plumbing fixtures in common use, having what is known as good water flow, deliver the quantities of water per outlet as given in Table 53.
Table 53.
Cold Water Branch Supply Sizes for Fixtures and Maximum Flow in Gallons per Minute
Number of Fixtures
1 2 4 8 12 16 24 32 40
Water Closets--
Gal. per Min..............................................
8 16 24 48 60 80 96 128 150 Tanks
Pipe Size........................................................... X H 1 Hi IX tx 2 2 2
Gal. per Min................................................... 30 50 80 120 140 160 200 250 300 Flush
Pipe Size ......................................................... 1 m IX
2
2
2 IX 2X 2X Valves
Urinals-----
Gal. per Min.................... .............................. 6 12 20 32 42 56 - 72 90 120 Tanks
Pipe Size....... ................................................ X Gal. per Min..................................................; 25
x
37
1 IX IX IX m 2 2
45 75 85 100 125 150 175 Flush
Pipe Size............. .............................................. 1 IX IX IX IX 2 2 2 2 Valves
Lavatories and Wash Sinks-- -
Based upon Each Faucet
Gal. per Min................................................... 4 8 12 24 30 40 48 64 75
Pipe Size......................................................... . X X
X
1
1 in IX IX IX
Bath Tubs--
,
Gal. per Min.............................................. .. 15 30 40 80 96 112 144 192 240
Pipe Size.......................................... ................. % 1 Hi IX 2 2 2 IX 2X
Shower Baths--
'
Gal. per Min................................................... 8 16 32 64 96 128 192 256 320 8" rain
Pipe Size.......................
....................... X X Hi Hi 2
2 2X 2X 3i Head
Acid and Slop Sinks. Manufacturing,
Kitchen and Laundry--
Gal. ner Min.
15 25 40 64 . 84
120 150 200 per bibb
Pipe Size...........................
.... x 1 Hi m IX 2 2 2 2X per bibb
Note.--The above sizes are based upon a pressure drop of 30 lb. per 100 ft.
In estimating risers and mains, the number of gallons for W. C. and urinals where flush valves are used
are to be as given for tanks. ` .
.
The hot water faucets are to be disregarded when estimating cold water risers and mains.
Water flowing in pipes is retarded by friction, the extent of which depends upon the velocity, which is the cause of unsatisfactory service when pipes are too small. The amount of head necessary to overcome this friction is known as the friction head, which is usually expressed in feet. It is also known as pressure drop, usually expressed in lbs. per sq. in. per 100 ft. of pipe. The total pressure needed to discharge a given
Material for this section furnished for The Guide by W. S. Timmis, consulting engineer, New York.
99
;
American Society of Heating and Ventilating Engineers Guide, 1926-27
quantity of water is the pressure necessary to overcome friction in the
pipes (when horizontal) plus the static pressure when the discharge is
higher than the supply.
.
Table 56, column 1, gives the vertical rise in feet to any fixture up to 150 ft. in height; column 2, gives the static head in lb. per sq. in. corre sponding with the vertical rise.
The underlying principle involved in determining the proper pipe sizes
for mains, risers and branches is to so regulate the size of these pipes
that they will carry the maximum amount pf water required of them and
absorb by friction and static head, all the pressure at the source and still'
deliver water at the fixture in sufficient quantity but at a pressure prac
tically equalling zero or slightly above except that due to velocity of flo,,w
through the fixture.
.
Table 53 gives the amount of water in gallons which should flow per minute'for the number of fixtures indicated of each different type, together with the branch pipe size necessary to carry this amount of water with a pressure drop of 30 lb. per 100 ft. of run.
The volume of water required per fixture is reduced as the number of fixtures in each group is increased, to take care of the factor of probable use.
In estimating-the pipe size for any part of a riser in a building of several stories, take 60 per cent of the water to be used on any floor and all floors above as determined from Table 53 and deduct 10 per cent for each floor above. This reduction in estimated amount is to take care of probable use. Thus, if 100 gallons are used on each floor of a 10-story building the size .or pipe will be determined as in Table 54:
Table 54.
Water Risers for Manufacturing Buildings, Loft Buildings, Apartment Houses, Hotels
G. P. M.
G. P. M.
Pipe SizB WITH Dl(OP PER 100 Ft. Ru>I
5 1b.. 10 lb. 201b.
10th Floor
'
100x0.60
. 10 and 9
200 x 0.60
10 and 9 and 8
300 x 0.60
10 to 7 incl.
400 x 0.60
10 6
. 500 x 0.60
10 " 5 "
600 x 0.60
10 " 4 a
. 700 x 0.60
10 3 *
800 x 0.60
10 * 2 *
900 x 0.60
10 " 1 *
1000 x 0.60
60% = 60 90% = 108 80% = 144 70% - 168 60% = 180 50% - 180 40% - 184 40% = 192 40% = 216 . 40% - 240
2'
2Xm 3*
3Xm 3X' 3Xm 3X0 3H'
3X' 3X'
20 2X'
2H* 3' 3'
3* 3' 3' 3' 3'
IX0 IX0 2*
2X0 2X0 2X0 2Xm W 2X' 2K'
NoU.--For residences, use Table 53. and for the main supply use 25 per cent of total of gallons used by
fixtures and then take pipe size from Table 55 on a basis of 10 lb. pressure drop per 100 ft. or less if water
supply pressure is less than 50 lb.
.
The pressure drop of 30 lb. per 100 ft. of run will give satisfactory results for branches on the top floor but a higher pressure drop can be used on floors below corresponding with the pressures as given in Table 55 which show that for a building 100 ft. in height, a pressure drop of 100 lb. can be used on the fixture lowest branches and that for a building 50 ft. in height, a pressure drop of 52 lb. can be used on the lowest fixture branches; Table 53, however, can be used with safety on any of the floors
100 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
but will give pipe sizes larger than necessary for the lower floors in a very
tall building.
Table 55 gives the amount of water in gallons which may be passed through pipes of % in. to 4 in. diameter with pressure drop from 5 lb. to 150 lb. per 100 ft. of run. This table may be used in sizing horizontal and vertical mains.
For example, if the water main pressure available is known, say 90 lb., and the horizontal run from water main to vertical riser is 100 ft., and the vertical riser is 100 ft. to top branch; it will require 43.31 lb. for static head (see Table 56), and 15 lb. pressure at a minimum should be allowed for the uppermost fixture or a total of 58.31 lb. which would leave available for friction 90--53.31 = 16.69 for friction in 200 ft. run, or 8.34 lb. per 100 ft. The main can thus be sized from the 7 lb. pressure
drop of Table 55.
Table 54-A. Apartment House Supply Risers Based upon One, Two, and Three Baths per Apartment
One (1) Bath Apartment
1 bath 1 W. C. 1 sink 1 lav.
15 gals. 8 gals. 4 gals. 4 gals.
31 gals. 50% demand--15 gals, per min.
Tod Floor 15 eals.
Next 28 "
" 38 " " 51 "
" 60 "
" 67 "
" 71 " " 78 " 81 u
" 83 " " 84 " 85 "
Riser
1 $4*
IK'
l K" 2*
2"
2"
2"
2"
2"
2" 2* 2"
Two (2) Bath Apartment
2 baths 2 W. C. 1 sink 2 lavs.
24 gals. 14 gals. 4 gals. o gals.
Three (3) Bath Apartment
3 baths 3 W. C. 1 sink 3 lavs.
30 gals. 18 gals.
4 gals. 9 gals.
48 gals.
61 gals.
40%--20 gals, per min. 40%--24 gals, per min.
20 gals. 38 " 54 "
68 "
80 " 90 " 98 " 104 " 108 " 110. " 110 " 110 "
* Riser
IK'
IK'
2"
2"
2' 2'
2K' 2K' 2K' 2 K' 2K' 2K'
24 gals.
43 " 64 " 82 "
96 " 108 " 117 " 124 " 134 "
143 " 143 " 143 "
Riser
IK' 2"
2'
2'
2 K' 2K' 2K' 2K' 2K' 2K' 2K' 2 K'
Note.--The pipe sizes are based upon a drop of 10 lb. water pressure for each 100 ft. run.. The size of branch for each Apartment should be not less than lj^.in.
Example--What is the riser size needed for a six-story apartment house having one bath for each apartment?
Table 54-A gives 2 in. diameter for all from four to twelve stories with" lKIin. to supply the top floor and next to top and lK in. for floor below.
What is the size of riser needed for a twelve-story apartment house with three baths
to each apartment?
__
Table 54-A gives 2K in. for all floors up to eighth floor, 2 in. for ninth, tenth and eleventh, and 1 K in. for top floor.
What is the riser size for a two bath apartment six-stories high?
Table 54-A gives~2 in. for the first four floors with 1 K in. at fifth floor and 1}4 in. on the top floor.
101
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 54-B. Apartment Houses. Sizes of Water Supply Mains and Meters Based upon pressure drop of 10 lb. per 100 ft. run For 4 and 5 Stories Apartments per Floor
1 bath,, ......... . 2 baths. ........... 3 baths................
Four
Gals.
Main
120 VAT 160 3" 200 3"
Six
Gals.
Main
160 3" 200 3" 240 3"
Eight
Gals.
Main
200 3' 240 3' 280 3"
' Ten
Gals.
Main
240 3" 280 3' 320 3M"
1 bath. ......... 2 baths.... ............ 3 baths...............
150 190 230
For 6, 7 and 8 Stories
2H" 3"
3"
190. 230 270
3" 3" 3"
230 270 310
3" 3"
3'A"
270 310 350
3' 3W
3 W-
For 9, 10, 11 and 12 Stories
1 bath. ......... 2 baths. .............. 3 baths.-..............
200 250 300
3" 3'
3H"
250 300 350
3" 3W 3W
- 300 350 400
3'A" 3W
3H"
350 400 450
Note.--The gallons per minute given above are approximated maximum demand for conditions stated.
Example--What is the required size of water main for apartment house eight stories high, six apartments per floor, each having three baths?
Answer from Table 54-B is 3 in.
Example--What is the required size of main for a ten-story apartment house with six apartments per floor, each having two baths?
Answer from Table 54-B is 3J^ in. main.
Note.--Table 54-B gives the sizes of mains for apartment houses of one, two or three baths for each apartment, and with four', six, eight or ten apartments per floor and from four to twelve stories in height.
Table 55.
Pipes may be Sized for Giving any Desired Pressure Drop per 100 Ft. of Run
Friction Pressure Drop Lb. per Sq. In. per 100 Ft. Run
H
Pipe Sizes in Inches
1 l H 1M 2 2M 3 3K 4
Gallons per Minute
5 5.4 11 19 30 62 109 171 252 353
7 6.4 13 23 36 74 129 203 298 418
10 7.6 15 27 43 SS 154 242 357 499
20
10.8
22
38
61 125 218 343 504 706
30
13.2
27
47
76 153
267 420 618
864
40
15.0
31
54
86 176 308 485 714 998
50
17.0
35
60
96 197
345 542 800 1115
75
21.0
43
74
117 242
423
665
978
1365
100
24.0
49
85 136 278 485 769 1130 1578
125
27.0
55
96 152 311 544 858 1260 1765
150
30.0 60 105 166 341
598 939 1380 1930
102
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 56. Showing Water Pressure Required to Deliver Water to Top of Vertical Riser with 15 Lb. Pressure at the Top Branch and to Give Adequate Service at Vertical Heights Given
Water Pressure in Lbs. Required to Deliver Water to Top op Riser with 15 Lb. Terminal Pressure
Pressure Drop per 100 Ft.
5 lb.
15 20.5 25 29.5 35 39.5 44 49.5 54 58.5 64 68.5 73 77.5 83 87.5
7 lb.
15 20.7 25.4 30-1 35.8 40.5 45.2 50.9 55.6 60.3 66 70.7 75.4 80.1 85.9 90.5
10 lb.
15 21 26 31 37 42 47 53 58 63 69 74 79 84 90 95
20 lb.
15 22 28 34 41 47 53 60 64 72 79 85 91 97 104 110
Static Head in Lb.
per Sq. In.
Vertical Rise or Water
PROM Main to Highest
Branch
0 4.33 . 8.66 12.99 17.32
21.65 25.99 30.32
34.65 38.98 43.31 47.64 51.97 56.30
60.63 64.96
0 10 20 30 40 50 60
70 80T
90 100 110 120 130
140 150
Water Pressure in Lbs. Required to Give Adequate Service at Vertical Heights Given
Horizontal Run from Supply to Riser
25' 0" 50' 0" 75' 0" 100' 0"
22.8 lb. 25.3 lb.
28.1 " 30.6 "
33.5 " . 36 "
38.8
41.3 "
44.1 " 46.6 "
49.5 " 52 "
54.8 " 57.3
60.1 " 62.6 "
65.2 " 67.7 "
70.8 " 73.3 "
76.1 78.6
81.5 " 84 "
86.8 " 89.3 "
92.1 " 94.6
97.5 " - 100 "
27.8 lb. - 30.3 Ib.
33.1 " 35.6 "
38.5 " 41 "
43.8 " 46.3 "
49.1 " 51.6 "
54.5 * 57 "
59.8
62.3 "
65.1 " 67.6
70.2 * 72.7 a
75.8 "
a81.1 a86.5
78.3 "
83.6 " 89
91.8 " 94.3
97.1
99.6 "
102.5 " 105 "
*Note.--The water pressures given in above table are the pressures at the base of the riser, necessary to
deliver water to top of riser with a terminal pressure of 15 lb. when discharging the number of gallons per
minute called for in Table 55, at the pressure drop indicated.
**Notc.--Based upon 10 lb. pressure drop per 100 ft. run of pipe and a terminal pressure of 15 lb. at the
uppermost fixture. A terminal pressure of 15 ib. has been selected for operation of flush valves. For
terminal pressure of 10 lb., deduct 5 lb. from the figures given above; or for a terminal pressure of 5 lb.
deduct 10 lb. from above values.
Example.--^Vhat are the sizes required for mains and branches in a building 100 ft. high, supplied with a water pressure of 75 lb. per sq. in. with 100 gal. of water per minute required on each floor?
This is worked out in Table 54 and gives the pipe sizes for the main riser with a 10 lb. drop for 100 ft. of run and shows that a 3 in. main, reduced to 2 in., would be required: branches to the various groups of fixtures can be taken from Tables 55 and 56. On the top floor it will be necessary to use a 1H in. branch to carry 60 gal. per min. with a pressure drop of 30 lb. but that at 30 ft. vertically from the supply, a 1 in. branch
pipe will carry 60 gal. per minute, therefore 1}4 in- pipe could be selected for this branch. Assuming that the pressure drop in the main riser is 10 lb. per 100 ft. run and the pressure drop on the top floor in the branch does not exceed 15 lb. in all and the static head for building 100 ft. as given in column 2 of Table 56 is 43.31 lb. making a total of 58.31 lb.; it will be' seen that 75 lb.--58.31 lb., which equals 16.59 lb., is the amount of pressure over and above that required, and that this pressure can be utilized to overcome the friction drop in the main feed line running from the source of supply to the base of the riser.
From Table 54 it is found that 240 gal. per min. will flow at the first floor, and assuming that this water supply is to be brought in a main 300 ft. long; Table 55 will show that a
3H in- supply would be necessary.
Example--What pressure is required in the water supply main to give 15 lb. pressure at the uppermost fixture in a building where the riser is 100 ft. high and is located 75 ft. from the water main in a horizontal direction, when the other fixtures within the building are in use to their estimated average capacity?
Answer is found to be 75.8 lb. at the intersection of 100 ft. vertical height and 75 ft.
horizontal run.
Note.--If only 10 lb. be required at the uppermost fixture, then 70.8 lb. would be the answer.
WHEN TANK IS ON ROOF
If tank is elevated about 35 ft. above highest fixture, which would be about 25 ft. above, the roof, similar computations will apply for branch connections and main risers except that the main riser will have its
. 103
American Society of Heating and Ventilating Engineers Guide, 1926-27
greatest diameter at the top. It will be seen that 35 ft. elevation will give the necessary 15 lb. pressure at the highest fixture and that the pressure drop may be made equal to the static head from the top fixtures down, or 40 lbs. per 100.
FRICTION IN ELBOWS
Friction caused by elbows should be added to straight pipe friction. Each elbow in a line will add friction equal to a length of straight pipe forty times the diameter of the pipe:
Pipe Size............................... M 1
IK IK 2 2K
Equivalent length of
straight pipe in feet___ 2.5 3.3 4.1 5
6.7 8.3
3 . 3K 10 11.7
4 13.3
The water supply formula herewith makes it possible to accurately compute the flow of water in gallons through any pipe with any friction head and also gives formula for the additional head due to water entering the main, which, if extremely accurate calculations are necessary, should be added to the head required for friction; generally, however, this can be neglected as it is comparatively small.
WATER SUPPLY FORMULA
CF = Cu. ft. per min. discharged G = Gal. per min. discharged H = Friction head of water in feet = pressure X 2.31; if water is raised vertically, deduct number of feet raised, from head due to pressure. L = Length of pipe in feet--including horizontal and vertical runs.
CF = 0.16
(3d)6 X 3 H L (1)
G -- 1.2 J(3d)6X3H
YL
(2)
(CF)' X L H=
.0768 (3d)6
rr (C)2XL (3) 4.32 (3d)6
(4)
The above formula neglects the head due to entry, which need not be computed except when L is very short. //, = head due to entry in feet.
H, / 0.83 G \* or Hi / 6.25 CF\2
\dJ X 13/
\d2 X 13/
Example.--Required the discharge of a 2 in. main with pressure 30 lb. 100 ft. hori zontal run and 30 ft. vertical run.
H = 30 X 2.31 - 30 = 39.3.
(3 X 2)6 X 3 X 39.3
VFormula (2) G = 1.2
100 + 30
100.8
In the above case the head due to entry would be Hi
/0.83 X ioo.8y 2.56 ft.
\ 2 X 2 X 13/
Usually this can be neglected except for very close calculations. 104
American Society of Heating and Ventilating Engineers Guide, 1926-27 -
HOT WATER SUPPLY
Tables 57, 58 and 59 give the hot water requirements for several kinds of buildings in terms of gallons per maximum hour and per day.
Pipe sizes for hot water systems may be calculated from the foregoing
data on-cold water systems; using the same quantities for the gallons of
hot water required per min. as is given for the cold water. It may be
borne in mind that a column of hot water is lighter than one of cold water
amounting to about
ft. per 100 ft. in the height of columns of equal
weight. In case the cold water must first be fed down from roof tanks to
heaters in the basement and then back up to the top floor fixtures, the
extra length of run must be taken into consideration. As a check on the
total quantity of hot and cold water required per day it is well to know
that this generally runs from 2 to 3 times the amount of hot water re
quired and from 80 to 100 gal. per occupant of the building.
Table 57. Hot Water Requirements for Apartment Buildings
Class
Lavatories
Hot-Waieb Fixtures per Apartment
Bath Tuts
Showers Over Tuts
Kitchen Sinks
Laundry Trays
Separate Showers
Gallons Hot Water per Apartment per Maximum
Hour
Ai
i
i
i
2 .0
25
A2
2
i
i
2 0 30
A2
2, 2
i
2
0 35
A2
1
1
i
2
1 . 55
B1
1
0
i
2
0 20
C1
1
0
i
1
0 15
Note.--The quantity of hot water required per day is usually about 10 times the maximum hour requirement.
Table 58. Hot Water Requirements for Hotels
Class
Gallons
Add for Kitchens per Meal Capacity
Add fob Laundry
Hot Water Per H. W.
perH. W. Fixture per
Fixture Maximum
per Day
Hour
Per Day
Per Maximum
Hour
Per Washer Per Piece Per Washer per per Day per Day Maximum
Hour
High-Class Transient.;...... Medium-Class Transient.. Apartment Hotels...............
85 70 50
6.8 6.5 5.0
3.0 2.5
2.0
1.0
0.80 0.60
1.0 1.0 1.0
1200 1000 1000
250
200
200
Note.--Instantaneous demand rate for laundry washers from 25 to 50 gallons per minute.
Table 59. Hot Water Requirements for Office Buildings.
Class
Hot Water per Hot-Wateb Fixture
Per Day
Per Maximym Hour
Having Hot Water in public toilets only..............................
Having Hot Water in Private Offices as well as in PublicToilets..............................................................
For Self-Closing Hot Water Fixtures Deduct
50
30 40%
5.0
30 25%
105
American Society of Heating and Ventilating Engineers Guide, 1926-27
As a check on the sizes of hot water mains, Table 60 will give safe sizes for gravity systems fed from roof tanks set not less than 20 ft. from the water line in tanks to the highest fixtures.
Table 60.
Gallons per Maximum Hour
500 750 1000 1250 1500 1750 2000 2500 3000
'
'
Sizes of Hot Water Mains
.
Size of Hot Water Main. Inches
-2
234 234
3
3
334 334
. 4
'4
106
Chapter VII
STEAM AND HOT WATER HEATING BOILERS
HE boiler is one of the most important parts of any heating system
Tand its selection, as to type, size, rating, capacity, draft require ments, firing periods, kinds of fuel, principles of operation, efficiency and construction, should be made with great care.
TYPES OF BOILERS
Boilers used for heating, may be classified according to their construc tion as Sectional, either round cast-iron or rectangular cast-iron with horizontal or vertical sections respectively; Fire Tube, embracing steel firebox, or brick-set return tubular; and Water Tube, with either horizontal or vertical tubes and suitable drum arrangements. The most general use for heating falls in the first two of the three classifications given. For the small installations the round pattern cast-iron sectional boiler predomi nates, although certain designs of small steel boilers with fire-tubes and coil water tubes are also used to some extent. In the larger installations, the rectangular vertical section cast-iron boilers and the steel fire-tube boilers of the firebox pattern are used; the makes of either are numerous, and many detail differentiations in construction are to be noted.
For the small installations, it is customary to choose a design of boiler with such a disposition of flue passages as will give the maximum contact of flue gas with the indirect heating surface without unduly restricting the gas travel. For this the round sectional cast iron boilers are well fitted, and they are largely used for reason of their resistance to corrosion, pitting and other forms of deterioration. They are generally compact, requiring a minimum amount of floor space, low head room (low water line), and have a small water capacity.
On account of their sectional construction and the usual practice of being shipped knocked down and assembled on the job, they are easily handled through small openings at any stage of construction. Their design also facilitates the removal and replacing of damaged parts as well as an increase or decrease in capacity by the addition or removal of sections. Most sectional boilers are comparatively cheap in first cost but the labor of assembling is a factor which must be considered.
There are other forms of the boilers in the smaller sizes well adapted-for heating small buildings, which embrace vertical section cast-iron con struction, steel vertical tubular, and steel firebox construction, which have merit for particular classes of service. The features that are of
Compiled especially for The Guide by C. W. Obert. New York, E. A. May, Chicago and E. R. Fish,
St. Louis, Mo.
'
.
107
*
a
American Society of Heating and Ventilating Engineers Guide, 1926-27
greatest importance in such boilers are grate area sufficient to burn the
particular fuel contemplated at a moderate rate when carrying the fated
load, a depth of fire-pot sufficient to receive a liberal charge of fuel, an
advantageous disposal of direct heating surface in the furnace for absorp
tion of the radiant heat of the fire, sufficient indirect heating surface to
extract the heat from the gases by convection, yet without interposing
an undesirable resistance of flow to the chimney, and simple yet effective
means for control of the draft and rate of combustion.
For the larger installations, such as large apartment buildings, hotels,
office buildings, and other large public buildings, the fire-tube steel, the
cast-iron vertical section and the water-tube steel boilers are commonly used, but with such a selection as the local conditions governing the installation may dictate. Some designs of the two former types are more compact than others and in such cases their size may influence their
selection. Often low water line and low height may be a limiting con
sideration. In many cases also if steel tubular boilers are selected, the
provision of sufficient room to permit of removing and replacing tubes may need to be considered. In this reflect, the latter type is at a disadvan tage compared with the sectional cast-iron and sectional steel types of boilers. The latter, due to their ease of access into crowded boiler rooms,
are often given preference. Water-tube steel boilers are used mostly in
the large installations where it is expected that there may sometime be a
desire to turn to high pressure operation.
Fire tube boilers are usually constructed of steel, which shows the
greatest resistance - to splitting, cracking or similar stress due to the expansion and' contractional strains of temperature differences of too excessive pressures; or temperature. They are well adapted to oil
burning on account of this resistance to the wide temperature ranges
encountered with this type of fuel. They have large water and steam
spaces so that while they may heat up and steam slowly they retain heat and supply steam for comparatively long periods with a receding fire,
thus tending to compensate for fluctuations-in firing by the fly wheel effect of their water and steam capacities. Their large steam capacity
also tends to prevent priming and fluctuation of the water line. They are
comparatively steady under sudden and wide variations in load conditions
and require little attention on this account. Steel boilers may be built for high or low pressure and are therefore flexible in converting from one
pressure to another.
Fire tube, boilers may be of the direct tube, return tube or a combina
tion of direct and return tube type and have any desired ratio between
grate and heating surface, are generally efficient in operation, and with
adequate draft producing means may be operated up to 150 per cent of
rating without difficulty.
*
Water tube boilers are usually constructed with steel or iron tubes,
steel drums and either steel, cast steel or cast iron headers. On account
of the smaller diameter of drums and the fact that the tubes are the only parts to come into direct contact with the hot furnace gases it is generally
felt that this type of boiler is safer to operate, especially on high pressure. They heat up and steam rapidly but also lose their .heat and steam
pressure quickly. The water and steam spaces are moderate and their
performance on rapid and wide variations of load is accordingly fair.
, 108
American Society of Heating and Ventilating Engineers Guide, 1926-27
The principal heating surface consisting of tubes with the water inside and the heated gases outside, is easy to clean from the inside with hy draulic or pneumatic tube cleaners and from the outside with steam or air jet soot blowers although with highly scaling waters the scale formation on the inside of a small tube may be comparatively rapid.-
The water line is generally high and considerable space and head room
is required. On account of being constructed with drums and banks of
tubes they may be shipped knocked down and be assembled on the job,
thus passing through small openings at any stage of the construction.
The sectional construction facilitates repairs or increase and decrease in
capacity. This type of boiler is efficient in operation, comparatively
high in first cost, but may be operated to 200 per cent of the usual normal
rating without undue loss in efficiency.
.
BOILER RATING
The three words, size, rating and capacity, when applied to a heating boiler are sometimes used indiscriminately to designate any one of the three things for which they should be used. The size of a boiler should indicate its physical dimensions, i.e. the size of a sectional boiler may be the inches in width of a rectangular fire box or the inches in the diameter of a round fire pot, combined with the number of sections; the size of a return tubular boiler is usually the inches in the diameter by the feet in the length of its shell combined with the number and size of tubes. The sizes of fire box boilers are usually arbitrary figures based on heating surface and grate surface. The size of a water tube boiler is generally stated in horse power, or the number of tubes wide by the number of tubes high with the size and length of tubes.
The rating of a boiler is the measure of what it will do under certain conditions. The manufacturers' rating is the measure which the manu facturers place upon the performance of their own boilers; this may be given for one or more well defined sorts of conditions or for what the manufacturers may choose to consider average working conditions with out definition but in any case the conditions under which ratings have been established should be stated.
The ratings of low pressure boilers are usually stated in terms of the number of square feet of standard cast iron direct radiation the boiler will supply with steam or hot water, referred to conditions when the plant is heated up and operated under stable conditions with the radiation in still air at 70 deg. fahr. and all proper allowances made/or the added load of piping and connections? These ratings are usually for an 8 hour or other stated firing period and for hard coal or other stated fuel with allow ance factors for other lengths of firing periods and for other kinds of. fuel when the smaller sized boilers are being considered. In connection with most rating the chimney or draft requirements corresponding to the ratings are given.
Unfortunately there are wide differences in the ratings of boilers by the various manufacturers due largely to theTact that there has never been a full and complete cooperation in the establishment of a standard code on which to rate. For the larger sizes of boilers and with other fuels,
. ' 109
American Society of Heating and Ventilating Engineers Guide, 1926-27
particularly bituminous or soft coal, from 1 to 2 hour firing periods are generally considered.
In order to determine the effective rating of heating boilers, it is stipulated by the Heating and Piping Contractors National Association that the output shall be expressed in terms of square feet of direct radia tion load (equivalent to 240 B.t.u. emission per square foot of steam radiation per hour, or 150 B.t.u. for water radiation), as follows: .
where
For steam boilers, output For water boilers, output
WXHXE 240
WXHXE ' 150
W=Average dry fuel burned per hour in lb. for period of test H~ Heat value per lb. of dry fuel in B.t.u. E = Efficiency of boiler
SELECTION OF HEATING BOILERS
In selecting a boiler for any particular heating installation, there are
several important requisites that should be met in order to make sure
that the boiler is properly adapted to the conditions under which it will
operate:
:
1. That the material and construction of the boiler be suitable for the service to
which it is to be applied.
.
2. That the boiler be simple in construction, easily assembled, and easily operated.
3. That the boiler be so designed as to permit constant and thorough circulation so
as to maintain a fairly even temperature in all parts.
'
4. That the steam liberating surface be of liberal area to allow for free disengagement of the steam.
5. That the water and steam spaces be properly proportioned so as to maintain even pressure and water line.
6. That the boiler be constructed in accordance with A. S. M. E. Boiler Code.
7. That the boiler have a liberal combustion chamber and flues so that combustion
may be completed before the gases leave.
8. That all parts of the boiler be accessible for cleaning.
9. That the boiler be properly equipped with high grade gages, safety valves, and
other fittings.
.
-
10. That draft requirements of the boiler for the conditions of the service be known and met.
11. That the variation in draft requirements under variations in load be given
proper consideration.
.
12. That the capacity of the boiler be properly modified to suit the fuel used.
13. That the outlet openings on the boiler be of sufficient number and of ample size to allow for safe velocity of steam and to prevent carrying excess entrained water.
14. That the available data be sufficient to calculate the rate of combustion.
15. That the heating surface data and the relative proportions of direct and indirect
surface are known and properly checked.
110
American Society of Heating and Ventilating Engineers Guide, 1926-27
. TERMINOLOGY
When any question arises concerning size, rating and capacity, it becomes particularly desirable that certain terms may be understood so
that all data may be readily translated into comparable form. Among these are the following:
Rate of combustion is the amount of fuel in pounds burned per hour per square foot of grate surface.
Draft requirement, by which is meant the difference of pressure required to overcome the resistances to flow of gases through the fuel bed, flues, ashpit doors, smoke pipe, chimney, etc. This is expressed in inches of water. The data given by manufacturers generally covers the requirement of the boiler alone and does not include smoke pipe, chimney, etc., which should be added for according to conditions.
Heating surface, is any portion of the surface of the boiler which comes into direct contact with heated fuel, flame, or the gases of combustion.
Prime or direct heating surface, is that part of the total surface on which the fire
shines or which comes into contact with heated fuel.
,
Secondary or indirect healing surface, is that part of the total surface which only comes into contact with the gases of combustion.
- NUMBER OF UNITS
Reference has been made to the possibility of installing two or more boilers of proportionately less capacity in lieu of one sufficiently large to care for the whole load. Conditions often arise where the amount of installed load requires a draft with one boiler that calls for a height of stack that is not desirable from an artistic point of view. In such cases it is often better to install two or more boilers, instead of one, with especial regard to chimney conditions which will allow one boiler to be run at an overload at times and all boilers used only in the most extreme winter weather.
IMPORTANCE OF DRAFT
The capacity a boiler is capable of developing depends more upon the amount of draft available than upon any other factor. Assuming that a chimney is smoke tight and well built according to the Ordinance for Construction of Chimneys, 1921 (recommended by the National Board of Fire Underwriters and approved by the Society), the intensity of the draft depends upon the height of the chimney, and the quantity or amount of draft depends principally upon the effective area of the chimney.
Size of boiler plant is not the controlling factor of chimney height, but the desired rate of combustion is. There may be the same rate of burning in a small as in a large boiler so that the same height of chimney should be provided in one case as in the other, but the relative chimney areas will, of course, not be the same since that factor is dependent on the quantity of gas to be carried off. The mistake is not infrequently made of assuming that a low chimney will suffice for a small installation, and that a greater height would be needed for a larger plant, although it would be necessary to burn fuel at the same rate in either case.
According to their height, heating plant chimneys are divided into three classes, the erratic,-uncertain and reliable. Chimneys less than 36 ft. high are erratic in their action. The head produced by such a low height
111
>. /
American Society of Heating and Ventilating Engineers Guide, 1926-27
is so small that the least unfavorable condition or interference practically
puts the chimney out of commission.
At best the head produced by chimneys up to 64 ft. in height is so. small that the draft is frequently affected by surrounding conditions making the draft a doubtful one. 'Chimneys over 64 ft. in height are not usually so affected, because as a rule the chimney is designed by an engineer and must be well built to sustain such a heavy load and the height is such as to produce considerable head or force to offset unfavor able weather conditions, etc. Chimneys in this class produce about 0.009 in. draft per ft. of height in zero weather with 600 deg. in the stack according to the formula:
)7.9
P r8 where
P = draft pressure in inches of water.
H = height of chimney in feet.
T0 = absolute temperature of outside air. Ts = absolute temperature of stack gases.
For low-pressure heating boilers, water heaters and warm air furnaces conservative modern practice in the matter of chimney sizes is in accord ance with the accompanying schedule, Table 61 :
Table 61. Chimney Sizes
Warm Air
Furnace Capacity
in Leader
Pips Sq. In.
Steam Boiler Capacity Sq. Ft.
of Radia
tion
Hot
Water Heater
Nominal Dimen
Capacity Sq. Ft.
sions OF
FireClay
of Radia
Lining
tion
In.
Rectangular Flue
Actual
Inside Dimensions
of Fire Clay Lining
` In.
Actual Area
Sq. In.
Effec tive Area
Sq. In.
Round Flue
Inside Diameter
of Lining
In.
Effec tive Area
Sq. In.
Height in Ft. from Grate
790 1000
590 973 8Mxl3 690 1140
7xllJ-<! 81 70
10
SJi
79 c o
900 1490 13x13 llKxllK 127 99
I-2
900 1490 8Hxl8 6%xl6^ 110 100
1100
1820
12 113 cr o
1700 1940
2800 3200
13x18 HMxi6
183 156
15
177 2 jo
2130
3520
18x18 15^x15% 248 195
o-q
2480 3150
4090 5200
20x20 17Kxl7k 298 234
18
52 254 c"w
4300
7100
20 314
4600 5000 5570 5580
7590 8250 9190 9200
20x24 24x24
17x21 21x21 24x24*
357 278 441 576 380
22
380
5.2 |
c 41 u
aSt)
6980 7270 8700
11500 12000 14400
24x28* 28x28*
672 468 784 531
24
452
mL2
>2f 2
hW3
9380 15500
27 573
10150 16750
30x30*
900 616
g.Hx.
10470 11800
17250 19500
28x32*
896 635
30
Z -5 707 &>
14700 24300
33 855
17900 29500
36 1018 C'o-e
*Dimensions below are for unlined rectangular.flues. 1See also Code of Minimum Requirements for Heating and Ventilating of Buildings.
112
American Society of Heating and Ventilating Engineers Guide, 1926-27
Chimneys recommended for larger, boilers 15 to 250 .hp. are propor tioned in accordance with the report made by a joint Committee of the American Boiler Manufacturers Association and Stoker Manufacturers Association and approved by these organizations. The sizes are given in Table 62.
Table 62. Height of Stack for Average Installations (Sea Level) Forced Draft Stokers
Per Cent Rating...................................... Draft Furnace.......................................... Friction Loss (Boiler)..........'................. Friction Loss (Breeching).................... Total Draft Required............................ Height of Stack (Ft.)............................
100 0.15 0.18 0.10 0.43
80
150 0.15 0.4
0.10 0.65 112
200 0.15 0.65 0.10 0.90 145
250 0.15 0.9 0.10 1.15 178
300 0.15 1.20 0.10 1.45 220
^ _T Diameter of Chimney in Inches for
Horizontal Return Tubular Boilers
Height of Stack in Feet--For Sea Level and 0 deg. fahr. Outside Temp. Assumed Fric-
. jjon Loss in Stack 0.1 in. per 100 ft.
Nominal H. P.
15 20 25 30 35 40 50 60 75 90 100 115 125 150 175 200 210 225 250
100% Rating
13 14 16 17 18 19 20 21 23 . 25 26 27 28 30 32 33 34 35 36
150% Rating
14 16 18 19 20 21 23 24 26 28 29 31 32 34 36 38 38 40 41
200% Rating
17 18 20 21 22 23 25 27 29 31 33 34 35 38 40 43 44 45 47
Draft at Base of Stack
0.12 0.15 0.20 0.25 0.30 0.35 0.40 0.45 0.50 0.55 0.60
_0._6_5 ___ ___ ___ ___ ___
--
100% Rating
21 26 35 43 52 60 69 78 86 95 104 112
__ __
__
.--
150% Rating
22 ' 28
37 46 56 65 74 84 93 102 112 121
__
200% Rating
25 30 41 51 61 71 81 91 101 111. 122 132
__ -
__
Rating............. Efficiency____ CO,.. ............
Data on Which Tables are Based
100% 65% 8%
150% 65%
9%
200% 63%. 10%
Stack Temp, deg. fahr..................
Lbs. of Gas...................
450 -500 85 77
550 73
Average Friction Loss Through Boilers
Per Cent Ratings..........
100
150
200
250
Loss Ins., Water...... ....... 0.1 to0.3 0.2 to0.6 0.3 to0.9 0.5 to 1.4
300 0.7 to 1.9
Friction loss through boiler varies according to construction. -- -- For Furnace Draft.--Allow 0.15 for forced draft. For Natural Draft 0.35 iri. or higher should be used depending upon rate of combustion and fuel used. For Breeching Friction Loss.--Allow 0.05 in. for each right angle bend and 0.1 in. per 100 ft. of length. Cross sectional area should be 20 per cent larger than that of stack.
113
American Society of Heating and Ventilating Engineers Guipe, 1926-27
Height of Stack in Feet
F,or Sea Level and 60 deg. fahr. Outside Temperature and 0.1 in. Friction Loss per 100 ft.
Total Draft Required In. for Furnace Boiler and Breeching
0.3 0.4 0.5 . 0.6 0.7 0.8 0.9 1.0 1.1 1.2 1.3 1.4 1.5 1.6 1.8
Assumed Flue Gas Temp...............
100
56 74 93 111 130 148
500
Per Cent of Boiler Rating ISO 200 250
69 86 81 103 97 120 113 108 138 129 123 155 145 139 172 161 154 190 177 170
194 185 209 200 226 216
231
550 600 650
300
132 147 162 176 191 206 221 236 265 700
Correction for Altitude
Height Above Sea Level (Ft.)
Ratio Increase in Diameter
o 1,000 2,000 4,000 6,000 8,000 10,000
1.000 1.015 ' 1.030 . 1.063 1.096 1.130 1.165
Ratio Increase in Height
1.000 1.046 1.097 i.205 1.321 1.456 . 1.612
114
\
Chapter VIII
CODE FOR TESTING LOW-PRESSURE STEAM-HEATING BOILERS
REVISION OF 1923
(Adopted by American Society of Heating and Ventilating Engineers, Jan., 1924)
OBJECT OF THE CODE HE object of the Code for Testing Low-Pressure Steam-Heating Boilers is to
Tprovide a standard method for conducting and reporting tests to determine the heat efficiency at various rates of steaming.
ESSENTIALS NECESSARY TO DETERMINE HEAT EFFICIENCY
The essentials necessary to determine the heat efficiency of a steam-heating boiler are:
a. The total heat input.
(The total heat input is the total heat value of the fuel charged.) .
b. The total heat recovered at the boiler outlet.
.
(The total heat recovered at the boiler outlet is the total heat of the steam leaving the boiler
less the total heat of the feed water entering the boiler.)
.
PREPARATIONS FOR TEST
The boiler shall be erected, covered and connected to conform to the directions and practice of the manufacturer. The piping shall be connected in such a way that the steam may be carried to a point away from the boiler and it shall be arranged so that the condensation cannot flow back to the boiler.
The moisture in the steam shall be determined by a steam separator, not less than 95 per cent efficient, placed in the steam delivery pipe as close to the boiler as possible. The piping between this separator and the boiler, also the separator itself, shall be thor oughly covered with insulating material. A pipe connected to the bottom of the steam separator shall be provided with a positive seal. The water shall be drained from the separator hourly and weighed immediately.
The steam connections between the boiler outlet and the separator shall be the same in size and arrangement as that to be used when the boiler is installed.
The water shall be fed to the boiler continuously from the feed tank through piping with all necessary valves, and all other water connections to the boiler shall be carefully blanked off. The temperature of the feed water shall be read from a thermometer inserted in a cup projecting well into the feed line near the boiler and filled with a heavy oil. All boiler water connections, including blow-off pipes, must, be exposed to view, so that leakages may be observed, and either stopped or measured. The glands of the feed pump shall be carefully packed to prevent leakage.
Code prepared by Committee for Testing Low-Pressure Steam Heating Boilers: Johp Blizard, Chairman, Homer Addams, F. Paul Anderson, L. P. Breckenridge, P. J. Dougherty, L. A. Harding, F. B. Howell,
and J. F. Mclntire.
.
115
American Society of Heating and Ventilating Engineers Guide, 1926-27
The boiler shall be connected with a short, direct smoke-pipe to a chimney flue of suitable size, height and construction to give proper draft.
The water spaces of the boiler shall be thoroughly boiled out with a solution of sal soda, potassium hydrate or sodium hydrate and then thoroughly rinsed with clean water.
The heating surface, firebox, ashpit, flues and chimney shall be clean and free from soot, ashes and dust at beginning of test.
APPARATUS AND INSTRUMENTS
. Apparatus and instruments must be reliable and be arranged in such a way as to
insure correct data.
'
Tanks for measuring the feed water may be calibrated with weighed quantities of water at the temperature to be used during the test, or mounted on accurate weighing scales. The water may be fed to the boiler by gravity, by air pressure or by feed pumps, from feed-water tanks supplied from the measuring tanks by gravity.
Accurate scales of suitable size shall be provided for weighing separator water, fuel and all refuse removed from the grate and ashpit.
Three draft gages shall be provided and so arranged as to determine the pressure
difference at the level of inserting the pipe between the outside and the ashpit, between
the outside and the firebox, and the outside and the smokehood. Draft measurements
shall be made with draft gages reading to 0.01 in.
.
Accurately calibrated instruments shall be provided for measuring temperatures of gases, water and steam.
An Orsat apparatus shall be used for determining the flue gas composition. If record ing carbon dioxide (COj) instruments are provided, they shall be checked every hour with the Orsat apparatus.
A Ringelmann chart shall be used for smoke observations.
.
Weather Bureau reports from the immediate vicinity may be used to determine the barometric pressure. When such reports are not available, a calibrated aneroid barom eter or mercury column shall be used for determining the barometric pressure.
A calibrated steam gage or a mercury column shall be used for determining the steam pressure.
A log of the test shall be kept on record sheets similar to those provided by this Code.
DURATION OF TEST
The test shall continue for at least 16 hours if operated at the normal manufacturer's rating; if operated at other ratings it shall continue until as much fuel has been burned as would have been burned in a 16-hour test at normal rating.
METHOD OF STARTING AND STOPPING TEST
The New Fire Method of starting and stopping test may be used on any boiler when
anthracite coal is used as fuel. All tests using other fuels shall be started and stopped
by the Continuous Firing Metjiod.
.
New Fire Method.--A preliminary fire shall be made and the boiler operated under test conditions for-at least one hour before starting the test. The preliminary fire shall then be dumped, the ashpit thoroughly cleansed and dried wood placed on the grate and kindled. The test shall be considered started at the time of firing the charge of wood. On this charge of wood, fuel shall be placed. The wood shall be considered as having a heating value of '5000 B.t.u. per lb. The height of water line in gage glass and feed tank shall be noted and recorded at the time the preliminary fire is dumped.The water level in the boiler shall be kept at this level as nearly as possible throughout
116
American Society of Heating and Ventilating Engineers Guide, 1926-27
the test and the water level in the boiler and feed tank must stand at this same height when the test closes. At the end of test the fire shall.be dumped. The residual fire when dumped shall be placed in tightly covered cans, weighed and left to cool. After cooling it shall be forwarded for analysis and determination of its heat value and ash content. The total fuel fired shall be taken as the total weight of fuel exclusive of the wood used for kindling, to which shall be added the fuel equivalent of the wood and from which shall be subtracted the fuel equivalent of the residual fire. The weight of the ash content of the residual fire shall be added to the weight of ash and refuse removed from the ashpit and the sum recorded as ash and refuse removed from the ashpit.
Continuous Firing Method.--A preliminary fire shall be made and the boiler operated under test conditions for at least one firing period and not less than one hour before
starting the test.
. ..
The fire shall then be burned low, thoroughly cleansed and the remaining live fuel
spread evenly over the grate as the foundation for the first test fuel charge. The thick
ness of the fuel bed and the extent to which .it has been burned through shall be quickly
estimated or measured. The height of water line in gage glass and feed tank shall be
noted and recorded. The test shall start at the time of making these observations.
A weighed charge of fuel shall then be fired. The ashpit shall be thoroughly cleansed
immediately and the test allowed to proceed.
A constant water level and rate of steaming shall be maintained throughout the
test.
.
At the end of the test the fire should be burned low and clehnsed so as to leave the
same amount of live fuel on the grate as at the start. When this condition is reached
and the water level in the boiler and feed tank are at the same height as at the start,
record the time and this time shall be the time of stopping. The contents of the ashpit
shall be removed promptly on stopping and placed in airtight cans, weighed and left
to cool. The boiler shall be charged with all fuel charged during test.
METHOD OF FIRING
The method and frequency of firing shall be as agreed upon by the manufacturer and purchaser.
FUEL SAMPLING
' During the progress of the test, fair samples at regular intervals shall be taken with a shovel from the fuel charge, stored in a covered vessel Tn a cooL place, and after crushing and quartering, two one-pint glass jars or other airtight vessels shall be filled. The gross sample for slack coal and small sizes of anthracite in which the impurities do not exist in abnormal quantities or in pieces larger than % in., should weigh approx imately 500 lb. and not less than 1000 lb. for other solid fuels.1
The small samples shall be preserved for determinations of the proximate analysis,
ultimate analysis and calorific value.
`
The refuse taken from the ashpit and grate shall be reduced by crushing and quarter
ing to a quantity sufficient to fill two one-pint jars or other airtight vessels for deter
mining its combustible content in the laboratory. Care must be taken to crush and
quarter the coal, ash, and refuse on a clean floor; to avoid contaminating the sample
a metal plate is to be preferred to a concrete floor. Care must be taken to see that the
ash and refuse does not burn after removal from the grate or ashpit.
.
*As recommended by the American Society for Testing Materials. D21--16. p. 756. 1921.
The Committee on Code for Testing Low-Pressure Heating Boilers of the American Society of Heat ing and Ventilating Engineers is prepared to interpret the meaning of any items on the Code......
I: is requested that all tests be filed with the Amercian Society of Heating and Ventilating
Engineers.
''
117
American Society of Heating and Ventilating Engineers Guide, 1926-27
STANDARD FORM
For Reporting Results of Low-Pressure Steam-Heating Boiler Tests
RESULTS
Of a Test on a Low-Pressure Boiler
Date of Test___........... ....................................................................................................................... .....
Conducted at....................................................... ....... .............................................. ....................... .
.
Director of Test.........................................--............................................ ..........................................(signature)
Manufacturer of.Boiler...........................................................................................:..................
Owner of Boiler........ ....................................................................................................;.....................
Size of Boiler...... ....................................................................................................................... ;.......... .
Type of Boiler...................................................................... ...................................................................
GENERAL PARTICULARS OF BOILER AND FUEL
Boiler
Type.........................
--
Made by...... ................................................................................................................................................
Length of Grate (or Diameter)............................
in.
Width of Grate.... ....... _.v.............................. ............................................... ..................................... in.
Fuel Capacity (Greatest Possible Volume).......................................................................... cu. ft.
Maximum Fuel Depth (Greatest Possible Depth of Fuel)................__.................................. in.
Fuel Capacity Normal.................................................... ............................................................ cu. ft.
Fuel Depth Normal.... ..... ..............:...................................................................................................in.
Average Distance from Top of Normal Fuel Charge to Crown Sheet............................. Jn.
Total Furnace Volume, Grate to Crown Sheet and Bridge Wall.... ............................. cu. ft.
Total Combustion Space Beyond Bridge Wall................................................................... cu. ft. .
Water Capacity (To Water Line).................:................................................................................ lb.
Height of Water Line.^...........................................................................
OLeaiu C.UUUCU1UH& uscu s(Soi**ze.......................................................................'.................... ............in. Kind of Insulation........................................................ ........................................................... ................ Thickness of Insulation --.......................................................... ................ ................................... in. Detailed Description of Boiler...................... .................................. ...................................................
Smoke Pipe and Chimney
.
Area of Smoke Pipe............................................................... .................. ................................... sq. in. Length of Smoke Pipe (Boiler to Chimney)...... .......... .................. ............................ ........ ..... in. Number and Kind of Bends in Smoke Pipe...... .............................................................................. Chimney, Height above Grate...................................................................... ;............... ,ft. Chimney, Area at Bottom......................................................:.................... ............................ _sq. ft. Chimney, Area at Top......................................... ...................................................................... sq. ft.
Fuel
Name. Size...
Proximate Analysis
Moisture...,..................................... Volatile Matter............................ Fixed Carbon..........'....................... Ash.................................
per cent per cent per cent per cent
Ultimate Analysis
Carbon........... ................ ,......... ...... Hydrogen ........... ........................ Oxygen............................................. Nitrogen.......................... ....:........ Sulphur......... ;.................................. Ash..............
per cent per cent per cent per cent per cent per cent
As Fired
Moisture Free
As Fired
Moisture Free
These forms may be obtained on request at the office of the Secretary of the American Society of Heating and Ventilating Engineers. 29 West 39th Street. New York City, at nominal coat.
118
American Society of Heating and Ventilating Engineers Guide, 1926-27
Heat Value (Gross)
1
B.t.u. per lb. as fired...... .................................................. -............................................................ B.t.u. per lb. moisture free...................................................................................................-....... B.t.u. per lb. moisture and ash free...........................................................................................
Character of Fuel
(State whether coking or free-burning, clinker troubles, etc.)
Method of Firing
.
. PRINCIPAL RESULTS OF TEST
Heat recovered at the boiler outlet per hour................................................. ........... 1000 B.t.u Maker's rating (sq. ft. radiation X 240)..............................,....... ...............1000 B.t.u. per hr. Percentage of maker's rating developed...... .................. ....... .......................................... per cent Mean interval between charging fuel...................... ................ .............................................. hours Mean interval between attention of any kind to the fire, including charging...........hours Overall thermal efficiency..... ................................................................................................. per cent
DETAILED RESULTS OF TEST (For full particulars of boiler and fuel see ``general particulars" ante)
General Information
1. 2. 3. 4. 5. in. 6. 7. 8.
9. 10.
Date of Test_____;......................................................-................................................... Number of Test.........................:.................................................................................... Location of Boiler.......................................................................................................... Maker of Boiler and Type............ .............................................................................. Owner of Plant..................................................................-............................................. Test Conducted by................... :........................-...........................................-..... -...... Duration of Test --........................................................ ....... --.........................-....... Manufacturer's Rating of Boiler............................................................... sq. ft. radiation1
Grate Area2....................................................................................................... -----.............. s9- ftBarometric Pressure....... ...................................i.............. ................................. in. of mercury
Fuel
11. Heat value, as fired...............................................................................................B.t.u. per lb. 12. Number of Times Fuel Charged during Test------- .'....................................---..................... 13. Intervals between Charging, hrs. Longest.......... Shortest. ..----- Average......... '......... 14. Intervals between Attention of any Kind to the Fire, including firing, hr.
Longest..........Shortest..........Average.......... ..........
15. Average Fired per Charge2............................................................................................. -...... lb. 16. Depth on Grate at Start of Test----................................................................. .................. ....
(After Firing)............................................................................:................................ --in. 17. Depth on Grate at Finish of Test--.............................. .............................................-........ in. 18. Weight as Fired during Test2.................. -............... ........................................................... --lb. 19. Weight as Fired per Hour3.....................................................................................................lb. 20. Moisture in Fuel.......................... ........................................................................... --per cent 21. Weight Fired per Hour less Moisture:2
100 - item 20 x item 19 .................................. ............... ...................................... lb.
100
Ash and Refuse
22. Weight of Ash and Refuse Removed from Grate...............................^........................... lb. 23. Weight of Ash and Refuse Removed from Ashpit...... ................................................... lb. 24. Total Weight of Ash and Refuse Removed4
(item 22 + item 23)......................................................................................................lb.
'One sq. ft. radiation to be assumed equal to'240 B.t.u. per hr. '
'
t tt
3If the grate have an unusual shape, method of computing area must be stated under "Remarks.
3When the New Fire Method is used the equivalent fuel charged shall be given throughout. The method
of obtaining this is shown at the end of this table.
*
*To include ash content of residual fire when New Fire Method is used.
*' 119
American Society of Heating and Ventilating Engineers Guide, 1926-27
American Society of Heating and Ventilating Engineers Guide, 1926-27
25. Total Ash and Refuse, Percentage of Fuel as Fired............................................................ 26. Combustible in Ash and Refuse..................................................................................per cent
Temperature
'
27. Steam...................:............................................................................................................deg. fahr. 28. Feed Water.......................................... ;.......................................................................... deg. fahr.. 29. Gases Leaving Boiler....................................................................... 30. Boiler Room.................................................................................................................... deg. fahr. 31. Outside Air...... ................................................................-.............................................. deg. fahr.
deg.fahr.
60. Total ash and refuse removed from ashpit--.................................................................... lb. 61. Equivalent ash and refuse removed from ashpit (item 59 + item 60, -
this is the value to be used for item 23)....................................................... ........ lb.
LOG SHEET NO. 1 General Sheet
Draft Intensity
.
32. In Smokehood...... ...................................,..............-............................. ......................... in. water
33. Over Fire--............................................................................
34. In Ashpit--...................................................................................................................
in.water
Output
Test of............................................................................................ boiler with................................. coal
in.waterDate............................................................. ..
Time
General Notes
Test No....................................
36. Equivalent evaporation from and at 212 deg. fahr. per lb. of dry coal fired.........lb. 37. Heat Recovered at the Outlet per hour (item 35 X 0.97)...... .....................1000 B.t.u.
Steam and "Water
38. Steam pressure (gage)................................ -.......................................................lb. per sq. in. 39. Total Water Fed to Boiler during Test...... ........................................................................lb. 40. Priming: Total Water Removed from Separator,
Per Cent of Total Feed Water...... .................................................................per cent
Heat Balance
41.5 Heat to steam leaving outlet (and thermal effici ency boiler, furnace and grate)...... .................
42. Heat lost by hot flue gases, exclusive of steam-------43. Heat lost by not burning carbon monoxide............. 44. Heat lost by steam in flue gas.... .................................. 45. Heat lost by combustible in ash and refuse............. 46. Heat lost by radiation........................ ............................ 47. Undetermined losses and errors.......... ......................... 48. Total, items 41, 42, 43, 44, 45, 46, 47 and calorific
value of dry fuel...................................................
Per lb. fuel as fired
Per cent heat in fuel fired
100
Additional items, for use only with New Fire Method of starting
Fuel Used
49. Weight of wood for kindling__ 50. Heat value of wood..................... 51. Weight of residual fire................ 52. Heat value of residual fire.____ 53. Fuel value of wood (item 49 X jtem ^2) --......................................
\ item 11/ 54. Total fuel fired during test (exclusive of wood)------- ......................... 55. Total equivalent fuel charged during test (item 53 + item 54).... 56. Fuel value of residual fire (item 51 X jtem ^ \..............................
\ item 11/ 57. Equivalent fuel used during test (item 55 -- item 56, this value
to be used for item 18)............................'.......................................
.....................lb. B.t.u. per lb. .................... lb. B.t.u. per lb. .................... lb.
.................... lb. .....................lb. .....................lb.
.lb.
Ash and Refuse
58. Ash in residual fire (by analysis) ._. 59. Total ash content of residual fire:
.per cent lb.
(Here will be recorded the method and times of starting and stopping, the method of firing, the difficulties encountered with ash and clinker, the times of cleaning, slicing and raking the fire, the caking and other properties of the coal, the manipulation of the dampers, etc.)
aiteni 41. Heat to "steam," includes the heat used to raise the water removed from, the separator from the feed water temperature to the steam temperature.
- 120
121
American Society of Heating and Ventilating Engineers Guide, 1926-27
LOG SHEET NO. 2
Date.......... :.................................................
Test No:
Fuel, Ash and Refuse
Detailed Record 6f Coal Fired During Test
Time op Firing
Quantity Fired, Lb,
Tare
Gross
Net
Fired in Interval,
Lb.
Total Fired, Lb.
Time of Removal
Detailed Record of Ash and Refuse Removed
Quantity Removed from Grate
Tare
Gross
Net
Quantity Removed from Ashpit
Tare
Gross
Net
\
Special observations for New Fire Method of starting: Weight of wood used for kindling............................................................................................. ..... lb. Weight of fire dumped at end............................................................................... .......................... lb.
122
Boiler gage correction
-.w.
Thermometer corrections
Barometer: At start
.
Correction not allowed for on sheet
. 123
. * finish
,
American Society of Heating and Ventilating Engineers Guide, 1926-27
LOG SHEET NO. 4 Date.................................................. *................ .
Detailed Record of Gas Analysis
Test No.
Tuts
CO*
CO* + 0*
o*
CO* + 0* + CO
CO
N
Remarks
.
Date No.
LOG SHEET NO. 5 Smoke Readings
Test No.
Time
Ringelmann Chart
No.
Time
Ringelmann Chart
Remarks
124
Chapter IX
PUMPS FOR HEATING AND. VENTILATING EQUIPMENT
INTRODUCTION
HE various kinds of pumps ordinarily used in connection with
Theating and ventilating installations may be classed under the following heads:
1. Boiler feed pumps. 2. Condensation return pumps. 3. Return line vacuum heating pumps. 4. Sump pumps. 5. Forced circulation hot-water heating pumps. 6. Circulating pumps for water brine, etc. 7. Refrigeration pumps and compressors.
'
In applying pumps to heating and ventilating systems the following points should be considered:
For Boiler Feed Pumps--the load factor, temperature of the intake water, static head on the pump intake, total' pressure against which the pump must discharge, steam pressure available for steam driven pumps, provisions for emergency and breakdown service, method of control; as to whether pumps should be steam, electric or power driven, depending upon the relative first costs and economies taking ifito con sideration the possibilities of the use of the exhaust from steam driven pumps and any difference in the cost of labor and attention required.
For Condensation Return and Vacuum Pumps--method and efficiency of return trapping,, degree of tightness of the system, temperature of the condensate at the pump, probable cooling effect of the return piping, lifts (if any) required in the system, length of run of piping from farthest radiator to the pump, the total pressure against which the pump must discharge the total load to be carried, the load factor, the vacuum (if any) to be carried, as to whether the pump is to be automatically controlled from the water-line in a condensate receiver from the vacuum, .or from both, the static heads on the suction and discharge, provisions for emergency and breakdown service and as to whether the pump is to be steam, electric or power driven, etc., as above.
For all other Pumps--the service to be performed, loads and load
factors, emergency and breakdown service, methods of driving and
methods of control.
-
Standards for Condensation to be Handled--The quantities of condensate
Material for this section prepared for The Guide by Perry West, consulting engineer, Newark. N. J.
125
American Society of Heating and Ventilating Engineers Guide, 1926-27
to be handled from direct radiation, direct-indirect radiation and indirect or fan blast radiation may be estimated as follows:
For direct radiatiqn
W = 0.3 R
For direct-indirect radiation W = 0.6 R
-ror .ind,.irec,t rad,.iati.on
.W.. = Q,X, 60w X..--T 55.6 X H
where
..
W = lbs. of condensate per hour, R = sq. ft. of radiation, Q = cu. ft. of air per min., T = temperature rise of air in deg. fahr. and H = the latent heat of steam in the system in B.t.u. per pound.
The normal capacity of pumps to be based on condensate at a tempera ture of not over 180 deg. fahr. For temperature of condensate above 180 deg. fahr. capacity should be increased above that estimated for 180 deg. fahr. condensate as per the following Table 63.
Table 63. Temperature of Condensate at Pump Suction
Deg. fahr.
190 200 204
Factor
1.15 1.56 2.00
To use Table 63, multiply the quantity of condensate to be handled by the factor corresponding to the temperature of the condensate at the pump suction and select a pump suitable for the quantity thus found.
The above increase in pump capacity may be reduced by providing a static head above the pump suction and when this static head is made equivalent to 15 ft. minus the absolute boiling pressure of the condensate (measured in feet of water) no increase is necessary.
Allow sufficient head in addition to the total head necessary to over come static head, velocity head, pipe friction and boiler pressure, wherever condensate is to be returned direct to a boiler from the pump.
' BOILER FEED PUMPS
Types.--Boiler Feed Pumps may be of the following types:
1. Direct acting steam driven reciprocating pumps. 2. Power driven reciprocating pumps. 3. Centrifugal pumps. 4. Screw pumps.
Capacities.--The capacity of a boiler feed pump should be based on
34.5 lb. of water per hour per maximum boiler horsepower served, with
a slippage allowance of 10 per cent in the water cylinders and a factor
of safety allowance of 2 for intermittently operating pumps and a factor
of safety allowance of 1)4 for continuous operating pumps, to provide
for unusual demands when the water in boilers becomes low or excessive
loads are carried.
0
Piston Speeds in Feet per Minute.--For reciprocating boiler feed pump
126
American Society of Heating and Ventilating Engineers Guide, 1926-27 .
not to exceed 10 times the square root of the number of inches in the length of stroke of the water pistons.
Direct acting reciprocating steam driven or power driven boiler feed pumps are generally found to be more efficient for smaller installations especially with widely fluctuating loads as the efficiencies of centrifugal
Table 64. Direct Acting Steam Driven Duplex Reciprocating Boiler Feed Pumps
Dia. OF
Steam Cyl.
Dia. OF
Water Cyl.
IN .
in
Inches Inches
Length of
Stroke in Inches
No. of Strokes per Min.
Discharge in Gallons
Per
Per
Stroke Min.
Equiva
lent Dla. of StNGLE
Cyl. Pump
Boiler H. P.
Served Without
Factor
of Safety
S izb Pipe, INCHE s
Steam
Ex haust
Suc Dis tion charge
3
4A
6' * FA iy2
10 12
2
2% 3A
4
4A
5
6
7
3 70 0.04 5.6 2Vs . 80
A IA i
4 60 0.10 12.0 4
180 A A i A i A
5 50 0.20 20.0 5
300 A m 2
iA
6
50 0.33 33.0 5A
480 l
1A 2A 2
6
so 0.42 42.0 6Vs
600 1A 2
3
iA
10
40 0.85 68.0 7
1000 lA 2
3
2A
10
40
1.22 97.6 8A
1400 2
2A 4
3
12 . 35
2.00 140.0 9A
2000 2A 3
5
4
Table 65. Horizontal Duplex Piston Packed Power Driven Boiler Feed Pumps for 100 Lb. Working Pressure
Size of Pump Cylinders
in Inches
Dia. Stroke
No. of Revolu
tions per Min.
Displacement Gallons
Per Rev. Per Min.
2A 4
34
3A 5
46
8 10
30
0.34
10.2
30
0.49
14.7
30
0.83
24.9
25
1.30
32.5
20 8.69 173.8
Boiler H. P.
Served Without
Factor of Safety
148 213 361 471 2520
H. P. Required
to Drive Pump
1.5 4.0 3.5 4.0 18.0
Pipe Sizes Inches
Suction Discharge
iA m 2 1A 2A 2 3 iA
54
Table 66.
Reciprocating Single Acting Power Driven Triplex Boiler Feed
Pumps for 150 Lb. Working Pressure
.
Size of Pump Cylinders
in Inches
Dia. Stroke
No. of
Revolu
tions per Min.
Displacement Gallons
Per. Rev. Per Min.
iA 2 iA 2A
23
2A 4
34 44
46
58
68 8 10
50 0.045 50 0.078 40 0.122 30 0.255 30 0.367 30 0.652 25 0.978 20 2.041 20"-- 2.938 20 6.520
2.25 3.90 4.88 7.65 11.01 19.56 24.45 40.82 58.76 130.40
Boiler
H. P.
Served Without
Factor of Safety
33 57 70 110 160 280 355 . 592 852 1891
H. P.
Required to
Drive Pump
0.40 0.65 0.80 1.15 1.40 4.60 3.10 5.00 6.00 14.00
Pipe Sizes Inches
Suction Discharge
A
l
iA iA iA
2
2A
3
3A
4
.i
i
,MA iA iA
2
2A
3
3
127
American Society of Heating and Ventilating Engineers Guide, 1926-27.
boiler feed pumps drop off very rapidly for the smaller sizes of pumps and for low load conditions. For this reason centrifugal pumps are not
vi as< oa
Z CL,
Q
H (d Nw C/5 U,
OM zO dO
H CQ
W W
CD
PS Uo-
d u.
H ZU
US
55 a. 5 k-
ea < k. 3ss <J Soi 3 o > H
o u. usually employed for installations of less than 1000 boiler horsepower. Screw pumps may be used with good economy for small capacities..
128
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 67. Screw Pumps
Since the capacity and pressure at which Screw Pumps will operate is almost infinite, we can only give some idea of their capacity. Efficiencies range from 60 per cent to 70 per cent.
Size
2 214 3 3M 3J4 4' 5 5H
6
7 8 9 10 12 16
G. P. M.
2- IS 10- 20 20- SO 40- 60 55- 100 85- 200 175- 275 200- 325 275- 475 300- 600 450- 750 700-1000 800-1400 1200-2100 1750-4200
Max. Rev.
1600 1600 1600 1600 1500 1400 1200 1200 1200 1000 . ?75
720 700 600 425
.
Suction Inches
2 2
3 4 4 5 5 6 8 8 10 12 14 16
Discharge Inches
iH 114 214 2)4 3 4 4 4
6
6 8 10 12 14 15
Table 68. Sizes, Revolutions per Min. Heads Pumped Against, Power Required and Boiler Horse Power for Several Commercial Sizes of Centri fugal Boiler Feed Pumps
Size of PufdP Inches
H. P.
Pipe Sizes Inches
Suction
1 Discharge
Capacity Gallons
Boiler H. P. Served Without
Factor of Safety
2 m 3 4 5 6 8
2
2)4
3 4 5 6 8
2
2)4
3 4 5 6 8
Two Stage for 100 lb. Working Pressure
214 3 4 5 6 8 10
2 100 2 H 150 3 . 225 4 400
5 620 6 900 8 1600
Three. Stage for ISO lb. Working Pressure
2)4
3 4 5 6 8 10
2
2)4
3 4'
5 6 8
100 150 225 400 620 900 1600
Four Stage for 250 lb. Working Pressure
2)4
3 4 5 6 8 10
2 100
2)4 150
3 225 , 4 - 400 5 620 . 6 900 : 8 1600
129
1450 2175 3262 5800 8990 13,000 23,000
1450 2175 3262 5800 8990 13,000 23,000
1450 2175 3262 5800 8990 13,000 23,000
American Society of Heating and Ventilating Engineers Guide, 1926-27
' -
CONDENSATION RETURN PUMPS
Condensation return pumps may be of the following types:
' a. Automatic pumps and receivers b. Continuous operation non-automatic return pumps
Volumetric Capacities of Receivers.--To be not less than 3 times the maximum minute volumetric flow of condensation to be handled, measured between the "high and low water lines in the. receiver.
Piston Speeds in Feet per Minute.--Not more than 10 times the square root of the number of inches in the length of stroke.
The ratio between the pump displacement and the maximum vol-
Table 69.
Duplex Piston Type Return Pumps with Receivers Standard Pressure
Size op Pump
3 X 2 X 3H 4KX2MX4 5J4X3MX5 6X4X6 7M X 5 X 6
Receiver Capacity Gallons
12 20
40 60
100
Sq. Ft. Direct Radiation
' 6000 10,500 19,500 . 30,000 45,000
. Lb. Condensate
per Hour
2000
3500 6500
11,000
15,000
Minimum Steam
Pressure
50 ' 40
35 35 30
4hX2X4
6hX2HX5 6X2hX6 6X3X6
6 X3hX6
Low Pressure
12 6000 20 10,000 40 120,000
40 180,000 60 290,000
2000
3500. 4000 6000 9000
Table 70. Centrifugal Return Pumps with Receivers
Size of Pump Discharge
Inches
i in 2
Receiver Capacity Gallons
40 60
100
Sq. Ft. Direct Radiation
12,000
25,500 42,000
Lbs. Condensate
per Hour
4000 8500 14,000
.
H. P. TO
Drive
i
PA
2
Total Head
Ft.
25 50 50
Table 71.
Characteristics of Centrifugal Pumps and Receivers
Delivering Against 15 Lb.
Size
101 102
103 104 105
Sq. Ft! Equivalent
Direct Radiation
Gal. .. per Min.
8000 16,000 26,000 40,000 65,000
ii
22
35
60 90
R. P. M. . Actual H. P.
1725 1725 1725 1140 1140
0.4
0.6 0.8 1.0
1.4
H. P. Motor Supplied
Floor Space
Shipping Weight
SA S^.-xS' 8'
700
% 5' 3"x3' 8"
l 6' 5"x3' 8'
700 750
7' 6"x4' 2"
1050
2
7' 6"x4' 2"
1100
130
i
American Society of Heating and Ventilating Engineers Guide, 1926-27
umetric rate of the flow of condensate to be handled shall be not less than 3.0 for automatic pumps and receivers and 2.0 for non-automatic return pumps. . _
Normal Capacities for Centrifugal Pumps.--Not less than 2 times the maximum rate of flow of the condensation to be handled.
RETURN LINE VACUUM HEATING PUMPS
These may be of the following types: a. Direct acting reciprocating steam driven return line vacuum pumps b. Reciprocating power driven return line vacuum pumps c. Motor driven return line vacuum pumps
High pressure traps should never discharge directly into a vacuum return. An excessive amount of vapor will form due to re-evaporation of a considerable part of the hot condensation. This may cause a very
Fig. 42.
Method of Discharging High-Pressure Apparatus into Low-Pressure
Heating Mains and Vacuum Return Mains through
a Low-Pressure Trap
'.
material reduction in the vacuum maintained by the pump. Fig. 42
shows a method of disposing of the greater part of the vapor of re
evaporation and at the same time lowering the ` temperature of the
condensate.
.
DISPOSAL OF VACUUM PUMP DISCHARGE
The discharge from reciprocating vacuum pumps of either the steam
or power driven type is a mixture of water and air. Means must be pro
vided for releasing the entrained air. This requires water surface area
in either a tank having a large horizontal cross section or a stand pipe
of enough sectional area to permit a low velocity of downward water
flow while the en trained air is escaping to the surface against the "water,
current. For removal of air allow one square foot of horizontal cross
section for each 2100 lb. of water per hour.- A stand pipe with, diameter-
equal-to that of-the pump cylinder is usually sufficient. :
.
Wherever a suitable location may be obtained the freely vented air
"-
131
.
American Society of Heating and Ventilating Engineers Guide, 1926-27
.
separating tank is generally used. The tank must be located high enough so that the pressure produced by the water column in the discharge pipe will be sufficient to overcome that in the low-pressure boiler feed water heater or other point of disposal. Fig. 43 shows the proper arrange ment of vacuum pump, air separating tank and feed water heater.
The air escapes through a vent in the top of the tank and the water
flows by gravity to the feed water heater through the loop seal attached
to the discharge outlet in the tank. If the rate of flow of returns to the
tank exceeds the rate of discharge from the tank the excess overflows
through an opening on the end near the top.
.
OtSCrtPAUASMCP
3L
W MMMM fcfe
TAM
[Lis DM
Fig. 43. Method of Connecting Vacuum Pump, Feed Water Heater and Single Control Hydro-Pneumatic Tank or Air Separating Tank
Where an open tank cannot be located at a height sufficient to provide gravity head to discharge the tank contents against the maximum pres sure in the heater or boiler, the hydro-pneumatic tank is used. A float controlled valve is placed on the air outlet of the separating tank and so arranged that when the water of condensation has not sufficient head to flow by gravity to the point of use, the air will be confined in the upper part of the tank. As the pump continues, to deliver water and air to the tank the pressure within the tank increases until sufficient to discharge the water, thus lowering the water-line and eventually permitting escape of the surplus air through the float controlled air valve. The confined air pressure in the tank plus the gravity head in the tank dis charge pipe must be sufficient to cause flow to the place of disposition. This confined air pressure plus the column of mixed-air and water in the pump discharge to the tank is the total head against which the pump must act. Fig. 43 shows a hydro-pneumatic tank, Figsi 44, 45 and 46 show vacuum pump connections for. several different conditions of service.
132
American Society of Heating and Ventilating Engineers Guide, 1926-27
1 CastIron
J BasePlafe
Boi/er/VerfA/mp andReceiver.
zX 7 k \ rwntio//
Fig.-44. **
Method of Connecting Vacuum Pump and Automatic Boiler-Feed Pump and Receiver
Table 72 gives the sizes of plain or hydro-pneumatic tanks for air separating purposes and also those for storage of returns. In the latter case the tanks are based upon storing the quantities of water which will be discharged during five minutes at the basis of hourly rates given in
the first column.
Vent toAtmosphere Run to Air above Roof* "H
Pump Control Valve
To Orpin tf W unobstructed
Skam toBoilerfeedP/nf Jo Boiler FeedPump#
Steam Control Receiving Tank
Connection from Low PressureSfeam Main
toStpam Gage
Globe Valve
Discharge toBoilers-
Discharge from Pump 'to Tank
Steam to _ ^ Vacuum Pump
Globe Valve
Lubricator 4Globe Valve
Globe*' Valve
Lubricator y j Globe Valve'
BoilerFeedPump
CastIron Base Plate ^ and Drip Pan
Globe Valve .
. T^-Sy-poss-
Globe Valve "and Union
Vacuum Pump
CastIron BasePlater and Drip Pan
/ GateVatvey "SuctionStrainer FloorLine
Lift Filling
foSewer
---
Fig. 45.
Method of Connecting Vacuum Pump, Boiler-Feed Pump and Steam-Control Receiving Tank
133
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 72. Size of Plain and Hydro-Pneumatic Tanks
Compensation Lb.
per Hr.
4000 6000 8000
10,000
16,000 24,000
34,000
45,000
60,000
Sizes of Plain and Hydro-Pneumatic Tanks
For Air Separator only
Diameter In.
Length In.
For Air Separator and Water Storage
Diameter In.
Length In.
12 24 24 36
12 36 24 48
18 30 24 72
18 48 30 48
24 48 30 60
30 48 36 60
24 72 36 72
36 60 36 . 96
36 72 42 72
42 60 42 96
36 96
42
72 .
48
72
42 96 48 96
LIFT FITTINGS
Lift fittings are special devices used in pairs at points in a vacuum heating system where condensation is to be lifted to a higher level. The condensation is lifted in "slugs" on the air lift principles: the slugs being obtained by the use of a comparatively small diameter vertical return with its lower end submerged in the well below the level of the horizontal return which it drains. The lower lift fitting allows the con densation to accumulate in the well below the inlet connection until it seals the vertical passage, thus causing a slight reduction of the vacuum on the inlet side and forcing the water from the well through the vertical lift pipe to the higher level. The upper lift fitting allows the condensa tion to flow into the horizontal return without falling back into the lifting line.
Lifts of 6 ft. or over should be made in steps rather than all in one rise.
Steps should be used instead of "Drag" lifts through long upwardly
inclined pipes. In any case the pipes between the lifts must grade down
ward toward the pump.
When these fittings are required, the usual places to install them, is
with a suction strainer at the pump, and when step-ups occur, in the
return line.
~
STEAM DRIVEN RECIPROCATING RETURN LINE VACUUM PUMPS
Volumetric displacement of the water cylinders should be 8 to 10 times the volumetric rate of flow of the condensate to be handled.
Piston Speeds.--Not more than 20 times the square root of the number of inches in the length of stroke.
134
American Society of Heating and Ventilating Engineers Guide, 1926-27
Steam driven pumps can be economically used with steam pressures of 15 lb. or over and where the exhaust steam can be completely utilized.
Where the supply of exhaust steam from engines or other sources is continuously in excess of that necessary to supply the heating system the electric driven pump is generally the most efficient and is also pre ferable when the steam pressure is too low to operate a steam driven
pump.
Table 73. Direct Double Acting Steam Driven Reciprocating Vacuum Pumps
Diameter in Inches
Water Cylinder
Condensation
Lb. per Hr.
for Pumps
with
,
Stroke Equal
. to Bore
Direct Cast Iron Radiation
Served
Pipe Sizes
Steam In.
Suction In.
Discharge In.
3
510
1700
K IK
h
4
1047
3490
K IK
i
5
1830
6100
K2
iK
6
2890
9633
K 2K
iK
7
4250
14,166
U 2K-3K 134-2
8
5920
19,733 - K 3-3^
2-
9
7980
26,600
U 33^4
2
10
10,350
34,500
l
4-4K
2K
12
16,300
54,333
l
4K-S
2K
14
24,000
80,000 IK 5-6
3
16'
33,500
111,666
iK 6-7
3K
18
45,000
150,000 iK 7
4
20
58,500
195,000 i K 7-8
4K
22
74,300
247,666 2
8
4K
24
92,300
317,666 2
8-10
5'
26
112,800
376,000 2K 10
6
28
135,800
452,666 2K 12
6
30
161,300
537,666 2K 12
6.
32
189,600
632,000 3 14'
7
34
221,000
736,333 3 14
7
36
254,000
846,666 3 14
8
'.
Pumps Having Unequal
Stroke and Bore
Stroke' Bore
Capacity Factor
2.50 2.25 2.00 1.90 1.80 1.75 1.70 1.67 1.60 1.50 1.40 1.33
1.30 1.25 1.20 1.10 1.00 0.90 0.80 0.75 0.70 0.67 0.60
0.50
1.58 1.48
1.38 1.34 1.31 1.29 1.27 1.25 1.23 1.10 1.15 1.13 1.12
1.10 1.08 1.04 1.00 0.96 0.91 0.89 0.87 0.85 0.82
0.78
,
The capacities given in Table 73 are for pumps having water cylinder with the length of stroke equal to the diameter of the water piston.
The capacities for pumps'of a greater or less length of stroke may be found by use of the last two columns in this table as follows:
Divide the stroke by the piston diameter and find the corresponding ratio in the column headed stroke/bore. The capacity factor opposite this in the last column is then multiplied by the capacity given in the table to give the capacity of the pump in question.
Proportioning of Steam End of Reciprocating Vacuum Pumps
In proportioning the steam cylinder of the pump the following formula
will give results which are safe to use.
_
135
American Society of Heating and Ventilating' Engineers Guide, 1926-27 From which we have
As = A,, X
+ pd ) X 3
in which
~TPb
Ab = Area of steam piston in square inches.
Av = Area of water piston in square inches.
Pb = Boiler pressure in pounds per square inch.
Pd = Discharge pressure in pounds per square inch.
V = Vacuum at pump expressed in inches of mercury.
V = Approximate vacuum in pounds per square inch (2 in. mercury = approxi-
2 mately 1 lb. per sq .in.)
-
Fig. 46. Method of Making Connection to Steam-Operated Vacuum Pump
In no case should the head against the discharge of reciprocating pumps
exceed 15 lb. unless the pump stroke exceeds the bore and thus reduces
the bad effect of clearance.
`
Where the pressure on the heater, boiler, etc., varies materially from time to time but in general is near the minimum, a substantial saving in
energy may be obtained by using a hydro-pneumatic tank instead of a plain tank set at a higher elevation to overcome the peak pressure in the boiler or heater. The use of a plain tank keeps the pump operating against the maximum head, where the hydro-pneumatic tank set lower
operates as a plain tank whenever the gravity head in the tank is sufficient to cause flow from its elevation, and employs the combination of air pres sure and gravity head, with air vent closed, only at times of peak load. Only then is the air pressure load added to the pump discharge.
136
American Society of Heating and Ventilating Engineers Guide, 1926-27
Where the head on the delivery side of steam driven pumps exceeds 15 lb. it is good practice to deliver the condensation to a vented receiver
located close to the level of the vacuum pump outlet. This receiver should be connected to a separate steam or power driven water pump capable of delivering against the maximum head and controlled'by a throttle valve, actuated by the water line in the receiving tank.
MOTOR DRIVEN RETURN LINE VACUUM PUMPS
Reciprocating Vacuum Pumps.--The displacement and piston speeds should be the same as for the water end of reciprocating steam driven return line vacuum heating pumps.
The type of drive between motor and pump may be chain, gear or belt. Other than Reciprocating Pumps.--May be of the centrifugal or rotary type with receivers and generally of one of the following arrangements.
a. Ooe pumping unit and motor for handling both air and condensate.
b. One pumping unit and motor for handling air and a separate pumping unit and
motor for handling condensate.
'
c. One pumping unit and motor for handling condensate with an air ejector operated by a recirculated portion of the condensate for handling the air.
d. One pumping unit for handling condensate and another for handling the air, both
operated by one motor.
The receiving tank capacity should be stated in gallons, and in case of
automatically controlled units should be the capacity of the tank in
gallons between the high and low water levels in this tank, as determined
by the water-line control.
'
The receiving tank may be placed either on the suction side or on the discharge side of the pump. When placed on the suction side of the pump the capacity of the tank may be used to retain the condensation and to take care of the fluctuations between the rate of condensate
returned and the rate of the pump delivery.
The suggested receiving tank capacities (as previously defined) for continuously operated and for automatically controlled units should be as follows:
Table 74. Receiver Tank Capacities
Sq. Ft. Equivalent Direct Cast Iron
Radiation Surface
Total Receiver Tank Capacity in Gallons
Receiver Tank Capacity between High and Low Water Limits where Automatic Water Line
- Control is Used.
8,000 16,000 26,000 40,000 65,000 100,000
28 33 40 49 63 80
20 24 29 35 47 63
The air capacities recommended, referred to cubic feet of air per 1000 sq. ft. of equivalent cast iron direct radiation, may be assumed on a decreasing ratio as the system increases in capacity of equivalent square feet of radiation, in accordance with the following Table 75. It should be noted that while water capacities of pumps to be added for fan blast
137
.
American Society of Heating and Ventilating Engineers Guide, 1926-27
I
F ig . 47. V o lu m e of A ir th r o u g h O r if ic e s u n d e r V a c u u m
I
138
American Society of Heating and Ventilating Engineers Guide, 1926-27
heaters are to be based upon their equivalent in direct radiation the air capacities for this class of radiation may be the same as for direct radiation.
Table 75. Aik Capacities
Sq. Ft. Direct Equivalent Radiation Surface
8,000 16,000 26,000 40,000 65,000 100,000 150,000 250,000
Diameter Orifice Vac. 10' .
A* A' Vt" A" Vs" W A" Three W
Air Capacity Cu. Ft. per Min.
5 9 15 19 34 60 80 180
The air capacity of the pump should be measured at a point in the main vacuum return line just ahead of the vacuum strainer when the pump is operating under the vacuum specified at the pump suction and when handling the quantity of condensate specified at a temperaturenot exceeding 180 deg. fahr.
Air test may be made with water at lower temperatures. This deter mination should be made by means of a standard test orifice located in an inlet connection to the pump suction and consisting of a plate j/g of an inch thick with a reamed hole having sharp edges and of a diameter corresponding to the capacity of the pump.
The accompanying Fig. 47 may be used to give the quantity of air handled, corresponding to several sizes of orifices and different degrees of vacuum met with in practice.
The water capacity of the pump when operating against 8 in. of mer cury vacuum should be not less than three-tenths (0.3) of a pound of water per hour pier square foot of equivalent cast iron direct radiation based upon condensation at a temperature of not over 180 deg. fahr. when the pump is delivering water against a specified gage pressure at the water discharge of the pump. For pumps handling both air and water the above water capacity must be delivered, when the pump is main taining a vacuum of 8 in. of mercury and handling air through a standard orifice corresponding to the air capacity of the pump as herein specified.
Commercial pumps are built for 10, 20, 30 and 40 lb. gage pressure at the water discharge of the pump.
Table 76.
Sizes, Speeds, Horse Powers and Capacities Motor Driven Condensation Return Pumps
Rating in Sq. Ft......................... Discharge Pressure, Lb.______ Gallons per Min.......................... H. P. Motor................................. R. P. M. 60 Cycle and D. C... R. P. M. 25 Cycle...,................. Shipping Weight., ....................
0 to 2000 10 20 33
Vs 52
1700 1700 1440 1440 330 350
2000-4000
10 20 66
Vs %
1700 1700 1440 1440 350 370
4000-8000 10 20 10 10
Vs V
1700 1700 1440 1440 420 440
8000-16000 10 -20 20 20
Vs 52
1700 1700 1440 1440 535 565
139 v/
American Society of Heating and Ventilating Engineers Guide, 1926-27
No additional allowance need be made for covered mains or risers, but exposed mains or risers used as heating surfaces should be included in calculating the equivalent square feet of direct radiation.
PUMP SPECIFICATIONS
Reciprocating and power driven pumps should be specified as to make, size, water and steam working pressures, piston speed, temperature of water to be handled, electric motor characteristics and the trade standard, required in accordance with the manufacturers' adoptions, copy of which is appended to this section of the code for reference.
Table 77. Motor Driven Condensation Pump Capacities for Delivering Against Various Pressures
Radia tion IN Sq. Ft. of Direct Radia
tion
Minimum Gallons per Min.
Maximum Boiler
Pressure Lb.
Motor H. P.
Sug
gested Size of Piping Inches
. 4000 4000 4000
6-8 6-8 6-8
10
15-40 50-60
Xi Xi Xi
6000 6000 6000
9-12 9-12 9-12
10
15-40 50-60
X
X
1
IX IX IX
8000 8000 8000 8000
10,000 10,000 10,000 10,000 10,000
12-16 12-16 12-16 12-16
15-20 15-20 15-20 15-20 15-20
10
15
20
30-60
X
1
IX
10
IS 20-30 30-40 50-60
X X
1
IX
2
IX IX IX IX
IX iX iX iX iX
Radia
tion in Sq. Ft. of
Direct Radia
tion
Minimum Gallons per Min.
Maximum Boiler
Pressure Lb.
Motor H. P.
15,000 25-30 15,000 25-30 15,000 25-30 15,000 25-30 15,000 25-30 20,000 30-40 20,000 30-40 20,000 30-40 20,000 30-40 20,000 30-40 25,000 40-50 25,000 40-50 25,000 40-50 25,000 40-50 25,000 40-50 30,000 . 50-60 30,000 50-60 30,000 50-60 30,000 50-60
10
15 20-30 40 50-60
10
15
20
30-40 50-60
10
15
20
30-40 50-60
10
15
20
30-60
X i
ix
2.
3 X
1
2
3 5
1
ix
2
3 5
1
ix
2
5
Sug gested Size of Piping Inched
2
2
2
2
2
2
2
2
2
2
2X 2X 2X 2X 2X 2X 2X 2X 2X
The kind of drive should be specified for power driven pumps.
Centrifugal and Rotary pumps should be specified as to make, type,
capacity temperature of water to be handled, speed and motor charac
teristics including:
'
1. Name of motor manufacturer 2. Manufacturers rated Horse Power 3. The maximum temperature rise for any part of the motor above the temperature of the surrounding air 4. Full Speed in R. P. M. 5. Current characteristics
6. Whether the motor is open, semi-enclosed or fully enclosed.
The following should also be included in the specifications, total head to be pumped against including suction lift friction head, velocity head
140
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 78. One Pump One Motor Return Line System
Size
A
B
C D E F G H
Sq. Ft. - Direct Equivalent Radiation
Surface
Diameter Orifice
Vacuum 10 IN.
Air Capacity
Cu. Ft. per Min-
8000 16,000 26,000 40.000 65.000 100,000 150.000 250.000
9-64 3-16 1-4 9-32 3-8 1-2 9-16 Three 1-2
6 11 19 25 42 75 90 180
Water
'
Capacity
Gals,
per Min. 10 Lb. Pres sure 180 F.
ii
22 35 60 90 140 200 400
Actual H. P.
0.9 1.4 2.0 2.8 3.9 9.0 10.0 10.0
R. P. M.
H. P. of Motor
1800 1800 1800 1200 1200 1200
900 720
i
IX '2 3 5 10 10 20
Table 79. Two Pump One Motor Return Line System Vacuum Pumps
Capacity Sq. Ft.
of Direct Radiation
6000 6000 8000 8000 12,000 12,000 18,000 18,000 30,000 30,000
Capacity G. P. M.
9 9 12 12 18 18 27 27 45 45
Pressurb at Pump
10 15 10 15 10 15 10 15 10 15
Motor H. P.
X
l l IX 1 IX iX 2 2 3
Table 80. Two Pump Two Motor Return Line System Vacuum Pump
i Motor H. P.
Capacity Sq. Ft. of Capacity G. P- M. Pressure at Pump
Direct Radiation]
6000 6000 . 8000 8000
12,000
12,000 18,000 18,000 25,000 25.000 30;000 30.000
9 9 12 12 18 18 27
27
38 38 45 45
x10 X X
15 X
10 X
15 X
10 15 10 15
X
X.
X X
X 1
1 -2
10 . l 15 l
IX 2
10 l 15 l
IX 2,,
and head against which the pump must discharge. The vacuum under which return pumps-are required to operate and as to whether two or more units are to operate in parallel or separately.
{
American Society of Heating and Ventilating Engineers Guide, 1926-27 INSTALLATION DATA
All pumps should be set on substantial foundations and be provided with heavy cast iron sub-bases, securely anchored to foundation and pro vided with drip ring with drain properly connected to sump or sewer.
The exhaust from steam driven pumps supplying steam for heating purposes should be taken through an efficient oil separator before entering any part of the heating system or other apparatus.
A full set of the manufacturers working drawings should be used in connection with each installation.
Motors should be not less than Vl greater in horsepower than that actually required to drive the pump under full load conditions.
142
Chapter X
WARM-AIR FURNACE HEATING*
IN this chapter of The Guide consideration will be given to the design of gravity circulating warm-air heating systems. For fan circulating systems see the Chapter XIX on Design and Construction of Air Ducts. Complete engineering data, including the procedure to be followed in designing a typical system, are presented in the first part of the chapter, while the last part of the chapter presents a Standard Code Regulating the Installation of Warm-Air Heating Furnaces in Residences, approved by the National Warm Air Heating and Ventilating Association, American Society of Heating and Ventilating Engineers, National Association Sheet Metal Contractors, Western Warm Air Furnace, and Supply Association, and the Midland Club, as a workable Code for furnacemen.
DEFINITIONS
. In general, warm-air furnace heating plants consist of a fuel burning
furnace or heater enclosed in a casing of sheet metal or brick, which is
placed in the basement of the building. The heated air, taken from the
top or sides near the top of the furnace casing, is distributed to the
various rooms of the building through sheet metal warm-air pipes. The
warm-air pipes in the basement are known as leaders, and the vertical
warm-air pipes which are run in the inside partitions of the building are
called stacks. The heated air is finally discharged into the rooms through
registers which are set in register boxes placed either in the floor or in
the side wall, usually at or near the baseboard.
.
The air supply to the furnace may be taken (1) entirely from inside the building through one or more recirculating ducts, or the air supply may be taken (2) entirely from outside the- building, in which case no air is recirculated. Sometimes a combination of the inside and outside
air supply system is employed.
.
Furnace heating plants may be (1) of the gravity circulating type in which the motive head producing flow depends upon the difference in weight between the heated air leaving the casing and the cooler air entering the bottom of the casing, or (2) of the fan circulating type in which a fan may supply all or part of the motive head producing flow. In most house installations, the former type of system is in general-use.
, *Material for this section was prepared especially for The Guide by Arthur C. Willard, Professor of Heating and'Ventilation and Head of the Department of Mechanical.Engineering, University of Illinois,
Urbana, Illinois.
___
All figures and much of the engineering data which follow are from Bulletin No. 141, "Warm Air Furnaces and Heating Systems," Part II, by Professors A. C. Willard, A. P. Kratz and V. S. Day, Engineering Experi
ment Station, University of Illinois.
143
American Society of Heating and Ventilating Engineers Guide, 1926-27
DESIGNING A FURNACE HEATING SYSTEM.
The design of a furnace heating system involves the determination of the following items:
a. Heat loss in B.t.u. from each room in the building.
b. Area and diameter in inches of warm-air pipes in basement known as leaders.
c. Area and dimensions in inches of vertical pipes known as wall stacks. ' d. Free and gross area and dimensions in inches of warm-air registers.
e. Area and dimensions of (1) recirculating or (2) outside air supply ducts in inches. There may be one or more of each.
/. Free and gross area and dimensions in inches of recirculating registers. g. Size of furnace necessary to supply the warm air required to overcome the heat loss from the building. This "size" should include square inches of leader pipe area which furnace must supply. It is also desirable to call for a minimum bottom fire-pot diameter in inches, which is the nominal grate diameter.
h. Area and dimensions in inches of chimney lining and smoke pipe. If an unlined
chimney is to be used, that fact should be made clear.
HEAT LOSSES FROM BUILDING
The heat which will be required for each room in the building depends on (1) the heat transmission losses through walls and glass as well as through floors and ceilings when the latter two are next to unheated spaces, and (2) the infiltration of cold air through the cracks around outside windows and doors. Calculations for the heat required in B.t.u. per hour should be made as indicated in Chapter I, Heat Losses from Buildings.
LEADER SIZES
In a gravity circulating warm-air furnace system the size of the
leader to a given room depends on the temperature of the warm-air
entering the room at the register. A reasonable air temperature at the
registers must, therefore, be agreed upon before the system can be
designed. The National Warm Air Heating and Ventilating Association
has approved an air temperature of 175 deg. fahr. at the registers as
satisfactory. At this temperature, the heat carrying capacity (heat
available above 70 deg. fahr.) per sq. in. of leader pipe per hour for first,
second or third floors is shown by Fig. 48 at 175 deg. fahr. to be 105,
170 and 208 B.t.u. respectively. For average calculations, the values
110, 166 and 200 will simplify the work and may be satisfactorily sub
stituted for these heat carrying capacities. If H represents the total
heat to be supplied any room, the resulting equations are:
.
-
H
Leader areas for first floor, square inches =
= approximately 0.009/7
(1)
Leader areas for second floor, square inches = jgg = approximately 0.006/7 (2)
H '
Leader areas for third floor, square inches = ^qq = approximately 0.005/7 144
(3)
American Society of Heating and Ventilating Engineers Guide, 1926-27
Fig. 48.
Value of Square Inch of Leader Pipe Area for First, Second, and . Third Floors
In designing for a lower warm-air register temperature, say 160 deg. fahr., the factors 110, 166 and 200 become 80, 140 and 166 (Fig. 48 at 160 deg. fahr.), and the resulting equations.are:
Leader areas for first floor, square inches = -- = approximately 0.012Z7 . (4)
H
Leader areas for second floor, square inches =
~ approximately 0.007# (5)
Leader areas for third floor, square inches = Jgg = approximately 0.006/7 (6)
These equations are applicable to straight leaders from 6 to 8 ft. in
length. Longer leaders must be very thoroughly covered or else the
vertical stacks must be increased in area as discussed under wall stacks.
If some provision is not made for these longer leaders, the air tempera
ture may be much lower than anticipated and the room will not be
properly heated.
While Fig. 48 takes care of the drop of temperature in straight leaders
up to 8 ft. in length connected to stacks having about 75 per cent the
145 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
area of the leader, the designer must make allowances for all other conditions. The temperature drop in leaders of various lengths at three different register temperatures is shown in Fig. 49.
Leader sizes should in general be,not less than obtained by equations (I) to (3) nor should leaders less than 8 in. in diameter be used. lt|is not considered good commercial practice to specify diameters except
American Society of Heating and Ventilating Engineers Guide, 1926-27
straight, the ratio of stack area to leader area should be greater than 70 per cent in order to offset the greater temperature losses (Fig. 49) in the longer leader, fn gravity circulating systems, this stack to leader
I
Fig. 49.
Loss in Temperature in 8 in. Leader Pipe of Various Lengths at Different Register Temperatures
Note.--Pipe bare, bright tin except asbestos strips for joints.
in whole inches, although there is no real reason for not using half inches if necessary. The tops of leaders should be at the same elevation as they leave the furnace-bonnet, and from this point there should be a uniform up-grade of 1 in. per foot of run in all cases. Leaders over 12 ft. in length are to be avoided or receive very special attention.
WALL STACKS
The wall stack for an upper floor should be made not less than 70 per cent of the area of the leader which has been selected from Fig. 48. So long as the leader is short and straight as was the case for Fig. 48, such a practice is probably justified since the loss (Fig. 50) in capacity occasioned by the smaller stack is not very serious for ratios above 70 per cent. For leaders over 8 ft. in length or for leaders which are not
146
1
* `5
i
Fig. 50.
Relative Heating Effect of Stacks at Constant Register, Air Temperature
area ratio is a very important consideration. Specific data for a great variety of cases are presented in Figs. 51 and 52 and the designer should check his stack to leader combinations with the nearest comparable case as shown in these figures. Any second floor stack supplying heat
147
American Society of Heating and Ventilating Engineers Guide, 1926-27 to a room whose heat loss is 9000 B.t.u. or above. (See Figs. 51 and 52 which show that high temperatures are necessary if rooms of more than 9000 B.t.u. requirement are heated by stacks in 4 in. studding), should be run within 6 in. studded walls or should have multiple stacks. Stack
Oi tQil <fcd Uz XH
DO >2< aOs
ti.
o til
&
(ub. W o
z H (<d X
o
American Society of Heating and Ventilating Engineers Guide, 1926-27
WARM-AIR REGISTERS
The registers used for discharging warm-air into the rooms should have
free or net area not less than the area of the leader in the Same run of
pjping
__ f_____________ nLn..1yl Ua
Innpf 7A >vTr r>onI- s\( flia rrrnco oroo
as
0a3
<
03 >1
auz
ob
a
<
GO
tPOn s
<
> Co1*S.
&
o
z
%M E
o
c.
sections, wherever possible, should be changed from the thin rectangular to the more nearly square shape. Stack heads should have upper end curved to provide easy flow of warm air to the room. Splitters in the upper end of the duct increase the air discharge.
148 *
4
of the register. No upper floor register should be wider horizontally than the wall stack', and it should be placed either in the baseboard or side wall, and not in the floor. First floor registers may be of the base-
149 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
board or floor type with the former location preferred. No first floor register should require a register box more than 14 in. wide, although it may be longer than 14 in.
AIR SUPPLY DUCTS
Ducts for recirculating air from the house or for bringing in outside air should be as short and direct as possible. The areas of such ducts should never be less than the combined areas of all warm-air leaders and ducts of the recirculating type may be made even larger than the total leader area. The importance of running the air supply ducts as direct
as possible without sharp elbows is shown by the comparative performance on the same plant of two ducts (Fig. 53), as presented in Table 81.
In both cases a very wide low shoe was used for connecting the ducts to. the back of the furnace casing. The top of this shoe should never enter the casing above the level of the grate in the furnace, and to accomplish this the shoe must be wide. The superior performance of
Table 81. Heat Available at Registers for Two Types of Recirculating Ducts
Register Air Temperature
Deg. .Fahr.
Heat Available at Registers. Above 70 Deg. Fahr. B.t.u. per Hr.
Rectangular Duct
Round Duct
Per Cent Increase for Round Duct
130 (Low) 160 (Moderate) 190 (High)
47,000 81,000 120,000
150
54,000 94,000 138,000
15.0 16.0 15.0
American Society of Heating and Ventilating Engineers Guide, 1926-27
the round duct using two 45 deg. instead of two 90 deg. elbows is very apparent. Values given in Fig. 48 are based on such a duct. Outside duct connections, if used, should be made to a window frame the full area of duct and such window should be in a wall exposed to prevailing winter winds. The inside type of recirculating duct or ducts is always preferred for residence installations. -
RECIRCULATING REGISTERS
The register through which the air in the building is returned to the furnace should always be placed in a central position in the first floor, usually in the main hall if one exists. Air from the upper floors must have free access to this register through the stairway of the building. Sometimes more than one return air register is found desirable, and such multiple returns are often justified. The recirculating registers should have a free area at least equal to the duct to which they connect, and their free area should never be less than 50 per cent of their gross area.
FURNACE
The size of furnace should, of course, be such as will provide the necessary air heating capacity, usually expressed in square inches of leader pipe area, and at the same time provide a grate of the proper area to burn the necessary fuel at a reasonable'chimney draft. The total leader pipe area required is easily obtained by finding the sum of the leader pipe areas as already designated.
The grate area will depend on several factors of which four are very important. First of all, the air temperature at the register for which the plant has been designed must be determined. Usually, this tempera ture is taken as 175 deg. fahr. Second in importance is the combustion rate, which must always correspond with the register air temperature, as is shown by reference to a set of typical furnace performance curves (Fig. 54) for a cast-iron circular radiator furnace with a 23-in. diameter grate and 50-in. diameter casing. The conditions shown on these curves which seem to approximate nearest to the 175 deg. register warm-air temperature are--combustion rate 7 lb., warm-air register temperature 173 deg., efficiency of the furnace 58.5 per cent. The third factor is efficiency, which, in turn, is a function of the combustion rate varying with it as shown by the efficiency curve of Fig. 54. The fourth factor is the heat value per pound of fuel burned, which was 12,790 B.t.u., but is not shown on the curves since it was constant for all combustion rates.
From the relation existing between these factors it is found (Fig. 54) that the capacity of the furnace under test is 147,750 B.t.u. per hour for the total grate, which gives the capacity at the furnace bonnet per square foot of grate as 51,300 B.t.u. and per square inch of grate as 356 B.t.u. per hour.
Suppose it is desired to select a furnace to deliver air to the rooms at a register temperature approximating 160 deg! rather than 175 deg. Referring to the curves, the relation is--combustion rate 5.5 lb., register warm air temperature 160 deg. and efficiency of the furnace 62 per cent.
151
American Society of Heating and Ventilating Engineers Guide, 1926-27
Under this condition the capacity of the furnace at the furnace bonnet per square foot of grate area is 43,300 B.t.u. per hour, and per square inch of grate it is 300 B.t.u. per hour. From these performance values, the grate area for any plant requirement will be, (allowing 20 per cent heat loss between furnace and registers):
' Grate area (175 deg. register temperature), square inches --1 oO2DH = 0.0034/7* (7)
Grate Area (160 deg.), square inches =
= 0.0040/7* ,
(8)
a/S
-------1------ 1------
Draff /a
1------ 1------
inches
1------ i------
water*
ZZOOOO a/o
^ZOO 000
zzo\
t
\
\/SO 000
160 000
X
Nj MO000 V
X^JZOOOO
fs/ooooo
80000
Re$ vster Ten7pej'atore-
"Cc7pa :/ty
,80^
i60\
f
/40%
rir
Ore. ie i a7s/n9 Dt
iefej>23 fn_ 'ter SO /n
'I
*
70 $
o"s 'icfiaencif
60S
so*
46
I/O tz Stf
Comfiust/on Rate in it per stf ft of Orateper fir'
54.Fig.
Typical Performance Curves for a Warm Air Furnace and Installation
' in a Three-Story Ten Leader Plant, Operating on Recirculated Air
As a check upon the method of selection by performance curves, the
method of selecting the furnace which has been in general use is as
follows:
Let H = B.t.u. beat loss from the entire house per hour = summation of all room losses Hi + H2 + etc. + the B.t.u. necessary to heat the fresh air if any, at intake. This fresh air loss in B.t.u. will be approximately 1.27 times the cubic feet of air admitted through the intake per hour on a zero day. For systems which recirculate all the air this value will be zero. For systems which, have a fresh air intake, controlled by damper, this value might well be approximated, since this loss will probably be reduced to a minimum on a zero day. Assume for such cases, that the building loss is increased by 25 per cent, and that there is the usual 20 per cent loss between furnace and registers.
152
American Society of Heating and Ventilating Engineers Guide, 1926-27
Let E = efficiency of the furnace
/ = fuel value of the coal in B.t.u. per pound
p = pounds of coal burned per square foot of grate surface per hour and
the formula then becomes
'
Grate area, square inches
1.2 X 144 H
Efp
if all inside air
(9)
For coal having a heat value of 12,000 B.t.u., a furnace having 60 per cent efficiency and 6 lb. of coal burned per sq. ft. of grate per hour, this becomes:
Grate area, square inches = o"~60 X 12 000 X 6 for a lnslde air
(10)
The air temperature at the registers corresponding to the conditions covered by equation (10) would be approximately 160 deg. fahr. and for 175 deg. fahr. and 12,000 B.t.u. the combustion rate should be at least 7.5 lb. with an efficiency of about 57 per cent, using curves of Fig. 54 as a guide.
CHIMNEYS
The construction, location, height and area of the chimney to which the warm-air furnace is connected affect the operation of the entire heating system. Most residence chimneys are built of brick and may be either lined or unlined, but in either case the walls must be air tight and there should be only one smoke opening into the chimney. Cleanout, if pro vided, must be absolutely air tight when closed.
The walls of brick chimneys shall be not less than 3% in. thick (width of a standard size brick) and shall be lined with fire-clay flue lining. Fire-clay flue linings shall be manufactured .from suitable refractory clay, either natural or compounded, and shall be adapted to withstand high temperatures and the action of flue gases. They shall be of standard commercial thickness but not less than % in. All fire-clay flue linings shall meet the standard specification of the Eastern Clay Products Association. The flue sections shall be set in special mortar, and shall have the joints struck smooth on the inside. The masonry shall be built around each section of lining as it is placed, and all spaces between masonry and linings shall be completely filled with mortar. No broken flue lining shall be used. Flue linings shall start at least 4 in. below the bottom of smoke-pipe intakes of flues, and shall be continuous the entire heights of the flues and project at least 4 in. above chimney top to allow for a 2 in. projection of lining. The wash or splay shall be formed of a rich cement mortar. To improve the draft the wash surface should be concave wherever practical.
Flue lining may be omitted in brick chimneys, provided the walls of the chimneys are not less than 8 in. thick, and that the inner course shall be a refractory clay brick. All brick work shall be laid in spread mortar, with all joints push-filled. Exposed joints both inside and outside shall be struck smooth. No plaster lining shall be permitted.
Chimneys shall extend at least 3 ft. above flat roofs and 2 ft. above the ridges of peak roofs when such flat roofs or peaks are within 30 ft.
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American Society of Heating and Ventilating Engineers Guide, 1926-27.
of the chimney. The chimney shall be high enough so that the wind from any direction shall not strike the top of the chimney from an angle above the horizontal. The chimney shall be properly capped with stone, terra cotta, concrete, cast-iron, or other approved material; but no such cap or coping shall decrease the Hue area.
The size or area of flue lining or of brick flue depends on height of chimney and capacity of heating system. For chimneys not less than 35 ft. in height above grate line, the net internal dimensions of/tlining should be at least 7 x 11)4 in. for a total leader pipe area up to 790 sq. in. Above 790 and up to 1000 sq. in. of leader pipe area the lining should be at least 11J4 x 1134 in. inside. In case of brick flues not less than 35 ft. in height with no linings, the internal dimensions should be
. . American Society of Heating and Ventilating Engineers Guide, 1926-27
If provision shall be made for certain outside air circulation, then increase the building heat loss by, say 25 per cent and obtain by equation (7) a 27-in. grate and by equations (8) and (10) a 29-in. grate.
Summary of Data Applied to Warm Air Research Residence
Rooms
From
Chapter I on
Heat Losses from
Buildings B.t.u.
Leader Area
- Sq. In.
Heat Losses
H
Stack Area Sq. In.
0.7 X LA
Leader Diameter
Inches
Stack
Size Net
Register Size Gross
First Floor Living.............
Dining............ Breakfast...... Kitchen.......... Sun.................. Hall and stair Second Floor
Owners........... S. W. Bed___ Bath...... ......... N. Bed........... Third Floor
E. Bed.......... W. Bed..........
17250 6810 2300 9210
25710 12570
15030 9800 2450
14800
8220 8220
hi
O uh t
II
61 21 83 230 113
= 0.00677 90 59 15 89
= 0.00577 41 41
63 41 10 62
29 29
14 9
8 11 or 12 Two 12
12
14 X 18 8 X 12 8 X 10
12 X 14 Two 12 X 14
12 X 14
11 or 12 5 X 12 9 zy2 x 12 8 3 X 10
11 or 12 5 X 12
12 X 14 8 X 12 8 X 10
12 X 14
8 3 X 10 8 .3X10
'8 X 10 8 X 10
at least 8 x 12 in. up to 790 sq. in. of leader area, and at least 12 x 12 in. ' for leader capacities up to 1000 sq. in. Chimneys under 35 ft. in height are often unsatisfactory in operation and hence should be avoided.
TYPICAL EXAMPLE
The application of the preceding data to an actual example may be of assistance to the designer. Figs. 55, 56, 57, 58 and 59,* represent the plans of the Warm Air Research Residence of the National Warm Air Heating and Ventilating Association recently erected at the University of Illinois.
Assuming all air recirculated, the minimum furnace for the plant
will be:
,
Grate Area = 0.0034 X 132,370 = 450 sq. in. = 24 in. diam. at 175 deg. register temperature. (7)
Grate Area = 0.0040 X 132,370 = 530 sq. in. = 26 in. diam. at 160 deg. register temperature. (8)
(10)
- *Plans used with permission and bath room on third floor not heated at present.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
'
American Society of Heating and Ventilating Engineers Guide, 1926-27
Fig. 57. First Floor Plan
STANDARD CODE REGULATING THE INSTALLATION OF WARM AIR FURNACES IN RESIDENCES*
THIRD EDITION . June 1, 1924
.
This Code is approved and issued by authority of the Notional Warm Air Healing & Ventilating Association, The American Society of Heatinc a Ventilating Engineers. National Association Sheet Metal Contractors, Western Warm Air Furnace and Supply Association and The'Midland Club.
ARTICLE 1.--Meaning of the Term "Warm Air Furnace Heating Plant"
Warm air furnace heating plants, to which this code refers, shall consist of one or more warm air furnaces, enclosed within casings, together with necessary appurtenances thereto, consisting of warm air pipes and fittings, cold air or recirculating pipes, boxes and fittings, smoke pipes and fittings, registers, borders and face plates, the same being intended for heating buildings in which they may be installed.
ARTICLE 2.--Provisions to be made in Building under Construction for Reception of Warm Air Furnace Heating Plants
Section 1. a The following provisions shall be made by the owner or building con
tractor, in any building wherein a warm air heating plant is to be installed.
.
b Where warm air register boxes, heads, pipes, or stacks are to be installed, joists shall be set not less than sixteen inches (16") on centers and shall be butted and not lapped. Studding shall set directly over and under joists, leaving a space of notr'less than fourteen inches (14") between studs and joists. Wherever joists are cut, headers must be put in to support joists.
c All first story single or sub-floors shall be continuous.' In all houses having studded exterior walls, these floors shall be extended to the outside sheathing and all spaces between studding shall be closed at the attic line.
-Vo/e 1.--It is strongly recommended that the attic be tightly floored to reduce heat losses.
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American Society 0/ Heating and Ventilating Engineers Guide, 1926-27
d All partition walls (or sections of these walls) in which heat stacks to second floor rooms are to be installed, shall be built of six-inch (6") studding to second story floor joists.
Chimneys
Section 2. a The owner shall provide a chimney for the furnace constructed in a
manner to comply with the following specifications.
'`
b The chimney must be absolutely smoke tight throughout its entire length, and must extend at least three feet (3') above a flat roof or two feet above the ridges of peak roofs.
c If built of a single thickness of brick or of cement blocks, it shall be lined through out its entire length with fire-clay flue lining, having not less than three-fourths inch (%") thickness. Flue lining to be laid in mortar and made air tight.
d The furnace flue must have no other opening for attaching any fireplace, furnace,. stove, range, water heater, gas or ventilating connection.
e If necessary to offset the flue, it must be done in such a manner as not to reduce the cross sectional area nor create a ledge or obstruction, where loose material may lodge.
/ Its narrowest internal dimension shall not be less than eight (8") inches and no flue smaller than 8" x 8" rectangular or eight (8") inch diameter round will be considered suitable when hard coal is to be burned, or 8" x 12* rectangular or ten (10") inch round for soft coal or wood.
g It is strongly recommended that nothing less than 8" x 12" internal dimensions be used in any case.
Note S.--It is recommended that the height above the furnace grate be not less than twenty-six (26') feet.
Note 3.--It is strongly recommended ttiat all new chimneys be built in strict accordance with the ordinance recommended by the National Board of Fire UndervTiters.
ARTICLE 3.--Method for Determining Size of Warm Air Pipes, Wall Stacks and Furnaces for Use in a Residence
Method of Determining Size of Basement Warm Air Pipes
(Read Explanatory Notes 4 to 11
Section 1. First Floor Rooms.
Divide square feet of glass by 12, Divide square feet of net outside wall by 60, Divide cubic contents by 800, Add together the above and multiply by 9. The result`is the area of the basement pipe.
The sum of:
Glass (sq. ft.) (Note 4) M2 >
.*
.
Net Wall (sq. ft.) (Note 5) 4- 60}- X 9 = Area of Basement Pipe (Note 10)
Cubic Contents 4- 800
)
Section 2. Second Floor Rooms.
Divide square feet of glass by 12, Divide square feet of net outside wall by 60, Divide cubic contents by 800, Add together the above and multiply by 6. The result is the area of the basement pipe.
.. ;
/The sum of: ) Glass (sq. ft.) (Note 4) -M2
)
j Net Wall (sq. ft.) (Note 5) 4- 60 V X 6 = Area of Basenent Pipe (Note 10)
\Cubic Contents 4- 800
)
Section S. Third Floor Rooms.
Divide square feet of glass by 12, Divide square feet of net outside wall by 60, Divide cubic contents by 800, Add together the above and multiply by 5. The result is the area of the basement oioe.
.
J/TGhlaesssu(smq.offt:.) (Note 4) -M2
)
-
-
\ Net Wall (sq. ft.) (Note 5) 4- 60 > X 5 = Area of Basement Pipe (Note 10)
vCubic Contents 4- 800
)
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Method of Determining Size of Wall Stacks
Section 4. First Floor Rooms..
Same as Section 1.
,.
.
Section 5. Second Floor Rooms.
Deduct 30 per cent from basement pipe area determined in Section 2.
.
Section 6. Third Floor Rooms;
Deduct 30 per cent from basement pipe area determined in Section 3.
Explanatory Notes
Note 4---In obtaining glass surface use full casement opening. An outside door is figured as glass.
Note 5.--To obtain net outside wall multiply height by width and deduct the glass in all windows and
outside doors.
Note 6.--For rooms having unusual exposure, ordinarily north, northeast and northwest, add 15 per cent to pipe area. For east and west exposure, add 10 per cent.
Note 7.--For cold ceilings, add one-half net area of ceiling to net exposed wall (cold ceilings are those
next to unfloored attics.)
`
Note 8.--Use no warm air pipe less than 8 inches in diameter. If a basement warm air pipe figures greater area than any standard commercial size then the next larger size shall be used.
Note 9.--It is understood in using the above values for determining basement warm air pipe areas, that these pipes should be run comparatively straight and that they should not be over 10 to 12 feet in length. Sharp turns and long pipes should have extra capacity.
Note 10.--These formulae are for 70 deg. inside temperature with zero temperature outside. For a temperature of 10 deg. below zero, add 10 per cent to the capacity of each pipe.
Note 11.--The value of 800 (used in cubic contents) is for an estimated air change of one room volume per hour. If it is desired to provide for 1H room volume use the figure 600. If for 2-room volumes use the figure 400. "The factors 9, 6 and 5 in sections 1, 2 and 3 are calculated for a register air temperature of 175 deg."
Transition Fittings and Stacks
Section 7. Transition from warm air pipes to stacks shall be made with a welldesigned elbow or boot and no stack shall be less than 70 per cent of the warm air pipe area.
Method of Determining Size of Registers
Section 8. All registers shall have a free area at least equal to the calculated area of the basement pipe.
Method of Determining Size of Furnace
Section 9. Add together the actual warm air pipe areas in square inches as obtained in Sections 1, 2 and 3, and select a furnace having a free area not less than the sum of all the warm air pipe areas.
ARTICLE 4.--Installation--Location of Furnace
Section 1. The location of the furnace shall equalize the length of warm air runs as far as possible, yet give necessary preference to pipes supplying living rooms, dining rooms and main halls.
Foundation F
Section 2. Furnace foundation of brick, cement, or other incombustible material must be provided. Said foundation to extend at least fifteen (15") inches at rear and sides of furnace casing and at least thirty-six (36") inches in front of furnace casing. Foundation to be level.
Setting or Assembling of Furnace
Section 3. a The base ring' of the furnace shall be cemented to the foundation, making an air tight joint. The furnace parts shall be assembled plumb and level, and in a workmanlike manner.
b All sections and joints shall be properly fitted. Joints requiring cement shall be well filled and all bolts shall be drawn up tightly.
Casings
Section 4. a Warm air furnaces shall be enclosed in metal casings or walls of brick, tile or concrete.
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American Society of Heating and Ventilating Engineers Guide, 1926-27 -
b Portable. Sheet metal casings including casing tops shall be made of galvanized
sheets, not lighter than 26 U. S. Standard Gauge. They shall fit the castings and
casing rings closely, so as to be dust tight, and shall be securely fastened to the front.
The casing shall be lined from the upper casing ring down to a line on a level with
the grate.
c When side collars are used the casing top must be of sufficient height so that the largest warm air pipe can be taken from side without ovaling. In no case shall a distance less than eight (8") inches be maintained between the top of any furnace and the top of casing or bonnet.
d Any furnace, the casing top of which shall come within sixteen (16") inches of a
combustible floor, ceiling or joist, shall-be protected by a metal shield, extending not
less than eighteen (18") inches beyond the casing of said furnace. This shield shall be
suspended at least two inches below wood work, allowing free air space between shield
and woodwork. No furnace casing or top, coming nearer than six (6") inches of ceiling
or joists shall be allowed in any case.
'
e Openings for side casing collars shall be cut into the casing top, so that the tops of all openings are on a level. Casing collars shall be fitted into place with a proper flange, or bead on the outside and drawn up on the inside, making a dust-tight joint. All collars shall be of same size as the warm air pipes to which they are to be connected.
/ Brick set, cement or hollow tile casings shall be constructed as follows: Walls shall be not less than eight (8") inches in thickness, and shall be constructed air tight. Rec tangular casing shall be, with least inside dimensions, the same as that of the portable casing of a corresponding size of furnace. Walls shall be carried to the same height as the portable walls, allowing not less than eight (8") inches between the top of the furnace and the bottom of the top cover. After placing the collars for the warm air pipes, continue the masonry up even with the top of the collars, lay spacing rods of bat iron on edge or angle irons across the furnace top, cover these with sheet iron, cover the sheet iron with masonry and run the side walls four (4") inches above the masonry bed. A galvanized iron casing bonnet may be used on brick set furnaces.
Provisions shall be made in the walls for a manhole to give ingress to heater.
Warm Air Pipes in Basement
Section 5. a. All warm air pipes shall be made of bright tin not lighter than IC, or galvanized iron. Side seams shall be locked seams. All joints shall be either double seamed or lapped not less than one and one-quarter (134") inches and such joints shall be beaded and soldered or riveted. All pipes shall be properly secured to ceiling or joist. No solder or riveted joint is required where round pipe slips over the casing collar. Any pipe twelve (12") inches or greater in diameter shall not be made of material
lighter than IX tin or No. 26 U. S. Standard Gauge galvanized iron.
Note IS.--It is recommended that all warm air pipes in the basement shall have an upward pitch
of not less than one (1') inch per running foot.
b. No warm air pipe shall run within one (1") inch of any'woodwork unless such woodwork is covered with asbestos paper and the paper covered with tin or iron.
c. All warm air pipes in the basement shall be provided with dampers not more than two feet from the casing.
d. Where warm air pipes pass through a masonry wall, a metal thimble shall be provided; having a diameter at least 1 in. greater than the pipe, and pipe supported in such a manner that the air space is uniform on all sides.
Wall Stacks
Section 6. a. Single Stacks. All single wall stacks or wall pipes, heads, boots, ells, tees, angles and other connections shall be made of bright tin or galvanized iron and shall be covered with not less than one thickness of 12 lbs. per one hundred (100) sq. ft. of asbestos paper. All studding and other woodwork facing said pipe shall be lined with metal and metal lath used in place of wood lath. An air space of not less than threeeights (34") f an inch shall be allowed on the two sides nearest the vertical studs. All such pipes shall be braced in a proper manner so as not to obstruct the flow of air but to retain the full capacity throughout. All joints shall be locked and held in place by means of lugs, or straps. No joint shall depend wholly upon solder to make it tight.
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American Society'of Heating and Ventilating Engineers Guide, 1926-27
b. Double Stacks. All double wall stacks or wall pipes, heads, boots, ells, tees, angles and other connections shall be made of bright tin, not lighter than IC or gal vanized iron and shall be made double, from and including the boot or foot piece in basement to the top of each and every stack and register head on all floors. There shall be continuous uniform air space of not less than five-sixteenths (3^6") of an inch, which must be maintained between the outer and inner walls of all such pipes and fittings of all kinds, styles and descriptions; such pipes, heads, boots and other fittings tor be of the styles, or equal to those accepted by. the National Board of Fire Underwriters.
All pipes and fittings either single or double must be secured firmly in place by lugs or straps attached to the outer walls of stacks and fittings, and no nails shall be driven through these stacks or fittings at any point. No wall pipes or fittings shall be used which depend wholly on soldered joints. The various members shall be so made that all joints are locked and soldered and the several members shall be attached to each other with slip joints, which are, for the purpose intended, air tight.
Registers
Section 7. a. When baseboard or wall registers are used, they shall be properly and permanently attached to the stack head in such a manner that will prevent any leakage of air between the head and the register.
b. Floor registers shall be provided either with register borders, or double register boxes of tin or galvanized iron with an air space of riot less than five-sixteenths (3^6") of an inch between inner and outer boxes.
c. . Registers for warm air and warm air pipes shall not be located in outside walls. The warm air registers in the various rooms shall be located in or near the inside walls in all cases. .
Air Supply to Furnace
Section 8. a. The air supply to furnace for warm air heating plants may be taken from outside or from within the building or may be taken partially from outside and partially from within. In no case, however, shall air be supplied to any furnace from any basement or furnace room.
b. The cold air intake or return where air is taken from within the building shall
have a net area throughout its. entire length, of not less than the combined net area of
all warm air pipes leading from the furnace. This may be maintained in one or more
ducts.
.
c. When the cold air supply is taken wholly from the outside of the building the supply duct at its most contracted area must equal or exceed eighty (80%) per cent of the combined area of all warm air pipes leading from the furnace.
d. Cold air ducts shall be constructed of metal, tile or other incombustible material having smooth inner surface and shall maintain a constant net area throughout their entire length and shall be made air tight. Where a boot or shoe is connected to the casing at the base, the opening shall not extend higher than a line on the level of the grate of the furnace. The width of the shoe shall be of proper measurement to' make the area at least equal to that of the round or square pipe to which it is connected.
e. Wherever the space between joists is used to convey cold air overhead, the joists and all wooden surfaces between such joists shall be lined with metal and a sheet metal pan constructed to extend not less than six (6") inches below said joists. The connection from this pan to the boot or shoe shall be made of galvanized iron not lighter than No. 26 U. S. Standard Gauge, and shall have a transition collar, the top area-of which shall be at least 10 per cent greater than the area of the connecting pipe.
/. The cold air face or faces shall be made of wood, or metal. When set in floors the top of same shall be flush with floor. Where cold air face is placed in a seat or side wall (whether furnished by owner, general contractor or furnace contractor) the open'work of face must extend to within at least one (1") inch of the floor line.
The free area of cold air faces shall be at least 10 per cent in excess of the free area of the duct or ducts to which they are connected.
Nate IS.--The effective`area of a vertical cold air face lies within twelve (12*) inches of the floor line, hence, the capacity of any vertical cold air face shall be determined by multiplying the base line in inches by not to exceed twelve (12*) inches in height and deducting for the grills or cross bars.
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' American Society of Heating and Ventilating Engineers Guide, 1926-27
.
Smoke Pipes
Section 9. a. The smoke pipe shall.be as short and direct as consistent with the loca
tion of the furnace. It shall be made of either black or galvanized iron not lighter than
No. 24 U. S. Standard Gauge, and of the full size of the collar on the furnace through
out its entire length. It must have no other opening for attaching any fire place,
stove, range, water heater, gas or ventilating connection. It shall be lock-seamed or
riveted; all joints shall lap not less than one and one-half
inches and it shall be
rigidly secured. Cast iron smoke pipe may be used.
b. Where the smoke pipe enters the flue, a thimble shall be cemented into the flue and the connections thereto made air tight. Should any smoke pipe come within
eighteen (18") inches of any combustible material, such combustible material must be covered with asbestos paper and a metal shield so fastened that a two-inch air space exists between this shield and the combustible material. This shield shall be no less in size than twice the diameter of the smoke pipe and (^sufficient length to cover the wood at all points.
c. No smoke pipe shall project through any external wall or window.
Pipeless or One Pipe Furnaces
Section 10. a. When but one duplex grating is used for.both warm air and cold air
in a so-called pipeless furnace, the area of the cold air intake shall be at least equal to
the area of the warm air outlet of the grating. Article 4, Section 4, relative to casing
shall not govern when this type of furnace is installed, but the following specification
shall be followed: The inner and outer casing of this type of furnace may be made of
either black or galvanized iron not lighter than No. 26 U. S. Standard Gauge. A uniform
air space shall be maintained at all points between the inner and outer, casing. In no
case shall the top of the furnace be allowed closer than twelve (12") inches to any ceiling
or joists above the furnace.
.
.
b. Where joists are cut to accommodate this furnace, headers shall be put in and braced so as not to weaken the structure of the floor above the furnace.
c. Article 3 for determining area of warm air pipe shall not govern in figuring a pipe less furnace.
d. Where one warm air register face is used and separate face or faces for cold air
supply are used, then Article 4, Sections 5 and 8 shall apply.
.
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Chapter XI
OIL FUEL FOR INDUSTRIAL AND DOMESTIC HEATING
INDUSTRIAL OIL BURNING
OIL has established its place in the heating field first in the industrial and more recently in the domestic service where effective methods have been devised to burn it economically under automatic control. The engineer, architect and contractor should have a fundamental knowledge of its characteristics, its applications, and should know some of the practical phases of installation methods in new and existing plants. Specific data is necessary for successful service of a plant and for the protection of the client's interests. Every installation should be a matter of individual and careful study.
Oil as a fuel is desirable because it is liquid in form, being petroleum in its constituent parts. There is claimed for liquid fuel, the advantages of space for storage, simplicity in location of storage adjacent to boilers and means of transportation from the remote points of storage to boiler, reduction in labor and handling of fuel, the elimination of ash removal, ease of control of furnace temperatures, and the elimination of the expense of banked fires. Each case, however, where the liquid fuel is contemplated will have, of necessity, to stand on its merit. The heating engineer must figure out the operating cost both with coal and with oil, and the user will have to evaluate the extra convenience, after which a decision can be made as to what type of fuel, should be used.
Crude oil has either a paraffin or asphalt base, or a blending of the two. Fuel oil, is heavy, dark in color and has a greater viscosity, higher calorific value and higher flash point than the crude oil from which it is made. It results from the distillation of crude oil during which processes naptha, benzine, gasoline, kerosene and other distillates are removed. The character of the fuel oil varies in accordance with the extent to which the crude oil has been refined.
In the selection of burner equipment and in the determination of storage facilities, it is well to decide what grade of oil is to be used, its Baumfe gravity, viscosity, flash point, and cold test, or temperature at which it will cease to be fluid.
The following table gives data from standard authorities on various oils. The flash point varies considerably in the oils from different fields, hence the figures given are subject to variation :* .
Compiled especially for The Guide by Byron K. Eaton, chief engineer, Winslow Boiler & Eng." Co.,
Chicago. 111.
.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Oil
Table 82.
Baums Gravity Dec. Fahr.
Data on Fuel Oils
Flash Point Deg. Fahr.
Pounds per Gallon
B.t.u. per Gallon
B.t.u. per Lb.
Kerosene............................... Distillate............................. . Light Gas Oil........................ Dark Gas Oil....................... Light Fuel Oil...... .............. Heavy Fuel Oil.....................
42
38 36 32 24
18
140 160 190 200
150-200 180-280
6.80 6.96 7.03 7.21
7.58 7.89
135,524 137,402 138,421
140,811 145,612 1491484.
19,900 19,700
19,700 19,600 19,000 18,900
Note. While the use of an oil may be contemplated, having a cold test sufficient to meet the lowest
temperatures experienced, if there is any possibility of higher cold test oils being used, heating coils should . be installed either in the storage tank or elsewhere in the system.
Air Required for Oil Burning*
Per Cbmt CO2 bt Volume or
Drt Cases
Light Oil
Lb. of Air per Lb. of Oil
Excess Air Per Cent
Medium Oil
Lb. of Air per Lb. of Oil
Excess Air Per Cent
Hbavt Oil
Lb. of Air per Lb. of Oil
Excess Air Per Cent
4
51.40
260.7
51.93
270.4
52.45
280.3
5
41.31
189.9
41.71,
197.5
42.12
205.4
6
34.58 - 142.7
34.90
149.0
35.23
155.4
7
29.77
108.9
30.04
114.3
30.31
119.8
8
26.17
83.6
26.39
88.3
26.62
93.0
9
23.37
64.0
23.56
68.0
23.75
72.2
10
21.12
48.2
21.29
51.8
21.45
55.5
11
19.83
39.1
19.43
38.6
19.58
41.9
12
17.76
24.6
17.88
27.6
18.01
30.6
13
16.46
15.5 16.57
18.2
16:69
21.0
14 15.36
7.8 15.45
10.2
15.55
12.7
15 14.39
1.0 14.48
3.3 14.57
5.6
*C. R. Weymouth, Transactions, American Society Mechanical Engineers, Vol. 30. Also see Vol. 34.
A fuel oil burner installation comprises oil storage, pumping equipment, heating equipment if required, an atomizing assembly and a correctly designed fire-box within the boiler for complete combustion and for proper diversion of the fire and gases. There are certain essential accessories, such as pipelines, oil pre-heaters, regulating valves, meters, strainers, pressure gages, relief valves and the proper adaptation of them all to the particular needs of each specific case.
It is not the purpose of this article to discuss the -relative merits of
various types of burners. The respective claims of burner manufacturers
can be carefully weighed and a decision made as to which is best adapted
to the work in question. Mechanical simplicity and the assurance of
correct principles of atomization should be of foremost consideration in
judging burners.
-
The decision as to the burner will govern the type of oil pump utilized to draw the oil from the storage tank and introduce it into the burners. The various burner campanies have provided what they consider the most suitable pumping devices for their equipment.
One of the most important phases of oil burner installations, is the design of the combustion chamber of the boiler or furnace. While the consumption of coal is limited in a boiler, by the square feet of grate and the draft available where handfiring is utilized, with oil burning equip ment, the only limit to the oil consumption, is in the cubical contents of the combustion chamber or fire-pot. Practically any of the boilers that
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are in use today are adaptable to oil burning equipment but there should be a rearrangement of the combustion chamber. The grates may be removed, and the burner dropped below their level thus enlarging the
combustion space.
A wide, long, high combustion chamber is ideal, within certain limits. It is only necessary to extend protecting walls where there are waterdrop legs projecting downward from the crown-sheet. All such water surfaces must be protected from any direct contact with the fire. It is well to brick up the sides of boilers, of fire-box or sectional type, to a point 8 or 9 in. higher than the center-line of the burners. Impingement walls should be so built as to properly deflect the gases of combustion.
The brick used should be of the very highest heat-resisting type and each brick should be dipped in a thin batter of heat-resisting cement and water and laid up tightly to the next brick. This will give a very excellent wall which will require a minimum of attention. Oil burner manu facturers have plans for the bricking of the various types of boilers, which plans are usually submitted after the contract has been approved.
There are a number of oil heaters on the market,..which are meritorious. If low pressure steam boilers are being equipped with oil burners, ordinary coil waterheaters may be connected below the water-line of the boiler. Sufficient heating capacity should be installed to bring the temperature of the oil up to within 25 or 30 deg. of its flash-point. This pre-heating of the oil not only decreases the viscosity but takes a certain combustion burden from the fire in the boilers and also tends to carry in suspension basic deposits which might otherwise be left in the burners. In high pressure work, coil heaters can be connected into the exhaust or live steam lines depending upon the type of heater selected.
Naturally, the heavier the oil, the greater will be the tendency towards sediment deposit consequently strainers must be provided. Unless the oil is exceedingly heavy, a single strainer in the suction line just before it enters the pumping equipment, will be sufficient. This strainer can be so built as to be easily accessible for cleaning. In some instances, duplex strainers are used, in which case, the mere throwing of a lever, will change the flow of oil from one strainer to another, so that cleaning can be accom plished without interfering with the supply of oil.
The question of the elevation of the pump is of some importance, as some communities prohibit the installation of oil pumping equipment at a point lower than the top of the oil storage tank. As the result, it is frequently necessary to build platforms in the boiler-room'on which to mount the pumping equipment, so that there will be no danger of siphon ing. If this is.not done anti-siphoning devices should be used.
While fuel oil burners are not automatic in character, yet a great many burner companies provide automatic regulators to maintain a fire be tween "high-low" limits, so as to maintain uniform pressures.
The foregoing discussion refers continually to boilers, it must not be
lost sight of that oil fuel is adaptable to scores of industrial purposes.
Bake ovens, melting pots, annealing furnaces, dryers and countless other
heat demanding units are continually and adequately operated with this
modern fuel.
"-
Adequate oil storage should be planned. Where trackage is available,
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American Society of Heating,and Ventilating Engineers Guide, 1926-27
carload deliveries should be provided for. Local ordinances and the requirements of the National Board of Fire Underwriters and the local bureau having jurisdiction should be studied and strictly adhered to, especially in the matter of locating and burying outdoor tanks and in the brick-housing and sand-fill usually required for large interior tanks that are not buried.
Where the storage tank is buried outside the building, the oil suction, oil return and the steam flow and return lines should all be run in one large split tile, carefully cemented. The steam line should then drop into the oil storage tank, either spirally around the' suction line, thence returning through the tile, to discharge into the heating system trap, of the coil can extend to and be laid along the bottom of the tank, with the return similarly returning to the steam system. Great care should be ex ercised in the construction of steam lines inside of oil tanks, so that there will be absolutely no possibility of a leakage from the oil into the steam coils when coils are under a vacuum or of the steam leaking into the oil.
Every tank should be provided with a man-hole and with the following tappings:
4 in. fill 3 in. suction
l]/2 in. return 1in. vent
in. steam flow 1 ]/z in. steam return
' All these tappings should be in the top of the tank. The suction pipe should not extend closer than six inches to the bottom of the tank. These tappings can be varied in size to suit local ordinances or conditions.
There are two general types of tanks--vertical steel and horizontal steel. Up to 10,000 gal. the horizontal steel tank is commonly used; the vertical steel tank is used for larger capacities.
Since the minimum car of oil is 8,000 gal., it is well not to plan any tankage, of less than 10,000 gal. capacity, where carload deliveries are possible. Where oil companies maintain reserves of oil, smaller storage can be provided for than in districts where all the oil has to be brought in by car. In this case, there should be enough storage for a reasonable period. One ton of coal is equivalent to approximately 170 gal. of fuel oil.
Standard construction for underground horizontal steel tanks provides 3/16 in. steel for up to 4,000 gal., in. from 4,000 to 10,500, 5/16 in. from ID,500 to 20,000 gal. Vertical above ground tanks should be built in accordance with the Underwriter's tables for diameter and height.
While oil consumption can be fairly accurately checked by gaging the
tank, the oil meter is the most logical method of quickly determining
fuel costs and in estimating the relation between fuel consumption and
work performed.
`
DOMESTIC OIL BURNERS
.
The problem of applying oil fuel to residential heating is essentially different from that pertaining to industrial installations. While in an industrial installation the size of the plant usually warrants the necessary investment for installing auxiliary equipment for preheating and atom izing the heavy fuel oils such investment is seldom warranted in the small plant required in a residence. Further, the hazard associated with pre heating and the complication incident with atomization is an added
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factor weighing against the use of heavy oils for this purpose. These facts results in the use of lighter or higher Baum& gravity oils for domestic purposes. These oils which include gas oil, distillate, and kerosene are
liquids of low viscosity even at zero temperature.
Every manufacturer supplies complete information relative to the handling of the equipment, which should be mounted in the boiler-room.
The safety devices demanded by the Underwriters' Laboratories are varied, dependent upon the type of the equipment used, but the owner
should familiarize himself with their purpose and care.
Noise may be divided into two kinds: (1) Purely mechanical and (2)
noise of combustion. The former will depend upon the equipment used and its complication of mechanism. Combustion noise should be approxi mately the same in nearly all burners. Where the correct adjustment of air and oil is made to give the best efficiency, this combustion noise will be cut to a minimum. Any boiler that is heavily covered with insulating material will permit the transmission of less noise than an uncovered
boiler. The thermostatic equipment should consist of a room thermostat,
centrally located in a position, representative of the general home tem perature, remote from any source of heat or cold, and a boiler control to prevent the temperature of the water or the steam pressure from exceed
ing a predetermined point. While oil burners are most successfully operating in hundreds of
different makes and styles of boilers and furnaces yet in planning new heating systems the adaptability of boilers to oil burning should be given serious consideration. Generally speaking, boilers with a preponderance of indirect or flue surfaces, are best suited to oil burning, because an oil fire develops a considerably hotter flame than does coal. This means higher combustion gas temperatures, and naturally demands more heat
absorbing, water-backed flue surfaces.
x
The problem of fuel consumption in residential heating plants is just as vital when an oil burner is used as with any other style of fuel. The
factors that determine' fuel consumption are:
Boiler efficiency Heating piant efficiency Temperatures carried Normal heating demands Abnormal heat losses Burner adjustment.
.
It is not necessary to discuss these factors, with the exception of the last. The proper adjustment of oil and air and the maintenance of that adjustment under varying draft conditions is important. Fires misadjusted to a white color are obviously using an excess of air at the sacrifice of efficiency. The orange flame, with a minimum of excess air, constitutes what we term a "lazy, floating fire," which gives ample opportunity for the heat units to transfer themselves into-'the heating medium behind the walls of the boiler and its flues.' Where round domestic boilers are contemplated, those with a maximum number of horizontal water sections above the fire-box are to be pre
ferred.
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In selecting burner sizes the total load imposed upon the boiler and thence upon the burner should be carefully determined. This load should be determined in accordance with the method for determining the load on any boiler as outlined in preceding chapters.
The same allowance for hot water heaters should be made as for ordinary boiler practice and the same precaution should be followed in insulating the boiler and piping.
Draft is a matter of importance, since the quantity of air introduced by the very essential motor driven burner fan, must have adequate oppor tunity to pass freely into the stack. The standard practice of assigning an individual flue to the heating boiler should be strictly adhered to.
Oil burners with their frequent periods of idleness, and the consequent elimination of needless fuel consumption, do not always impart sufficient heat to ordinary water coils in the fire-pot of heating boilers.
Where vapor or steam is used, any of the boiler water-heating units that connect into the boiler. below the water-line, thus heating the storage tank, should be used. In hot water heating plants, larger coils are necessary.
In studying the burner equipment itself, attention should be given to the stability of the burner manufacturer and that of his local distributor. The reputation of the burner in past performance is of equal importance. The simplicity and quality of the mechanical construction should be studied and the element of noise, must be given attention.
A burner listed as standard by the Underwriters' Laboratories, may be considered as having been built-up standards.
The problem of oil storage is relatively simple, since all the fuel may be stored in tanks buried outside. One-thousand gallon tanks of .3/16 in. steel seem to be most popular although the two and three thousand gallon sizes are coming into considerable favor. In estimating the size of storage tank it is well to remember that 170 gal. of oil is approximately equivalent to 1 ton of coal.
Inquiry should be made as to the available truck capacities before selecting tank sizes, as the tank should be large enough to accommodate an entire truck-load of oil, while still containing, a "working balance."
Local ordinances should be strictly adhered to. Some cities require that a buried tank shall be at least 2 ft. beneath the surface of the ground and at least five feet from a building wall. Others provide that a line drawn at 45 degrees from the junction of the basement floor and the building wall, shall not touch the tank.
The tappings, 2)4 in. fill, 1 in. vent and 1 in. oil suction, should all be in the top of the tank. Manholes, oil return lines and steam coils are unnecessary in tanks for the kind of oil suitable for residential work.
In the low-priced burners utilizing basement auxiliary tanks, such tanks should be at least 10 ft. from the nearest fire; they should be re plenished by hand pumps connected to the main oil tank buried outside. Where no outside storage is provided, these auxiliary tanks should be filled and vented outside, and should also be provided with a tightfitting, float g;age, so that if the tanks are over-filled, there can be no spilling of oil in the basement.
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Chapter XII ,
GAS HEATING
HE increase in the use of gas for house heating has been a great
Tstimulus to the development of highly efficient gas burning appli ances. Gas-burning heating installations as the sole source of heat for
residences, factories, and public buildings (formerly limited to those
localities where there was an abundant supply of cheap gas) are taking a
more prominent place in' coal-burning regions.
Gas-burning heating appliances present an opportunity for the realiza
tion of nearly ideal efficiencies in combustion and heat transmission.
Full advantage must, however, be taken of the inherent efficiency of
such appliances and every effort made to retain this efficiency, for it is
only on this basis that gas can compete with coal.
TYPES OF GAS HEATING APPLIANCES
Gas-burning heating appliances may be classified as those for heating individual rooms; and central heating plants, heating an entire residence or other building. Each classification may be subdivided as follows:
. I. Room Heaters
a Reflector Heaters (luminous flame)
b Radiant Heaters (blue flame)
c Gas Logs (blue flame)
d Tubular and Cylindrical Radiators
'
(a) Floor Furnaces
e Gas Fired Steam Radiators
(a) Bungalow type hot water systems
2. Central Heating plants a Warm Air Furnaces b Steam Heating plants c Water Heating plants
'
COMBUSTION OF GAS
In the above classification it will be seen that some heaters are desig nated as luminous flame or blue flame. This distinction comes from the type of burner used. Gas burners are of two general types: Luminous flame burners, and the more widely used Bunsen or blue flame type. Each type of flame has its own field of usefulness; and if combustion is complete, and the flame properly applied, each will deliver the same amount of heat from a given quantity of gas. Gas requires for complete combustion air in the proportion of about 1 cu. ft. for each 110 B.t.u. of gross heat value. The two flames differ in the manner in which this air is supplied for combustion. If gas is forced directly into the atmosphere through a small hole, the air required for combustion is drawn into the
Material compiled for this chapter by W, E. Stark, engineer, Bryant Heater & Mfg. Co., Cleveland, O.'
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American Society of Heating and Ventilating Engineers Guide, 1926-27 .
jet and the gas burns with a large yellow flame. As the holes in such burners must be small, appliances using them cannot burn gas in large quantities. A luminous gas flame must not be permitted to touch any cold solid surface as this will result in arrested or incomplete combustion, the deposit of soot and the formation of carbon monoxide.
' Blue flame or Bunsen type burners are provided with an external mixer in which a portion of the air (about 2 cu. ft. per cubic foot of gas) is mixed with the gas previous to ignition. This is called primary air. The flame issuing from the port of the burner has .two distinct parts: a pale blue inner cone and a darker cone surrounding it. The heat of the flame issuing from the burner port draws currents of air past the flame and into it in sufficient quantity to cause complete combustion. This is known as secondary air. The flame should sit squarely on the . port and should not have a yellow tip. A yellow tip indicates insufficient primary air, and is corrected by opening the adjustable air shutter.
It should be noted here that the proportions of the orifice at the entrance to the burner tube, and the proportions of the burner ports must suit the heat content of the gas being burned. A burner propor tioned for natural gas is not suitable for water gas or coal gas, which are much bulkier in relation to their heat contents.
Table 83 shows the heat values of a cubic foot of gas and air mixture, the gas being mixed with the amount of air theoretically required to burn' it. In practice excess air must be admitted to the fire in order to insure complete combustion.
Table 83. Volume of Air Required for Combustion of Different Gases*
- Gas
B.t.u. per
Cubic Foot
Cu. Ft. Air to Burn
Cu. Ft. Gas
B.t.u. per Cu. Ft. of
Mixture
1084 580 510 575
10.27 5.21 4.43 5.02
96.2 93.4
93.9 95.5
Thomas King. American Gas Journal, October 22, 1921.
HEAT VALUE AND EFFICIENCY
A gas may be said to have two heat values; a gross or higher heat value and a net or lower heat value. The higher heat value is the entire heat that is liberated by the gas when it is burned completely. The complete combustion of a gas results in the formation of water vapor; the amount depending on the proportion of hydrogen or hydrocarbons in the gas. In order to utilize completely all of the heat of combustion of the gas it would be necessary to condense the water vapor in the products of com bustion ; thus reclaiming its latent heat of vaporization-, and then to cool down the water to the starting temperature.
To condense any of the water vapor in the products of combustion it is necessary to cool them down to the dewpoint, which will always be below 212 deg. This is what is done in a calorimeter, but it is obviously im possible to do it in any commercial gas-burning appliance. Since it is not
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American Society of Heating and Ventilating Engineers Guide, 1926-27
possible to utilize all of the heat liberated by the gas in burning, the heat value is sometimes expressed in terms of the lower value; obtained by deducting from the higher value, the total heat of the water vapor down to the starting temperature. The lower heat value is always about 10 per cent less than the higher heat value.
Although it is practically impossible to utilize the higher heat value in any house heating appliance, it is nevertheless customary to express boiler and furnace efficiencies in terms of this higher value. This gives a lower efficiency than one calculated from the lower heat value and is of course based on an unattainable standard, but it is a more accurate and consistent way of expressing efficiencies. An appliance may reclaim a little bit of the latent heat of the water vapor. If the test efficiency of such an appliance is calculated from the lower heat value, one is placed in the position of crediting the appliance with some heat that was not charged against it. Although quoted efficiencies are usually based on the higher heat value, care should always be taken to understand which standard guaranteed efficiencies are.based on.
For example.--Take an hypothetical gas having a gross heat value of 550 B.t.u. per cu. ft. and a net heat value of 500 B.t.u. per cu. ft., burned in a steam boiler giving an evaporation, of 465 lb. of water (from and at 212 deg.) per 1000 cu. ft. of gas burned:
B.t.u. in steam Efficiency =
B.t.u. in gas
X 100 =
465 X 970.4 cu. ft. X heat value
X
100
451,235 With Gross Value Efficiency = 550,000 X 100 = 82.04 per cent
With Net Value Efficiency =
X 100 = 90.25 per cent
5UU,UUU
It will be noted from the example cited that when the efficiency is based on the net or lower heat value, the appliance apparently absorbs 8.21 per cent more of the heat supplied to it than when the efficiency is based on the gross heat value.
The following Table 84 shows the maximum possible efficiencies obtain able when burning a typical manufactured gas with various stack tempera tures. These are based on the gross heat value and do not include any
Table 84.
Products of Combustion and Efficiencies with Typical Manufactured Gas
Stack Temperature (deg. fahr.)
Heat in Dry Flue Gas above 60 (%)......... Heat in Water Vapor above 60 (%)--..... Heat absorbed by Boiler or Efficiency (%)..
220
3.25 9.95 86.80
235
3.57 10.03 86.40
250
3.90 10.10 86.00
265
4.14 10.16 85.70
280
4.28 10.22 85.50
100.00 100.00 100.00 100.00 100.00
Flue Gas Analysis C02
8.04% 02
5.86%
N2 86.10%
correction for radiation from the boiler covering. Radiation would reduce these efficiencies from 2 to 10 per cent depending on the insulating
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American Society of Heating and Ventilating Engineers Guide, 1926-27
properties of the covering. The gas is assumed to be burned with 35 per cent excess air and has the following composition:
H, 52.5 ch4 31.6
c,h. 1.1
C.H. 1.1
o. 0.1
CO, 1.5
N, 3.5
u ' a u
u
a
u a a u
u a
100.0
Heat value per cubic foot at 60 deg. fahr. and 30 in. hg., 580 B.t.u. Specific gravity 0.418 (air = 1) Air Temperature 60 deg. fahr. Atmospheric moisture neglected.
TYPES OF GAS HEATERS
Luminous Flame Reflector Heaters diffuse a large part of their heat by virtue of the radiating power of the bright yellow flame. They are
usually backed by a polished copper sheet which reflects radiant heat into
the room. The flame must never be so long that it strikes any part of the heater.
Radiant Heaters have a blue flame which heats refractory "radiants"
or "glowers" to incandescence. Radiant heaters are quite sensitive to changes in gas pressure. The radiants should not glow more than two
thirds of their height if the products of combustion are to be free from carbon monoxide gas and in no case should flame issue from tops of the
radiants. These heaters operate best if the gas pressure at the orifice is left
constant, regulation being secured by an adjustment at the orifice and not by a cock in the gas line.
Gas Logs have a very poor efficiency if they are placed in a vented fire place, as the radiating power of a blue flame is low and most of the heat goes up the flue.
Tubular and Cylindrical Radiators give off their heat-by radiation from
black sheet iron covers, similar to old style coal stoves. They are also
made in the shape of a steam radiator, either cast iron or pressed steel
being used.
`
Floor Furnaces heat by convection, being placed directly beneath
floors and heating the room above by the currents of air set up through the heater. They discharge products of combustion into the heated room.
Gas-Fired Steam Radiators permit local heating with close automatic
control, without the extremely intense heat that is present when the gas
gives up its heat directly to the radiating surface.
VENTING
.
It is always safest to vent individual room heaters to an unobstructed chimney. Then no danger can arise from the flame flashing back into the mixer due to low pressure, or from a sudden increase of pressure above that for which the appliance is adjusted. If the gas pressure is certain and constant and if the burner adjustment is correct such appli ances are often vented into ventilated rooms and are considered reasonably safe. In no case, however, should unvented heaters be used in sleeping rooms.
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CENTRAL HEATING PLANTS
Individual room heaters are suitable only for taking the chill off in mild weather; or, in the case of a house heated with a coal boiler or furnace, for warming up a room quickly, while the more sluggish coal burning appliance is getting under way. Central heating with gas offers the opportunity to secure uniform temperature throughout the house and instant response to the wishes of the owner, without a multiplicity of controls and vents.
Gas can be burned efficiently in warm air furnaces designed foF the pur
pose. The principal requirements in the design of.such furnaces are:
a path for the hot gas that can be traversed with very little draft loss,
thus permitting maintenance of sufficient draft with a low flue gas
temperature; and sufficient surfacfe to insure the transmission of most
of the heat by direct contact with the hot gases, as a gas flame gives
off very little radiant heat.
-
The heating surface can be placed very close to the burner as com bustion is complete within a short distance from the burner. The use of gas in a coal furnace is unsatisfactory at best.
Gas-fired boilers, designed for gas, give very high efficiences, 80 per -cent (based on gross heat value) being readily obtainable. A properly designed and installed steam boiler should operate at full rating without priming and with a stack temperature not over 50 degrees higher than steam temperature. Gas boilers can be applied to any type of steam or hot water heating system. To obtain fully the benefits to be realized from the inherent efficiency of the gas boiler, certain precautions should be observed in installation.
. Adequate provision should be made for venting air from the system. A gas burning boiler has very little heat storage capacity. As soon as the fuel is turned off by the controlling devices, cooling starts and inleakage of air begins in greater or less degree.' When heat is again demanded this air must be purged from the system by the steam before heating can begin. Unless the system rids itself of air easily, there will be a "saw tooth" effect on the temperature; caused by the house cooling below the temperature for which the thermostat is set, before steam can expel the air and reach the heating surfaces.
A gas-burning boiler lends itself readily to automatic control and such control should be used; since it is a decided aid to economy. Room temperature control on steam boilers and dual control of both room and water temperatures on water boilers should be installed. Steam boilers should be equipped with a steam pressure regulator and with a low-water fuel cut-off; and all boilers should be provided with gas pressure regula tors. All of these devices are standard equipment on most gas boilers.
Like a boiler using any other fuel, a gas boiler requires adequate pro vision for venting. The products of combustion are colorless and odorless; but they are none the less tangible, and the chimney must provide sufficient draft to carry them away. Since a gas boiler operates satis factorily with very little draft tension, it is advisable to install some kind of draft check between the boiler and the chimney. This serves the double purpose of keeping the chimney draft low so that the heat lost to
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American Society of Heating and Ventilating Engineers Guide, 1926-27
the stack will not be excessive and of protecting the pilot flame against back-drafts. The boiler manufacturer generally furnishes a satisfactory device as part of the standard equipment.
The problem of installing a gas-fired warm-air furnace is not greatly different from that of installing a coal-fired furnace. Warm air pipes and registers should be liberally proportioned (see Chap. X, p. 143) so as not to obstruct the free flow of large amounts of air; and recirculation should always be practiced. Thermostatic control should of course be employed. Dual control, that is, control of both room temperature and duct tem perature,. is becoming popular. It makes for more even heating and provides a sure safeguard against overheating arising from registers being closed while the furnace is in operation.
On account of their small heat storage capacity, gas boilers are par ticularly adaptable to extremely low pressure (vapor) steam heating systems. The small water capacity and quick steaming ability insure instant response to the sensitive steam pressure regulators.
RATINGS
Gas appliance manufacturers have followed the custom established by coal appliance manufacturers in rating their product in terms of cubic feet of warm air and square feet of steam or water radiation. The capacity of a gas furnace or boiler is subject to smaller fluctuations than a boiler employing solid fuel and the element of length of firing period does not enter into consideration. Gas appliance manufacturers rate their boilers in terms comparable with the usual 8-hour rating of coal boilers. In other words, where a 2400 sq. ft. coal boiler would be chosen, a 2400 sq. ft. gas boiler would generally be appropriate.
It is common practice for gas boiler manufacturers also to rate theirboilers in terms of Available B.t.u. per hour. To use this rating the cal culated heat loss from the building is increased by the usual percentage, allowed for piping losses and the appropriate boiler chosen.
A gas furnace or boiler will show essentially the same capacity or efficiency with any gas fuel, provided steps are taken to furnish burner equipment and air regulation appropriate to the fuel burned. Most manufactured gases, although of lower heating value than natural gases, if burned in sufficient volume will produce equivalent results. The heating value of a mixture of gas and air (air just sufficient to burn the gas completely) is almost the same for any typical commercial gas, asis shown in Table 83.
It is a fact, based upon observation, that the user of a gas-fired central heating appliance uses more heat during the course of a year than he does when, depending upon solid fuel. The extreme ease of starting and operating a gas burning appliance leads to the pilot light being lighted on the first cool day of the season. Thereafter, the system generally operates entirely under thermostatic control and is left in operation on many days when very little heat is required to keep the inside tempera ture at 70 to 72 deg.; days when it would be impracticable to keep a coal fire going. On many cold days, the gas unit is kept operating con tinuously at maximum capacity so that the premises are never permitted to cool below the temperature ordinarily maintained.
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American- Society of Heating and Ventilating Engineers Guide, 1926-27
A.great deal of data is available covering the fuel requirements of steam and hot-water heating systems. Not a great deal is available on warmair furnace systems, consequently no effort will be made to present any.
In making an estimate of the gas that will be consumed by a gas-fired boiler during the average heating season, two variables must be taken into account. The first is the size of the heating system, usually expressed in terms of square feet of direct cast-iron radiation. The other one is the duration and intensity of the heating season. This is easiest expressed in terms of "degree-days, " a unit adopted by the American Gas Association. A very complete chart giving the characteristics of the heating season for all parts of the entire Continental United States was published by the Heating and Ventilating Magazine in 1925. Table 85, giving values of degree days for several representative cities:
City
Table 85.
Degree--Days for Heating Season
Duration of Heating Season
City
Degree--Days for Heating Season
City
Degree--Days for Heating Season
Cleveland........... Chicago...............
Dallas....--...........
2880 6055 6750 5302 6096 6007
2455
Jacksonville....... Kansas City...... Minneapolis....... New York.......... Oklahoma City..
5880 6202 1080 5302
7953 5303 3827
Pittsburgh--....... San Francisco.... St. Louis............. Philadelphia...... Seattle................. Washington------
5327 3450 4583 4950 5156 4562
By averaging the records of a large number of gas-boiler installations, the following equations have been derived:
For Steam
G
--
102
XR
H
X
D
59 X R X D
For Water G --
H
where
G = cubic feet of gas per season R = square feet of direct cast-iron radiation D -- degree-days per season H -- B.t.u. (gross).per cubic foot of gas
Example. To estimate the gas consumption for the average heating season for a 300 sq. ft. steam heating system in Chicago.
From Table 85 it is found that the average heating season in Chicago has 6007 degree-days. The gross heat value of the gas supplied to that cityjis 535 B.t.u. per cii. ft. Substituting in the equation:
102 X 300 X 6007 G=
= 343,578 cu. ft.
535
The requirements of individual installations may vary considerably from an average of several. Generally stores, offices, factories, and other commercial buildings require less heat pier season than do residential buildings provided with an equal amount of radiation.
In coal furnaces or boilers, the path traveled by the hot gases is relatively short and the surface with which they come in contact- is relatively small as compared to gas heating apparatus. A large pro portion of the heat in the coal is given off by the incandescent fuel bed as radiant heat. As a gas flame radiates very little heat, the hot products of combustion mustcome in direct contact with the heating surfaces. For this reason the use of gas in coal-burning appliances is always wasteful
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American Society of Heating and Ventilating Engineers Guide, 1926-27
and about three times as much gas will be required than if it were burned
in a properly designed appliance. The gas-burning appliances have a
longer fire travel and more heating surface than those burning coal and
can therefore absorb more heat from the hot products of combustion
in a given time.
'
Coal-burning boilers are constructed with large passages for the flue gas so that the draft loss through them can be kept as small as possible, thus permitting most of the chimney draft to be exerted in drawing the air through the fuel bed. When gas is burned under a boiler with such liberal passages, the draft becomes too great and the stack losses become excessive. A boiler designed for gas can have restricted passages for the products of combustion, permitting them to come into very intimate contact with the heating surfaces. The experiences of the gas companies in several large cities with conversions have been such as to discourage their use.
Warm air furnaces, designed for use with manufactured or natural gas, are available in sizes ranging from 5000 to 20,000 cu. ft. rated capacity. House-heating boilers, of the cast iron sectional type, designed especially for gas fuel, are available in single units ranging from 200 to 7500 sq. ft. of equivalent direct radiation.
CROSS-CONNECTING COAL AND GAS BOILERS
Quite frequently, when a customer has already a coal boiler in his home, it is desirable to.leave the coal boiler in place, and to cross-connect the gas boiler with it. For small gas companies or any others where there is any possible chance of a shortage or failure of gas, it would seem to be good practice to encourage cross-connecting as the customer would realize very little for a second-hand coal boiler, and it is worth more to him as a safeguard against failure of his gas system than he would realize by selling it. It also produces a more secure feeling in the cus tomer's mind when putting in gas-fired house-heating equipment, if he knows that he can burn coal at any time he has occasion to. There is almost no difference in the cost of an installation, whether it is crossconnected or displaced. Cross-connection also gives the customer a means of disposing of papers, crating and other waste material.
In hot water heating systems, it is necessary to valve bff the return
pipes on the coal boiler, which prevents circulation through the latter
when the gas boiler is in use. Since the gas boiler holds comparatively
little water and is almost always insulated, no valves are needed on the
return pipes to the gas boiler. Hence, by opening the valves on the
coal boiler, it may be operated independently or in conjunction with
the gas boiler.
.
For steam or vapor installation, it is necessary to valve off all of the
returns and flows on each boiler unless the gas boiler is set so that the
water-line in both boilers is at the same level, in which case it is neces
sary to valve off only the coal boiler to prevent the heating of the water
in the coal boiler when it is not in use.
.
The gas boiler should be set as close to the coal boiler as practicable, and the flows and returns should cut into the flows and returns of the coal boiler as near to the latter as possible.
176
Chapter XIII
AUTOMATIC HEAT CONTROL
EMPERATURE regulation is a vital function in the human body.
TWe all carry about with us remarkably effective automatic heat
control equipment. In the best functioning of many social and com
mercial services, automatic temperature regulation is proved to be necessary, not only to comfort and health, but also to the prevention
of waste and to the perfection of manufacturing processes.
Temperature control is usually achieved by preventing overheating.
It follows that automatic heat control is a better term than automatic temperature regulation, and it is obvious that automatic'-heat control
in itself must always effect an economy.
All heating apparatuses must be sufficient in capacity to render acceptable service under the most arduous conditions. The most arduous
conditions, especially as to extreme cold outside, are in effect only a small part of the heating season. It may surprise many people to realize that in Chicago, for instance, the most extreme cold prevails only on
about six days per year. Hence there is ample ability and strong prob ability for overheating during the major part of each heating seaison
unless automatic control of the heating apparatus is provided.
Ventilating systems without automatic heat control give trouble
from drafts.
.
Rooms heated by- radiators can be cooled more quickly by opening windows than by shutting radiator valves, so that it is found that great
heat waste occurs through open windows and open radiator valves, unless
automatic heat control is furnished. .
.
Gas and oil heaters and similar devices using quickly responsive fuels
become prohibitively expensive for fuel unless automatic heat control
is used.
Service hot-water heaters must have automatic control, not only for economy and satisfaction, but also to prevent scalding the bodies of users.
Thermostats are very simple mechanisms. Almost every physical
thing expands or changes under the influence of heat and so can be made
into a more or less effective thermostat. Liquids can be compounded
which will become gases at any reasonable temperature desired. Metals
having different rates of expansion can be harnessed together so as to give a greatly increased thermostatic movement. Common air is an
excellent thermostatic medium, and is used extensively.
There are two general divisions into which devices for automatic
heat control may be grouped, as follows:
1. The simpler class includes the type in'which the thermostats and the valves and dampers which they operate are self-contained without any outside power, gaining
Compiled especially for The Gwde by Samuel R. Lewis, consulting engineer. Chicago. III.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
sufficient energy from the thermostat itself. This class of apparatus is especially adpated to single installations, as for service hot-water heaters, residence heating, and the like. It is suggested that this kind of thermostat be called the unit type. In present commercial practice most unit type thermostats use the expansive power of a liquid or gas, contained in a hermetically sealed receptacle.
2. The other and more elaborate class of thermostat. Fig. 60, includes the type of
thermostat which controls air or liquid or electricity already under pressure, and which by controlling this outside power, operates the dampers or valves against springs or weights and similar opposition which will reverse conditions when the outside power is shut-off. There is practically no limit to the power which can be applied in this manner.
It is suggested that this kindof thermostat be called the pilot type. In present commercial practice, pilot type thermostats are used for large buildings, where many thermostats are required, usually with air at about 15 lb. pressure, from an electric or steam compressor.
Compressed air is a very reliable agent, capable of great flexibility and elaboration of control, and is of considerable corollary use for remote
Fig. 60. Example of Unit Type Thermostat
Fig. 61. Example of Thermostat Using Outside Power
Note.--When thermostat opens, air passes from reservoir and closes valve. When thermostat closes, air between thermostat and valve is released and spring opens valve.
operation manually of distant dampers mid valves. Pilot type ther mostats are used to operate electric switches, the current then passing to electric motors or to magnets which move the dampers and valves. Electricity is so flexible and adaptable that very complicated' and elaborate interlocked functions are possible.
Pilot type thermostats are also used to operate valves on pipes from water supply mains, thus using hydraulic power for moving valves and dampers. Owing to silting up of pipes which have sluggish currents and to corrosion, this method is not always to be advised.
.
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APPLICATIONS OF AUTOMATIC HEAT CONTROL
New uses and styles are developed daily. Some of the applications will be listed which are believed to be approved methods of installation.
Tempering Heaters
The tempering heaters, particularly if they are of copper with extended surfaces, and there is a two-pipe vacuum system of steam circulation having a vacuum pump, should be a separate outer layer of radiation capable of heating the air from the coldest temperature likely to be encountered to a temperature above freezing. This outer layer should be controlled by an outside thermostat set to shut off steam when the outside temperature reaches around 34 deg., and to keep steam turned on when the outside temperature is cooler than 34 deg. There should be an additional layer of tempering heater, controlled by an additional thermostat in the duct beyond the fan, where mixing of the strata of air has been accomplished by the fan. This thermostat should be set to control the temperature at the desired degree for cooling the building, such as will give an average temperature at the delivery opening of say 65 deg., or if this causes drafts, at a slightly higher temperature.
If there is no vacuum system of steam circulation, it is decidedly likely that any attempt to control the temperature by opening and closing steam and return valves will result unfavorably, due to freezing of the radiation and sudden temperature fluctuations in the rooms, as tempering heaters are immediately responsive and flash hot or freeze solid with great rapidity. Where no vacuum system is available it will be wiser to control the tempering heaters by means of dampers, preferably of the interlocked double type operating in a slow or intermediate manner and reducing positively the air volume through the heaters as they increase the air volume through the by-pass around the heaters. Under this condition no diaphragm valves will be placed on the tempering heater supply and return connections.
Air Washers
The air washer should invariably be placed between an outer tempering
heater capable of warming the air above a freezing temperature, pre
ferably controlled by an outside thermostat, and an inner tempering
heater capable of warming the conditioned air to the desired delivery
temperature and controlled by a thermostat in the duct beyond the fan.
It is never permissible to use a by-pass damper around a tempering
heater in front of an air washer.
'
Control of humidity is possible by adjustment of the temperature of the air as it meets the water, and in greater refinement, by control with an additional thermostat, of the water temperature, cooler for lower relative humidity, possibly from a refrigerated supply; and warmer for a higher relative humidity, possibly from a heated supply.
Room Temperatures
The room temperatures are controlled by rindividual thermostats, operating valves oh -the radiators and mixing dampers in the flues, as may be necessary. If a vacuum system of steam circulation is installed,
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American Society of Heating and. Ventilating Engineers Guide, 1926-27
Fig.. 62.
Plan of Class-Room in an Elementary School, Showing Location . of Thermostat
the room thermostats should be intermediate or slow moving, while if
steam circulation is by single pipe or any kind of gravity system, the radiator valves should be operated quickly from full open to full closed. It is important that the mixing dampers in any case shall be moved slowly and held in intermediate positions.
If there is any room which has a separate supply fan and heating
equipment, such as an auditorium or gymnasium heated by warm air
and without radiation, as is often convenient and desirable, it is advisable-
to provide against cold drafts by a variation in the above arrangement,
as follows:
.
'
Suppose that there is a fan drawing through a heater composed of five layers, and
delivering air directly to an auditorium, or to a picture theatre. The thermostat in the
room ordinarily will strive to keep the room cool. If there are many occupants and many
artificial lights, the problem will be to keep cool rather than warm, and the room
thermostat, in a temperature above that at which it is set to operate, will ordinarily
shut-off all heat, while the fan will deliver unheated air. In a room at 80 deg. the
admission of air colder than about 70 deg. (depending'on the point of entry) will cause
discomfort from drafts.
The prevention' of this unfortunate situation is achieved by installing two ther
mostats, one in the room and one in the air duct, the room thermostat serving merely to admit air to the duct thermostat. When the room is cool, both thermostats will
be closed and warm air will enter. When the room temperature gets to the critical
Fig. 63. Diagram of a Method of Control for a Unit Ventilator 180
American Society of Heating and Ventilating Engineers Guide, 1926-27
point of the room thermostat, the room thermostat opens, passing air to the duct ther mostat. The duct thermostat may be set to permit this air to pass on by and to function at the heater to reduce the temperature, but will be set so that when the duct tempera ture lowers to the critical point of the duct thermostat, the latter takes control and prevents the entering air from getting so cool as to cause drafts.
Unit Ventilating Systems
These individual fan-radiator units are usually equipped with highly efficient radiators in one section, having one supply and one return valve, and depend on nicely adjusted dampers for mixing the heated air with unheated air to gain a desirable admission temperature. It is usually not wise to operate the steam supply valves with thermostats, since freezing may occur, and it is usually not practicable to install in these units separate tempering'heaters with separate automatic control. The approved procedure is to use an intermediate or slow acting room ther mostat for operating the mixing dampers in the unit. This thermostat may also operate the radiator valves if a vacuum system of steam circu lation is provided. If the steam circulation is single pipe, or any kind of gravity type, the direct radiators should have positive thermostats.
The fresh air intakes to the units should be closed when the building is unoccupied, and the human operator cannot be trusted, especially in an installation comprising- many units, to do this by manual means at each unit. An excellent recourse is to handle these cold air intake dampers by a compressed air line running from the control point, say in the boiler room, which by manual opening of a valve permits air to pass to all of . the units and to open all of the inlet dampers, the arrangement being such that the dampers will always be held shut by springs or weights when no air is permitted to pass or when the air compressor is shut down.
Direct-Indirect Radiators
Direct-indirect radiators are usually housed in, having cold air inlets at their bases, and give rather a make-shift type of ventilation. It is not practicable usually to install mixing dampers, such as are used with fan-units, in these, and since the heating surface is in a single radiator calculated for the coldest air inlet temperature, regulation is difficult. The best results are obtained, where the use of direct-indirect radiators is necessary, by installing slow acting thermostats on special brackets directly above the radiators where the thermostat will be exposed to the air currents from the outside, and arranging for these to receive air only through additional thermostats placed in the room and controlling the direct radiators. There should be a vacuum system of steam circulation, and the thermostats should be of slow or intermediate acting type, operating on the supply valves to the radiators.
Hot-Water Radiators
--
Hot-water radiators lend themselves to automatic heat control, especially where the circulation of water is of the forced type, but as the radiators heat'and cool rather slowly, there will be some temperature fluctuation or range at the thermostat, especially when the radiator
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American Society of Heating and Ventilating Engineers Guide, 1926-27
surface is excessive in amount. It is wise to use supply valves which will close tightly and to place lock-shield valves on the return ends of radiators, to facilitate repairs, and the lock-shield valves may prove . invaluable in equalizing with great nicety the circulation.
In residence heating with hot-water it often suffices to install a general thermostat in some representative room, which controls the draft, as with coal, or which controls the fire, as with gas or oil, but there should always be furnished in addition a thermostat in the water or circulating medium which will reinforce the general thermostat and which will prevent boiling over in case the latter should be subjected to unfair exposure such as an open window.
' Fig. 64. An Arrangement for Tempered Air with Warm Air Furnaces
FiG. 65. Steam Heated Service Water Heater
Warm-Air Heating
'
With warm-air heating from furnaces, with fans, as in public buildings, it is always necessary to provide a supply of tempered air for cooling after the rooms become warm. A duct thermostat.and dampers easily and positively will accomplish this, either by mixing some cold air with heated air from the furnaces in an intermediate chamber, or by injecting some hot air from the furnaces into the cold air at the fan inlet, recir culating a measured and controlled part of the air around the furnaces. The room temperatures are controlled by intermediate thermostats and double mixing dampers the same as for a steam system.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Warm-air heating for residences may be controlled by a general thermostat in a representative room, and again, as with hot water, an additional thermostat at the furnace in the warm air chamber is desirable to reinforce the general thermostat.
Service Hot-Water Heating .
It is safe to say that no service hot-water heater should ever be installed without automatic heat control. A unit type thermostat is most desir able, since it will function whether or not the general mechanical apparatus is in service, and will control steam and return valves Or draft dampers, oil or gas fires, or electric heaters.
In hotels, hospitals and similar institutions, there should always be at least two independent water heaters, one having very hot water for
Jfo! thtrmosiet h briny nom.
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*bt jnhttS/nf
--------\ \
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Fig. 66. Typical Arrangement for Oil Burner
kitchen uses, the other having water of medium temperature for bath and lavatory purposes, both controlled automatically. Thermostatic anti-scalding devices are available for showers and the like, but these will not prevent the great heat waste due to maintenance of. scalding temperatures for bath water. No kitchen administration is satisfied without very hot water, but this demand is intermittent and small in volume as compared with usual bath and lavatory demands.
Oil Burner Control
No oil burning apparatus, unless provided with automatic heat control, can compete in 'operating cost with coal. An approved method for residence heating with oil is to install the following combination:
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American Society df Heating and Ventilating Engineers Guide, 1926-27
1. A general thermostat in a representative room, controlling the electric supply to the burner motor.
2. An additional thermostat in the boiler or furnace which will take control should
No. 1 thermostat fail to prevent improper or unsafe temperature being maintained
inside the heater.
3. An additional thermostat at the gas pilot which, unless kept warm by the pilot flame, will bring about the opening of the main switch to the burner motor, thus insuring that ho fuel shall be jnjected unless a flame is in being surely to ignite it.
There are many other combinations for giving assured protection with oil burners other than thermostatic devices, such as pressure and weight-actuated mechanisms, but it is doubtful whether they are as reliable as the thermostatically controlled schemes.
Where electric ignition for the intermittent oil spray is used, it is
safer to provide for a continuously operating spark, and to have a
thermostat in the heater which will cut out the main switch if the tempera
ture ever gets lower than the critical point which indicates failure to
ignite the spray.
Gas Burner Control
The same high intensity as with oil fuel makes it necessary to depend on thermostats to prevent waste, and the intermittent operation and necessity for a pilot flame makes it wise to install, for gas the same combination of three thermostats as for oil burners, one on the general service, one in the heater and one on the pilot flame.
DOUBLE THERMOSTATIC CONTROL
Nearly all buildings equipped with a large number of thermostats and using compressed air for power, are occupied only part of each 24 hours, and can without any prejudice be kept at a lower temperature during unoccupied periods, as over night or over a holiday. The con ventional thermostats as ordinarily applied militate against this arbi trary reduction, and each instrument would have to be adjusted each time for the lower degree, and then each would have to be restored following the unoccupied period. Equipment is available which provides two temperature adjustments to each instrument, such that if the general air pressure leading from the central compressor to the thermostat is suddenly changed, the service is switched automatically from one control to the other, and if the pressure again shall be suddenly changed, the service will be switched back. Thus at 6 o'clock P. M., say, the engineer of an office building releases the air pressure for an instant and all of the thermostats are switched from the 68 deg. control to the 45 deg. control. Either control, of course, is set for any temperature desired. At say 7 o'clock the following morning, a repetition of the drop in air pressure will restore to service the 68 deg. temperature.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
In a school building the compressed air supply mains may be grouped so that parts of the building used for night school only remain on the 68 deg. service, while others can be thrown over to the alternate service and kept much cooler until again required for occupancy.
A familiar scheme similar to the foregoing, with a cooler temperature automatically maintained during the night and increased early in the morning is in use, with the switch operated by a clock, for residence-
work.
Central Station Heating
Central plants should always be governed by thermostats as a measure
of economy, and many public service companies require the installation
of automatic heat control for this reason. Where economy is of greater
consideration than comfort, it often suffices to install one unit type
thermostat in a representative room, this controlling a main valve at
the entrance to the building.
.
Where steam at appreciable pressure is furnished from a central station, a combination of pressure reducing valve and cut-off valve, con trolled by a thermostat in a representative room, gives excellent results, as it automatically varies the steam pressure in the radiating surface within a considerable range, giving excellent regulation as well as economy.
Automobile Engine Control
The importance of thermostatic regulation of the cylinder temperature . of internal combustion engines has long been recognized, but until comparatively recent developments in the production of thermostats, has been ignored in practice.
Now the majority of automobiles are provided with thermostats in the cooling medium controlling the volume of air passing the radiator by means of shutters. Several widely advertised and highly developed makes have thermostatic control of valves in the circulating medium.
AUTOMATIC HEAT CONTROL IN INDUSTRY
Automatic control of heat in manufacturing processes is believed to
be still in its infancy. The promotion and development of automatic
heat control was hard pioneering for many years. The reward for this
pioneering seems to be in process of realization in the fabulous uses of
thermostats in industry.
.
Without automatic heat control in innumerable manufacturing pro cesses, what now are sure and perfect reactions would be only occasional successes, and the cost of production would be much higher.
In beet sugar making there are at least eleven processes where C'xact
thermostatic control is imperative. In tanning leather there are at
least fourteen such stages.
-_
Without exact temperature and humidity control, no fine printing is
possible, and no good weaving or dyeing is assured. -
-
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American. Society of Heating and Ventilating Engineers Guide, 1926-27
In the preparation of most food products automatic heat control is vital.
Thermostats prevent scorching in clothes dryers. They reduce evaporation and are a safety device for oil storage tanks.
They are essential to control gelatine temperature in making photo graphic films. They are used to control paraffin vats in making waxed paper, milk containers, etc.
They control baking ovens, no matter how the ovens are heated. A
thermostat is a necessary equipment with each automatic refrigerating
machine.
.
Chapter XIV
INSULATION FOR PIPING AND BUILDINGS
THE economic value of insulation on heated surfaces such as steam and hot water pipes, boilers, furnaces, ovens, etc., has been fully recognized and now increased attention is being given to the value of insulation in building construction; therefore, data on this subject have been included in this chapter.
Fig. 67.
.
Heat Losses from Bare Surfaces
.
'a
LOSSES FROM BARE HEATED SURFACES
The first consideration in determining whether or not pipes and other heated surfaces should be insulated is the magnitude of these losses from such surfaces if they were allowed to remain bare. Fig 67 shows the rate of bare surface losses under still air conditions in B.t.u. per square foot
186
Compiled especially for The Guide by L. B. McMillan, New York. N. Y. 187
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American Society of Heating and Ventilating Engineers Guide, 1926-27
per degree temperature difference per hour (Curve 1, Trans. A. S. H. & V. E., Vol. 26, P. 368) and the. total losses in pounds of coal per year (Curve 2). The latter is based oh 10,000 B.t.u. available per pound of coal and 8760 hours per year. Where surfaces are not heated for entire year, losses for actual period of operation may readily be obtained by multiplying values taken from Curve 2 by the appropriate proportion. This also applies to the losses in dollars per year shown in Fig. 68.
HEAT LOSSES FROM INSULATED SURFACES
Fig. 68 shows the losses from appropriately insulated surfaces compared with losses from bare surfaces. It will be noted that it was necessary to plot the upper part of the bare surface curve to a greatly reduced scale in order to show it on the same sheet with the curves for losses through insulation. Therefore, for a true measure of the relative losses from bare and insulated surfaces, compare the numerical value of the ordinates of the curves rather than the apparent spaces between the curves on the chart.
HEAT LOSS
SURFACE TEMPERATURE -DEG.FAHR.
Fig. 68.
Losses from Appropriately Insulated Sui%aces as Compared with Losses from Bare Surfaces
Note.--The scale showing Dollars loss per sq. ft. per year is based on a unit cost of $1.00 per 1,000,000 B.t.u. The actual cost is usually less than this where heat is derived directly from burning coal or oil, but may be greater where illuminating gas or electricity is the source of heat. However, the use of $1.00 as the unit greatly simplifies the use of the chart in connection with any cost per 1,000,000 available B.t.u. All that is necessary is to multiply the values from the chart by the ratio of the actual cost to $1.00. For example, if the cost of heat is $.50 per 1,000,000 B.t.u., multiply values from the chart in dollars by 0.5, etc.
188
Fig. 69.
Variation with Pipe Size of Rate of Heat Transmission Through a Given Thickness of Insulation
The chart, Fig. 68, is based on still air conditions, room temperature ,of 70 deg. fahr., and 5 in. pipe size. The effect of pipe size on losses through insulations of various thicknesses is shown in Fig. 69. (Trans. A. S. H. & V. E,, Vol. 26, p. 375).
For equations by means of which heat losses may be calculated for any thickness of insulation on any pipe size see Trans. A. S. H. & V. E., Vol. 26, p. 360. Refer also to manufacturers' data for heat losses and efficiencies of different insulations on various sizes of pipes.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
RADIATING SURFACE OF PIPES
In order to determine heat losses per linear foot of pipe from known
losses pier square foot, it is necessary to know the number of square feet
area pier linear foot of pipe. Table 86 gives these areas for various
standard pipe sizes.
.
CONDUCTIVITIES OF INSULATING MATERIALS
The conductivities, in B.t.u. per square foot per hour per inch thick per degree fahr. temperature difference, of various insulating materials are given in Table 87. It should be emphasized that in this table all variables due to differences in thickness, different pip>e sizes, and different air conditions, are eliminated.
Table 86. Radiating Surface per Linear Foot of Pipe
Pipe Size In.
Surface Sq. Ft.
Pipe Size In.
Surface Sq. Ft.
Pipe Size In.
Surface Sq. Ft.
H 'H
1
i'A i 'A
0.22 0.275 0.344 0.435 0.498
2
2H 3
3H 4.
0^622 0.753 0.917 1.047 1.178
5 6 8 10 12 .
1.456 1.734 2.257 2.817 3.338
Table 87. Conductivities of Various Insulating Materials
.
Con duc
tivity
Temp. Diff. at which Conduc tivity was De
termined
Deg. Fahr.
Authority
Year
Asbestos-Sponge Felted___ 0.468 . 300
Wool Felt.................................. 0.521
300
85% Magnesia..................... . 0.54
300
Carocel................................. ...... 0.54
300
Nonpareil H. P...................... 0.543
300
Plastic. 85% Magnesia....... 0.587
300
Asbestocel................... .......... . 0.596
300
Expanded Asbestos.............. 0.598
300
Indented.................................... 0.686
300
Molded Asbestos................-- 0.778
300
Air CelL ......................... ......... 0.802
300
Vitribestos._.............................. 1.087
300
Asbestos Fire Belt................ 1.093
300
Corkboard. .............................. 0.304
36
Hair Felt................................... 0.246
36
Trans. A. S. M. E.. Vol. 37. p. 968 "
Trans. A. S. M. E., Vol. 40, p. 667 Trans. A. S. M..E., Vol. 37, p. 968
"p " " .,, ," " " ." t-
Trans. A. S. H. & V. E.. Vol. 26, p. 406
1915 1915
1918 1915 1915
1915 1915 1915 1915
1915 1915
1915 1915
1920 1920
Table 88. Proper Thickness of Insulations for Maximum Net Saving
(Lb. Gage)
(Deg. Fahr.)
Thickness of Insulation
Pipe larger
Pipes
than 4 in. 2 in. to 4 in.
Pipes to IK in.
0 to 25 25 to 100 . 100 to 200 Higher Pressure or Superheat Higher Pressure or Superheat
212 to 267 267 to 338 338 to 388 388 to 500 500 to 600
1 in.
114 in.
2 in.
2Yt in. 3 in.
1 in.
1 in.
114 in.
2 in.
2J^ in.
* 1 in.
1 in. 1 in.
1H in. 2 in.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
ECONOMICAL THICKNESS OF INSULATION
Table 88 (Trans. A. S. H. & V. E., Vol. 26, p. 377) shows the thick nesses of insulation which will give most economical results under average conditions.
TEMPERATURE DIFFERENCE
DEG. FAHR.
Fig. 70. Heat Losses from Surfaces Exposed to Various Air Velocities
EFFECT OF AIR VELOCITY ON SURFACE LOSSES
The rate of heat loss from a surface maintained at constant tempera ture is greatly increased by air circulation over the surface. Fig. 70 (Iron & Steel Engineer, July, 1925), is based'-on Langmuir's equations (Trans. Am. Electro. Ckem. Soc., Vol. 23). Other investigators have shown even greater increases in rates of heat loss from bare surfaces due to air velocity.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
EFFECT OF AIR VELOCITY ON
LOSSES FROM INSULATED SURFACES
In the case of well-insulated surfaces the increases in losses due to air velocity are very small as compared with increases shown above, for bare surfaces, because of the fact that air flowing over the surface of the insulation can increase only the rate of heat transfer from surface to air, and cannot change the internal resistance to heat flow inherent in the insulation itself. The maximum increase in heat loss due to air velocity ranges from about 30 per cent in the case of 1 in. thick insulation, to about 10 per cent in the case of 3 in. thick insulation, provided that the insulation is thoroughly sealed so that air can flow only over the surface. If the conditions are such that the air may circulate through cracks and crevasses in the insulation, the increases may be far greater than those given above. Therefore, it is essential that insulation be sealed as tightly as possible. Pipe insulation out of doors should Be provided with a weatherproof jacket, and other outdoor insulation should be thoroughly weatherproofed.
HEATING CONDUITS
When steam pipes are run between buildings they should be placed in some form of waterproof conduit which will withstand earth loads and take care of the expansion and contraction of the piping without strain or stress on the couplings, and without affecting the insulation or conduit. Expansion of the piping must be carefully controlled by means of anchors and expansion joints or bends so that the pipes can never come in contact with the conduit. The anchors used are usually U-shaped steel straps which partially encircle the pipes and are firmly bolted to a short length of structural steel set in concrete.
TEN IMPORTANT POIN'A ABOUT INSTALLATION
In laying out conduits of this type the following points should be borne in mind:
1. The conduit should be laid out in successive straight runs between manholes or anchor pits.
2. An anchor should be placed wherever the line changes direction.
3. An expansion joint or bend must be placed between each two anchors.
4. Manholes should be provided at each expansion joint. Where slip joints are used manholes should be vented.
5. Branches should be taken off at or near an anchor.
'
6. If the distance between buildings is less than 150 ft. and the steam line contains high pressure steam, it may be anchored in the basement of one building and allowed to expand into the basement of the second building. If the steam line contains low pressure steam (up
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American Society of Heating and Ventilating Engineers Guide, 1926-27
to 4-lb. pressure), this method may be used if buildings are less than 250 ft. apart.
7. If the distance between buildings is between 150 ft. and 300 ft. and the steam line contains high-pressure steam, the lines should be anchored midway between the buildings and allowed to expand into the basements of both buildings. If the steam line contains low-pressure steam this method may be used if buildings are between 250 ft. and 500 ft. apart. No manhole is required at the anchor, and a blind pit is all that is necessary.
8. For longer lines manholes must be located according to judgment and depending upon the expansion value of the type of expansion joint or bend that is used. The minimum number of manholes will be required when an expansion bend or an anchor with double expansion joint is placed in each manhole, and the pipes are anchored midway between manholes.
9. Stabilizers to maintain alignment of pipes should be placed on
each side of each expansion bend.
.
10. A proper hydrostatic test should be applied to the piping before top of conduit is applied and before application of insulation. The pressure used in this test should be greater than the pressure used in service, and should be not less than 100 lb. per square inch in any case.
STYLES AND CONSTRUCTION OF CONDUITS COMMONLY USED
Filler Type.--The pipes are supported on rollefs placed on a steel rod which rests on,an iron frame. The frame is set on a concrete or mortar base. The pipes are protected by a split tile conduit, and the entire space between the pipes and the tile is filled with an insulating filler. Thus the pipes are nested and the insulation between them and the tile effectively prevents circulation of air. The conduit is placed on a bed of gravel or crushed rock from 4 to 6 in. thick, which is extended upward so as to come about 2 in. above the parting lines of the tile. A tile underdrain is placed beneath the conduit throughout the entire length and is connected to existing sewers led to some other point of free discharge.
Insulated Tile Type.--The insulating material, which is diatomaceous earth, is molded to the inside of a split tile conduit. The pipes are sup ported on rollers, which in turn are supported by an iron frame "which extends through the conduit-and rests on a tile base which also serves as an underdrain. The space between the pipes and the insulating' conduit lining may also be filled with an insulating filler. The conduit, insula . tion, piping and earth load are supported by the base drain. A few inches of gravel or crushed rock are placed about the conduit and the base drain.
Sectional Insulation Type (Tile Conduit)..--Each pipe is insulated in the usual way with any desired type of sectional pipe insulation over which is placed a jacket of standard asphalt waterproof roofing with cemented joints. The pipes are enclosed in a split tile conduit which is placed on a bed of crushed rock or gravel from 4 to fi in. thick. This
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American Society of Heating and Ventilating Engineers Guide, 1926-27
j
gravel bed is extended upward so as to come about 2 in. above the parting
lines of the tile. Underdrains are sometimes omitted where this type
is used, any water which seeps into the conduit being allowed to flow
down the bottom of the conduit to the nearest manhole. Drains are
laid from the floor of each manhole to some point of free discharge. The
pipes are supported on roller frames and these, according to the type of
conduit used, are either supported by the conduit itself or have their
lower parts set in concrete thus supporting the pipes independent of
the conduit.
.
Sectional Insulation Type (Tile or Concrete Trench).--In a type of ' construction frequently used in city streets, where service connections
are required at frequent intervals, the pipes are insulated as described in the preceding paragraph, and are enclosed in a box or trench made either entirely of concrete, or with concrete bottom and specially constriicted tile sides and tops. The pipes are supported on roll frames
secured in the concrete.
Sectional Insulation Type (Bituminized Fibre Conduit).--Each pipe is individually insulated and encased in a bituminized fibre conduit, The insulating material is 85 pier cent carbonate of magnesia sectional pipe covering, applied in the usual manner as on overhead pipes, except that bands are omitted. After every fifth section of magnesia covering there is applied a short, hollow section of very hard asbestos material in the bottom portion of which rests a grooved-iron plate carrying ball-bearings upon which the pipe rides when expanding or contracting. This short expansion section is of the same outside diametei^as the adjacent 85 per cent magnesia covering. Over the pipe covering and expansion device there are placed two layers of bituminized fibre conduit with all joints staggered and the surface of each conduit finished with liquid cement. Conduits are placed on a bed of crushed rock or gravel, approxi mately 6 in. deep, and this is extended upward to about the center line of the conduit when trench is backfilled- Underdrains leading to points . of free discharge are placed in the gravel or crushed rock beds.
Wooden Conduit.--Each pipe is enclosed in a tin-lined wooden casing. Sufficient space is allowed between the pipe and the casing to provide for the insertion of pipe guides or' rollers which rest on the bottom of the casing. The casings are bedded in gravel or broken stone and one or more tile underdrains are laid beneath them. .
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BUILDING INSULATION
Through the use of insulating materials in building construction, the losses through such constructions are greatly decreased; therefore, the saving in fuel, also the effect on the heating equipment required are of considerable interest.
Fig. 71, section A shows the reduction in heat losses through frame building construction, due to insulation of various degrees of effectiveness. The topmost point on the curve represents the rate of heat loss through construction consisting of clapboards, paper, sheating, studs, lath and plaster, but without insulation. If insulation is used in addition to the construction outlined, the rate of heat loss through the entire wall is given by the ordinate of the curve at the point on the horizontal scale
. 194
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American Society of Heating and Ventilating Engineers Guide, 1926-27
.
corresponding to the resistance of the insulation added. The curve may therefore be used in connection with any insulating material by determin ing its resistance for the thickness under consideration. In the accom panying tabulation are given the resistances per 1 in. thick of several well known materials. For thicknesses other than 1 in., multiply the value from the table by the thickness in inches. (In case the insulation completely fills the space between the studs, so that there is no air space, subtract 1.0 from the total resistance so obtained, conversely when the insulation is so placed as to provide an additional air space, add 1.0 to the total resistance.)
Insulation of frame building walls often produces a greater reduction in heat losses than the estimated values because of the increased tightness of the construction against air leakage.
Fig. 71. Effect of Insulation in Reducing Heat Losses through Walls and Roofs
ROOF INSULATION
.
Fig. 71, section B shows the effect of insulation in reducing the losses ^through concrete roof slabs. The topmost point on each curve represents the rate of heat loss through the given thickness of slab, with built-up roof, but without insulation. In order to determine the rate of loss through the roof construction, when any given thickness of insulation is added, determine the resistance of the insulation by multiplying the resistance per 1 in. thick, by the thickness in inches. The ordinate of the curve at the point on the horizontal scale, corresponding to the resistance so determined, gives the rate of heat loss through the entire construction.
In addition to reducing the fuel and heating equipment requirements, one of the most important functions of roof insulation is that it greatly reduces the temperature differential between the lower side of the'roof
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American Society of Heating and Ventilating Engineers Guide, 1926-27
slab and the air of the room. Therefore, by maintaining the temperature of the surface above the dew point of the air in the room, insulation is very effective in correcting condensation troubles.
Insulation Resistances of Various Building Insulations
Keystone Hairfelt............... Cork.__.........................;.........
Cabot's Quilt............. ,........ Flaxlinum...........;.................. Fibrofelt................................ Celotex.................................. . Lith Board............................ Insulex---12 lb. per cu. ft.. Insulex--20 lb. per cu. ft.
Material
Resistance per
3.69 3.24 3.12 3.04 3.04 2.67 2.64 2.5 1.6
Thick
t
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PART II
Chapter XV
VENTILATION
VENTILATION is the science which has to do with the maintenance of such indoor air conditions as are most conducive to proper health and comfort. Practical ventilation results may mean anything from the very best to the very poorest in quality and from the maximum to nothing in quantity. Ventilation perfection is, however, a very definite thing which may be defined as follows:
That atmospheric condition in every part of indoor space occupied by human beings which is continually maintained with a proper amount of oxygen; free from dust, bacteria, objectionable odors, poisonous and other objectionable substances; with suitable air movements and at the temperature and humidity quality shown within the zone of human comfort as defined by the joint research work of the American Society of Heating and Ventilating Engineers, the United States Bureau of Mines and the United States Public Health Service.
Taking this as the highest aim of ventilation and calling it 100 per cent the other extreme of 0 per cent of ventilation may be defined as follows:
That atmospheric condition in any part of indoor space occupied by human beings where one or more of the above enumerated factors is or are maintained so as to separately or collectively inflict death or permanent injury upon human beings.
Between these two extremes are the wide range of conditions met with in practice. ' Good ventilation may be defined as follows:
That percentage of perfection of the above factors which is warranted by the require ments of human health, comfort and efficiency on the one hand and expense and labor to produce these conditions (wherever they do not naturally exist) on the other.
The science of ventilation began its existence with, and is still growing out of, the fact that wherever human beings assemble within an enclosed space the atmosphere within this space will become vitiated, unless proper provisions are made to prevent it. It is the difficulty of deter
mining and applying these proper provisions of prevention that has kept
. physiologist and ventilating engineers busy for so many years endeavoring
to produce something like satisfactory results.
.
The commonly accepted usage of the term vitiated atmosphere has for a long time continued to designate conditions which cause unpleasant, uncomfortable or unhealthful physiological reactions, but our 'inter
pretations of the true causes and meanings of these reactions have
undergone many vital changes with the progress of the art and our
growth in its knowledge.
,
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American Society of Heating and Ventilating Engineers Guide, 1926-27
In other words the physiological effects of poor ventilation have con tinued to manifest themselves in much the same way but our knowledge of these manifestations are continually changing.
Among the effects, which have received the greatest amount of study and which are now generally recognized as direct results of poor ventila tion, are the following: Drowsiness, headache, loss of physical vitality, feeling of suffocation, temperature discomfort, brain fag, irritation of the membranes of throat, nose and lungs, infection, drying and cracking of and the causing of unnatural discharges from these membranes, disagree-, able odors, loss of appetite, nervousness and general nausea.
OLD VENTILATION THEORIES DISCARDED
It is only within the last 20 years that all of these manifestations of poor ventilation have been definitely recognized and the present era of ventilation started. Prior to this time practically all artificial ventilation was attempted on what might be termed a quantity basis. This, on the . theory that the carbon dioxide exhaled by persons in an occupied space was the primary cause of such of these manifestations as were then recognized. As a result of this theory it was believed that the all important thing about ventilation was the quantity of air necessary to be brought in from the outside in order to maintain an atmosphere containing not more than 10 parts of carbon dioxide per 10,000 parts, by volume, within any properly ventilated space.
This, as the basic theory of artificial ventilation, has long been deposed and discredited among engineers, scientists and physiologists, but there are those who still cling to this theory, either in its original form or in one of its many modifications. When it was first learned that the quantity . of carbon dioxide ordinarily found in even poorly ventilated spaces could not, of itself, be entirely responsible for the unsatisfactory conditions met with under such circumstances, the possibility of other causes began to be seriously investigated. There followed a period in which it was believed that some form of poisonous effluvia was exhaled with the human breath and that this was responsible for the vitiation of the atmosphere within spaces occupied by human beings.
. Later this idea was disproven and then it was believed that something might be excreted from the pores of the skin or that small particles might be given off from the body or the internal membranes so that the atmosphere became thus contaminated with matter, which upon decom position formed toxins or poisons to cause the effects noted. This rather fanciful theory was soon discredited, however, and then began the real study of the subject which has finally brought the conclusions upon which work is now being done.
QUALITY VS. QUANTITY
It may be noted here that the basic idea of ventilation today is quality rather than quantity, or the proper conditioning and distributing of a small quantity of air by efficient compact means rather than the poor conditioning and poor distributing of larger quantities with apparatus too cumbersome and expensive to be kept in operation.
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THE PRESENT STATUS OF VENTILATION
The result of all of this has brought us down to the present status of the art where it is no longer felt that the chemical composition of the air is the important factor but that proper ventilation depends more largely upon a number of other factors which may be stated in the order of their
importance as follows:
1. Air Supply
2. Air Temperature 3. Air Cleanliness in reference to its freedom from dust and other suspended matter 4. Air Sanitation with reference to its freedom from bacteria
5. Relative Humidity
. 6. Distribution
7. Air Motion
8. Freedom from odors
9. Freedom from other injurious sub stances.
10. Freedom from monotony, with ref erence to noise and too much regularity of indoor conditions
Air supply is still put at the head of the list for the simple reason that while this is no longer considered to be the all important factor in ventila tion the amount of air to be supplied per person or the number of air changes to be furnished for any particular space will always be the starting point, for without air supply there can be no artificial ventilation. .
The air supply is so vitally effected by the other factors mentioned that it cannot be determined independently and it will be seen that while this
item is placed at the head of the list for the reason that it is the natural vehicle upon which the structures is carried, its importance beyond this
point becomes subordinate to these other factors.
Air temperature is second for the reason that it has been proven by practically all of the accredited experimenters that over-heating is more detrimental to the quality of ventilation than any other one thing.
Air cleanliness is third for the reason that it has to do with human health both from the standpoint of freedom from dust and other suspended substances, which irritate and clog the. air passages, and from the stand point of freedom from bacteria and other infectious media carried along
with these substances which constitute the dirt in air.
Air sanitation is fourth as it also has to do with human health and is
correlated with the third item.
'
Relative humidity is fifth, not because it is of so much less importance than air supply and temperature but because it also bears such an inti mate relationship with these two items that it receives a part of its due consideration in their determination. This will be further referred to in
connection with air supply and air temperature in connection with which
other factors are involved.
Distribution is sixth for a similar reason, for while it occupies a much
more important place than this position might indicate, it is so closely
allied with the effective air supply that it receives a part of its considera
tion therewith.
Air motion is seventh in the same way, as it too receives a certain amount of its consideration in connection with effective temperature.
Freedom from odors is eighth for the reason that while odors may become quite disagreeable'and even nauseating they are seldom dangerous or
permanently detrimental to health.
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Freedom from other injurious substances is ninth, not because this might not be of more importance but because these substances are met with so seldom in ordinary ventilating practice and must be practically eliminated in any case.
-Freedom from monotony is tenth because it has to do with the last refinements and the psychology of ventilation only.
These were the first two steps in the new era of ventilation, first--the
discovery and admission of our ignorance and second--the recognition
of these important factors.
The next step was to determine what bearing each of these factors had upon ventilation and to devise some means of expressing them in definite and comparable terms.
This work was undertaken by Dr. E. Vernon Hill, who assisted by
O. W. Armspach, devised the Synthetic Air Chart which provides a
method of determining the degree or effectiveness of ventilation in a
room or building.
The synthetic air chart which was adopted as the Society's standard in 1920 is a convenient means by which the ventilating engineer can deter mine the percentage of perfection of ventilation in any occupied space. The percentage Qf perfection desirable depends upon the purpose for which the room is .occupied. Dr. E. Vernon Hill suggests the percentages indicated in Table 89 as minimum lequirements.
Table 89.
E.Dr.
Vernon Hill's Recommended Percentages of Ventilation
Perfection for Different Classes of Buildings when Tested According
to the Synthetic Air Chart
Schools
New Buildings Per Cent
Existing Buildings Per Cbnt
Class Rooms...............................................................................
95
Manual.Training Rooms........................................................
90
Domestic Science Rooms........................................................
90
Assembly Rooms.......................................................................
90
Toilet Rooms............................................................................. . 85
Corridors.....................................................................
......
85
90 . 85 85 85 80 80
Churches.....................................................................
......
85
80
Hospitals
Wards........................................................................................... Operating Rooms..................................................................... Other Rooms.. ........................................... ............................
95. 98 90
90 93 85
Theatres
Seating Sections......................................................................... Dressing Rooms, etc................................................................
90 85
85 80
Dance, Lodge and Assembly Halls.....................................
88
83
Office Buildings
Offices in office buildings or other buildings where persons are continuously employed...............................
90
85
Factory Buildings
The percentage desirable for factory buildings will vary over a considerable range, depending upon the character of the work and of the process employed, modified to a considerable degree by the dust content of the air and the possibility of maintaining
it free from objectionable dust and fumes. This will require a careful classification
and considerable study.
.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
FIVE CLASSIFICATIONS FOR EQUIPMENT
Engineering data is available for designing to meet these requirements. The following five classes of equipment suggested by Dr. Hill will give the percentage of perfection indicated when properly proportioned.
Class A--100 per cent equipment.--A mechanical supply and exhaust system consisting of the following:
1. Positive air supply having a maximum capacity of 30 c.f.m. per occupant. 2. Mechanical exhaust equipment with exhaust registers effectively located.
3. Perfect air distribution. 4. Accurate automatic temperature control. 5. Efficient humidifying devices. 6. Accurate automatic humidity controlling apparatus. 7. Efficient air washers, filters or other air cleaning devices, having an efficiency not less than S9 per cent.
It is understood that a 100 per cent efficient equipment is an impossibility owing to the fact that to secure a 100 per cent result would necessarily mean that air cleaning devices be 100 per cent efficient; that temperature and humidity control maintain temperature and humidity conditions absolutely on the comfort curve; that air distribution be perfect, etc. All these results cannot be obtained although a 99 pier cent apparatus and an approximately 99 pier cent test by the Synthetic Air
Chart is possible.
Class B--95 per cent equipment.--Mechanical supply consisting of the
following:
\
1. A positive air supply with a maximum capacity of 30 c.f.m. per occupant. 2. A well designed gravity exhaust system. . 3. Efficient air distribution. 4. Accurate temperature control. 5. Adequate humidifying apparatus. 6. Adequate humidity control.
Air cleaning devices have been omitted in the 95 per cent equipment as this percentage can be obtained under ordinary conditions without air washers or filters. In an exceptionally clean locality, much higher per centages can be obtained.
Class C--90 per cent equipment.--A mechanical supply system con sisting of the following:
1. An adequate air supply with 30 c.f.m. per occupant. 2. Gravity exhaust. 3. Efficient air distribution. 4. Automatic temperature control. 5. Adequate humidifying apparatus.
6. Humidity control in the main duct only or from-a typical room.
_
Note.--Synthetic Air Chart--The final form of the Chart and the text will be revised and comfort based upon the equivalent temperature curve rather than on the wet bulb.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Class D--85 per cent equipment.--A mechanical system consisting of the following:
1. An accurate air supply with a maximum capacity of 30 c.f.m. per occupant. 2. Gravity exhaust or exhaust openings. , 3. Good air distribution. 4. Automatic temperature control.
Class E--80 per cent equipment.
1. A positive air supply with gravity exhaust but without air cleaning devices, humidifying apparatus, temperature or humidity control.
2. Direct-indirect systems with either mechanical or gravity exhaust. 3. Open window or other so-called natural systems of ventilation.
A comprehensive discussion of the requirements of ventilation
has been published1 which suggests the following quantities of air to ^
be supplied, under different conditions, to space used for various purposes
as given in Table 90:
'
Table 90. Amount of New Air to be Supplied per Person1
Cubic Feet'per Minute
Without Humidification
or Recirculation
With Humidification
but Without
Recirculation
With Humidification
and Recirculation
Number
of Aik Changes
per Hour
Schools-- Class Rooms...........................
. Assembly Rooms___ :......... Gymnasiums........................... Toilets. ................................... Locker Rooms....................... Kitchens............. ................... Lunch Rooms........................
Theaters-- Seating Space.........................
Hospitals-- Wards.......................................... Kitchens........................ ........... Dining Rooms....................... Toilets. .....................................
Hotels-- Dining Rooms....................... Kitchens.................................... Ball Rooms.............................. Work Space............................. Assembly Rooms.................
30 15 to 20
30
30 to 50 30 to 40
20 to 30
20 10 to 15
25
5 to 10 5 to 10 15 to 20
20 to 30 . 20 to 30
10 to 15
15 to 20
10 to 15
10 to 20 5 to 10
20 to 60 10 to 20
20 to 60 10 to 20 10 to 20
10 to 15 20 to 60
5 to 10 5 to 10
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VENTILATION REQUIREMENTS
In a crowded place of assemblage the heat given off by the ^ccupants together with that given off by the lighting and power equipment is usually more than the normal heat loss through the structure to the
lModern Trend in the Science of Ventilation, Perry West, Transactions, American Society of Heating and Ventilating Engineers, Vol. 30, 1924.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
outside air, even in winter under cold climatic conditions. This means
that in order to preserve an equilibrium of effective temperature the
entering air must be cooler than the leaving air, so that the problem is
usually one of cooling and ventilating rather than of heating and venti
lating.
*
A typical case for winter might show about 300 B.t.u. of body heat plus 100 B.t.u. from light etc., being given up to the building against 200 B.t.u. heat loss from the building, per person per hour. This would mean that 200 B.t.u. per person must be carried away by the air (see p. 29, Chapter I).
If the flow of air is upward, or from the side, so as to bring the incoming air into direct contact with the occupants the temperature of the incoming air should not be more than 5 deg. below the temperature of the air leaving the occupant (for ceilings 10 ft. or less in height) otherwise the ventilation will be drafty and uncomfortable. This difference may be .increased 1 deg. for each 2 ft. of added ceiling height provided the rising air does not come into direct contact with another tier of occupants.
For 10 ft. and lower ceilings the quantity of air per person to dissipate
. 200 this excess heat 15 60 X .02 X 5
33 cu. ft. per person per. min.
This amount may be reduced somewhat on the assumption that the component of heat from lights is usually introduced near the ceiling and may be allowed to heat the outgoing air to a greater difference.
. In the practical work of engineers who design ventilating systems and of architects and owners who have to pass up on these systems, the one item involving standards which is the basis of all calculations and layouts, is the quantity of air to be handled by the system to be used, for producing the results desired. The functions of the air handled in connection with ventilated Spaces are: (1) to supply the necessary oxygen for respiration, (2) to keep the dilution of C02 and other objectionable substances down to the proper point, and (3) to maintain the proper effective air tempera ture. It has been estimated that an adult at rest will breathe 0.25 cu. ft. of air per minute and exhale 0.01 cu. ft. of CO, in the same period or at the rate of 0.6 cu. ft. per hour, thus removing about 5 per cent of the oxygen from the air breathed. The same air may be rebreathed for a limited time without apparent harmful affect but discomfort is evident. However air may be filtered, washed, cooled and recirculated with evident satisfaction. This was demonstrated under the stimulus of war time conditions and with the development of better equipment.
91.Table
Air,Required for Various Percentages of Ventilation Perfection
Percentage op Perfection
98% 96% : 94% 92% 90%
Co. Ft. op Air per Minute^ Required per Person at Rest
15.0 7.5 5.0 3.75 3.0
'
--
Cu. Ft. op Air per Minute Required per Person at Hard Work
30.0 15.0 10.0
7.5 6.0
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American Society of Heating and Ventilating Engineers Guide, 1926-27
The air handled may consist entirely of air taken in from the outside or it may consist partly of new air and partly of recirculated air. On the basis that the air brought in from the outside is for oxygen supply and dilution only. The following cubic feet per minute per person would be required for the ventilation percentages shown, if all other factors are 100 per cent perfect.
In theatres, assembly rooms, auditoriums and other places of public amusement and assemblage there are usually several other factors to consider, such as the removal of excess heat, excess moisture, dust raised by the movement of the occupants and odors.
EFFECT OF HIGH TEMPERATURE AND HUMIDITY
For 85 deg. outside air and 70 per cent relative humidity in the summer the percentage of perfection would drop to 57 per cent without any change in the air from outside conditions.
Assuming that the air supply is 30 cu. ft. per person and that the body
heat and heat from equipment will raise this 5 deg. Also that the vapor
added per person is 10 grains per min. or 0.33 grains per cu. ft. of air
handled, the effective temperature difference will be raised about 20, so
that the percentage of ventilation, would drop about 5 more, leaving 52
per cent ventilation. It will be seen, therefore, that it would be difficult
to get better than 40 to 60 per cent ventilation in summer without some
method of air cooling. .
.
Air motion will assist but unless increased beyond the usual 10 to 20 ft. per minute ordinarily obtained from the movement of the air through the room it will not improve the percentage of ventilation more than 1 to 2 per cent. By the use of refrigerating and dehumidifying apparatus the effective temperature can be maintained at any desired percentage of perfection.
The use of a good air washer should reduce the temperature about 70 per cent of the difference between the wet and dry bulb temperature. This for the case cited would reduce the effective temperature difference about 2 deg. corresponding to an increase of 5 per cent in the final per centage of the ventilation.
It will be understood that the example cited is an extreme case of temperature and humidity and that the final percentage will be improved by the air washer in a greater proportion if the relative humidity of the outside air is lower.
For a condition of 80 deg. dry bulb and 50 of relative humidity, the percentage for the entering air would be 77 per cent, the percentage leaving the occupants would be 70 per cent and the air washer would improve this to 81 per cent.
Assuming that 90 per cent ventilation is desired for places of assem blage, that distribution will be 75 per cent, dust 96 per cent, bacteria 98 per cent and odors 85 per cent, there will be a deduction of 1 per cent for dust plus 1 per cent for bacteria plus 1.5 per cent for odor making a total of 3.5 per cent and leaving a deduction of 6.5 per cent for effective temperature plus effective air supply.
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American Society, of Heating and Ventilating Engineers Guide, 1926-27
Assuming that the effective temperature can be controlled in winter to within 1 deg. above or below the comfort line there would be a deduc tion of 2per cent for this, leaving a deduction of 4 per cent for effective air supply. With 75 per cent distribution this would leave 3 per cent deduction for COa, corresponding to an air supply of 10 cu. ft. per min. per person.
It will be seen then that 10 cu. ft. of air taken in from the outside, per person per minute, is sufficient for winter conditions but inadequate for summer weather, where heat and humidity are the determining factors, unless refrigeration is used. ' Increasing the air supply from 10 to 50 cu. ft. per person per minute gives little improvement unless some form of artificial cooling is used.
SUMMER CONDITIONS
It would seem that about 75 per cent ventilation is possible under ' reasonably severe summer conditions with an air supply of 30 cu. ft. per person, using an air washer, and that beyond this point there is little to be gained by increasing the air supply. The figures given are based on upward ventilation and that the cooling effect of from 5 to 10 deg. with air washers and of perhaps twice this amount with refrigeration will produce uncomfortable drafts on the occupants at times.
For this reason and for the additional reasons of sanitation and control, the downward system of ventilation is perhaps more efficacious in large and intensely used places of assemblage.
On account of transporting all of the heat from lights downward and of forcing the body-heated air back over the occupants it is usually necessary to do much more cooling of the air than can be done with the air washer, without refrigeration. On the other hand the air is brought in high enough to permit of its being diffused and brought to the proper condition before coming into contact with the occupants. It can be seen, there fore, that the air supply per person per minute for assembly-rooms could be 10 cu. ft. in winter, 30 cu. ft. in summer with air washers and anywhere between these two figures for the entire year with refrigeration.
Also that nothing better than about 75 per cent ventilation can be obtained in hot sultry summer weather without artificial cooling, but that with such cooling especially if the air supply is taken from over head and exhausted from below, most any desired percentage of perfec. tion can be maintained.
RECIRCULATION
.
The foregoing does not take into consideration the matter of recircula tion, but it can readily be seen that there is little to be gained by recircu lation unless an appreciable amount of COa and attendant impurities which get into the air can be taken out during recirculation. The handling of the larger quantity of air may be of value either to produce air motion or. for use as a better cooling medium with less temperature difference between incoming arid outgoing air. Recirculation may also be used as a purely economic feature during the warming up of the building or during
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American Society of Heating and Ventilating Engineers Guide, 1926-27
periods when the space is only partly occupied and the mechanical
arrangements are inadequate for properly varying the quantity of air
handled to suit.
'.
A good arrangement is to provide, apparatus for handling 30 cu. ft. of air per person per minute with provisions for recirculating any amount up to as much as two-thirds of this.
The percentage of air recirculated may be varied to suit the seasonal changes so as to conserve heat in winter and refrigeration in summer. The schools where the requirements are not so severe and it is not neces sary to provide for summer conditions as much as 90 per cent of the air can be successfully recirculated. The use of ozonation for eliminating odors and for otherwise refreshing the air is advisable wherever recircula tion is regularly and intensively employed (see Chapter XXIII, p. 265).
Present methods of measuring and comparing qualities of ventilation
. not taking into account any of the functions of the relative humidity of the
air except that bearing upon effective temperature. This means that air
of any temperature and relative humidity, within proper physical range,
i.e., below 64 deg. wet bulb, may be made to meet the comfort line by
either heating or cooling without addition or deduction of moisture.
'
Absolutely dry air may be heated or cooled to 78 deg. and be 100 per cent perfect as far as effective temperature is concerned and still be far from desirable in its effects on the membranes of nose, throat and lungs. Such dry air is also very conducive to the increase of dustiness in the atmosphere of a room from the standpoints of dryness and electrostatic agitation.
The air washer and humidifier correct these difficulties and there should be some definition of limits for the relative humidity in the measure of ventilation.
It is not unusual to find from 1 to 2 million particles of dust per cu. ft. in the outside air surrounding city buildings and unless this is eliminated it will give dust counts in rooms equivalent to a deduction of from 5 to 20 per cent in the perfection of ventilation.
A good air washer should eliminate 80 to 90 per cent of the dust entering the intake and perhaps reduce the dust penalty in the rooms to less than one-half of the figure given. It will be seen, therefore, that air washing and humidification may improve the quality of ventilation about 10 per cent in the effective temperature department, plus another 10 per cent in the dust department, plus other improvements in the quality of ventilation by maintaining proper humidity and removing other injurious substances and odors.
Where effective temperature is controlled, according to the usual method, from the dry bulb temperature in the room there may be a wide variation in this effective temperature due to the varying amounts of moisture in the air, unless humidifying apparatus with accurate humidity control is employed. Between the condition of absolute dry air at 70 per cent and absolutely saturated air at 70 deg. there is a difference of 10 deg. in effective temperature which means an average difference of 25 per cent in the quality of, ventilation. This may be taken to mean about 10 per cent on each side of the neutral point for ordinary ventilating
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American Society of Heating and Ventilating Engineers Guide, 1926-27
conditions so that the air washer and humidity should improve the ordinary ventilating plant another 10 per cent on this count.
Good dry air filters will of course serve the same purpose for cleaning the air of suspended matter, and may improve the ventilation about 10 per cent.
SCHOOLS REQUIRE SPECIAL CONSIDERATIONS
In connection with the ventilation of schools the condition in the class rooms for average winter weather is that the body heat given up to the room from .the occupants is less than the heat loss from the building to the outside air so that -the incoming air may be maintained at a higher temperature than that of the air surrounding the occupants. This means that the effective temperature may be controlled within 1 deg. above or below the comfort line.
Assuming that 95 per cent ventilation is required for class-rooms, that the distribution is 85 per cent and there is no deduction for dust, bacteria or odors, could have a deduction of 85 per cent of 2.5 per cent which is equivalent to about 2 per cent for C02. This would mean 15 cu. ft. of air per pupil per minute.
The usual requirements of state laws is 30 cu. ft. per pupil which would mean a deduction of 1 per cent for C02 leaving a 4 per cent deduction for effective temperature, dust, bacteria and odors.
Allowing a deduction of 2j/ per cent for effective temperature there would be a possible deduction of 1J4 per cent for these other items. It will depend therefore upon the quality that can be maintained for these other items as to the actual quantity.of air required between 15 and 30 cu. ft. per minute pier pupil.
Where intensive recirculation is employed the extent of the recircula-' tion will depend on the quantity of C02, odors and other objectionable factors which can, be removed from the recirculated air and also upon the ability to keep the relative humidity from rising to an undesirable point on account of the vapor given up to the air by occupants of the building.
The ventilation of school auditoriums where the occupancy of the rooms is of a relatively short duration of from 1 to 2 hours the initial air in the rooms may be relied upon to reduce the intensity of ventilation re quired so that from 15 to 20 cu. ft. of air per person.per minute is usually sufficient. Imthe ventilation of hospitals the wards may be treated much the same as the class-rooms of a school with the exception that it is inadvisable to use recirculation on account of the danger of contagion.
School toilets should be separately ventilated with an air change of from 2 to 5 min. employing mechanical supply and exhaust with the exhaust in excess of the supply in order to prevent objectionable odors from diffusing into other parts of the building.
Kitchen and lunch rooms should be ventilated with about a 5 min. air change for lunch rooms and akl to 3 min. air change for kitchens with at least a part of the exhaust taken from the lunch rooms through the kitchen so as to keep all of the air travel towards the kitchen, thus preventing the kitchen odors from diffusing into the lunch rooms.
207
...
American Society of Heating and Ventilating Engineers Guide, 1926-27
Exhaust from kitchen range hoods should be discharged by a separate exhaust fan through a fireproof metal duct extending above the roof of the building and provided with automatic fire damper and steam jet fire extinguisher for use in case of emergency as the accumulation of the grease vapors in this flue frequently cause a fire.
After a good ventilating system is designed the engineer is only .fairly well started on the road to good ventilation. A system is not a ventilating system until it ventilates. Here is where the operating man and proper supervision come in. Of all the things that go to make up success or failure these two are the most important. The one who lays out the plant should supervise, not only its installation, but testing, and watch it until it is operating properly. Beyond this.it must be kept in the hands of competent operators under the right supervision. Then and not until then, will good ventilation be obtained.
208
Chapter XVI
THE HILL SYNTHETIC AIR CHART
PERFECTION in ventilation depends upon the condition of the air in a room as affecting health and comfort rather than upon the quantity of outside air supplied. The known conditions of air which may affect human health and comfort are its temperature, humidity, air motion, dustiness, odor, bacterialogical content and carbon dioxide content.
The synthetic air chart, devised by Dr. E. Vernon Hill, and revised as a result of investigations by the Society's Research Laboratory is the accepted standard for grading the perfection of ventilation in any room by the conditions of the air itself.
According to the synthetic air chart Fig. 72 each of the conditions of the air which affect human health is rated in percentage of perfection in a separate column. The percentage of perfection as regards each factor is indicated by the height of the shaded area in that column. The per centage of penalization for imperfection as regards that factor is given by the difference between 100 per cent and the indicated per cent of per fection. The effect which the penalization for each factor will have on the composite penalization for all factors of ventilation of the room is given at the right hand side of the column. The sum of the penalizations for each , of the factors as given in the right hand side of the various columns is taken as the total percentage of penalization representing the imperfection of ventilation for the room. The percentage of perfection of ventilation is 100 per cent minus this total and is indicated by the height of the shaded area in the last column to the right. The percentage of perfection for any factor is determined by crediting an ideal condition with 100 per cent and a condition impossible for life with zero per cent perfection. In other words, a condition, as pertains to any one of the five factors, that will produce death or permanent disability is rated at zero per cent perfect.
CONDITIONS OF MAXIMUM COMFORT
Temperature Humidity and Air Motion.--A person's feelingof warmth is determined, by the temperature, humidity and motion of the air. A single index of a person's feeling of warmth is given by a scale of effective temperature, which takes into consideration these three factors. This scale of effective temperature (abbreviated E. T.) has been determined by the Society's Research Laboratory and is discussed in Chapter XVII. For the average human being at rest an effective temperature of 64 deg. gives maximum comfort. Persons working 'at- various rates are most comfortable at effective temperatures below 64 deg. The exact effective temperatures giving maximum comfort for persons working at various
_ 209
American Society of Heating and Ventilating Engineers Guide, 1926-27
rates have not yet been determined by the Research Laboratory but from the best data available, they are as follows:--
At rest.......................................................................................1-64 deg. E. T. Light Work................................................................................. 62.5 deg. E. T. Moderate Work.....................................'......... ............. .......... 62 deg. E. T. Hard Work................................. ................................................ 59.5 deg. E. T.
One hundred per cent perfection in ventilation, for people at rest exists when the effective temperature is 64 deg. Life is impossible for any
considerable length of time in an effective temperature of 97fd deg. and a condition having this effective temperature is therefore, rated zero" per cent perfect, is penalized 100 per cent as regards this factor and 90 per cent for imperfection in ventilation. The penalization for variation in temperature from the ideal is therefore 3 per cent per deg. E. T. It will be noticed that this will give zero per cent perfection for 31 deg.--a condition at least nearly impossible for life for a person normally clothed and at rest.
210
American Society of Heating and Ventilating Engineers Guide, 1926-27
Dust.--Dust is inimical to health and comfort. It is, however, more difficult to arrive at a basis of penalization since it is hard to say that any degree of dustiness is impossible for life. Dust free air is 100 per cent perfect and 250,000.particles per cu. ft. of air as determined by the Hill counter is considered zero per cent perfect, or is penalized 100 per cent as regards the dust factor and 25 per cent for imperfection of ventilation. The percentage of perfection is. reduced by 1 per cent for each 2500 particles.
Odors.--In the case of odors it is even more difficult to arrive at a basis for penalization. The following arbitrary scale has been adopted:--
Free from odor......................................... ......... 100 per cent perfect Very faint odor................................................ :.... 95 " " " Faint odor... ......................................................... 90 " " " Noticeable odor.................................................... 85 " " " Distinct odor........................................................ 80 " " " Decided odor................................... :........... ........ 75 " " " Strong odor.... .....:................. .............................. 70 " " "
Penalization for imperfection of ventilation is 0.15 of that for the odor
factor.
.
Bacteria.--While all bacteria are not harmful and some may be desir able, the number of bacteria in the air generally indicates the surrounding sanitary condition and the chances for harmful bacteria may be assumed to be roughly proportional to the total number of bacteria in the air. . According to the synthetic air chart, the percentage of perfection depends .upon the number of bacteria in the air as determined by the number of growth appearing in a culture which has been exposed to the air for two minutes in a 4 in. petri dish and then incubated for 48 hrs. at 72 deg. If no colonies appear the condition is rated at 100 per cent and if 500 colonies appear it is rated at zero per cent perfect. The percentage of perfection is reduced by one for each 5 colonies for this factor while penalization for poor ventilation is one-half as great.
Carbon Dioxide.--^The carbon dioxide content of the air may be
taken as an indication of its purity. The percentage of perfection is
100 per cent if the carbon dioxide content is the same inside and outside
and is reduced by 1 per cent for every three parts per 10,000 over that
found in outside air. This gives 100 per cent penalization for 300 parts
C02. Penalization for imperfect ventilation is 0.9 that for the C02
factor.
.
.
Distribution.--The distribution of the air throughout the room is an important factor in ventilation. Imperfection in this factor is determined by the variation in percentage of carbon dioxide in various parts of the room. In operating the synthetic air chart as many samples, as there are 200 sq. ft. of floor space in the room, or not less than four, of air'Trom different parts of the room are analyzed. The percentage, which the average variation, of the various samples, is of the average C02 content, is the percentage penalization for poor distribution. Penalization for imperfect ventilation is 0.3 that for the distribution factor.
211
American Society o/'Heating and Ventilating Engineers Guide, 1926-27
EXAMPLE IN THE USE OF THE CHART
Determine the percentage of perfection of ventilation in a room where the following conditions are observed. The room4 to be occupied by persons normally clothed and doing light work.
Dry Bulb Temperature......................................... Wet Bulb Temperature......................................... Air Velocity............................................................... Dust Count by Hill Counter............................... Bacteria colonies developed in a 2 min., plate. Odors_......................................................................... COj analysis inside Station No. 1...................... COj analysis inside Station No. 2...................... COj analysis inside Station No. 3...................... COj analysis inside Station No. 4............:........ COj analysis outside........ ...................................... Other objectionable substances...........................
74 deg. 62 deg. 50 ft. per min. 10.000 particles per cu. ft. 10 Faint 6 parts in 10,000 6.3 parts in 10,000 5.5 parts in 10,000 5.0 parts in 10,000 4.0 parts in 10,000
None
The effective temperature for the observed wet and dry bulb tempera ture and air motion is determined from the Table 93 to 99 in Chapter XVII. From.Table 94 (See Chapter XVII) for 50 ft. per min. air velocity the intersection of the line for 74 deg. dry bulb and the column for 62 deg. wet bulb gives 65.3 deg. as the E. T. of the condition. For 100 per cent perfection 62.5 deg. E. T. is required for persons doing light work whereas the existing condition is 65.3 deg. E. T. or 2.8 deg. too high, which gives according to the chart,. 91.6 pier cent perfection and 8.4 per cent penalization for this factor and a penalization of 7.6 per cent for imperfect ventilation. This is indicated in the chart, Fig. 72.
10,000 dust particles per cu. ft. of air gives according to the chart 96
per cent perfection and 4 pier cent penalization for this factor and 1 per
cent penalization for imperfect ventilation.
10 bacterial colonies on a 2 min. plate gives 98 per cent perfection for this factor and a penalization of 1 pier cent for imperfect ventilation.
A faint odor or 90 per cent free from odors calls for a 10 per cent penalization for this factor and 1.5 per cent penalization for imperfection of ventilation.
The average carbon dioxide content of the 4 samples taken in the room
is 5.7 or 1.7 parts more than the outside sample, which, according to the
chart, is 99.5 pier cent pierfect for this factor and calls for 0.4 per cent
penalization for imperfection of ventilation. .
s>
There are no other injurious substances indicated hence no penalization is given for such factors.
The variations of the carbon dioxide content of the four stations from their average are as follows:--
Station No. l._................................................... 6.3--5.7 =0.6 parts pier 10,000 " " 2...................................................... 6.0--5.7 = 0.3 " " 10,000 " " 3._................................................... 5.7-5.6 = 0.1 " " 10,000 " " 4.....................................................5.7-5.0 --0.7 " " 10,000
4 |1.7
The average variation is.................................................... 0.42, and the per-
centage of variation is -0j--42 X 100 -- 7.4 per cent. Therefore the percentage
. 5.7
distribution is 100 -- 7.4 = 92.6, and the percentage penalization for imperfect
ventilation is 2.2.
212
American Society of Heating and Ventilating Engineers Guide,; 1926-27
Fig. 74. Taking an Air Sample The percentage of perfection for each factor is indicated in the chart, Fig.-72 and are summed up in Table 92. The sum of all the penalizations for imperfection in ventilation is 13.7 and the percentage of perfection of ventilation is 100 minus 13.7 or 86.3 which is shown in the last column of the chart.
213
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 92. Typical Results of Analysis By Hill Synthetic Air Chart
Factor
Percentage of Perfection for Factor
Percentage of Penalization for Factor
Percentage or Penalization for
Imperfect Ven
tilation
Percentage of Perfection for
Ventilation
Effective Temperature........ Dust.......................................... Bacteria................................... Odor..........................................
Carbon Dioxide................... Distribution............................
9.6 96.0 98.0 90.0 99.5 92.6
8.4 4.0 2.0 10.0 0.5 7.4
7.6 1.0 1.0 1.5 0.4 2.2
13.7
86.3
The above observations are made as follows: The wet and dry bulb temperatures are determined with a sling psychrometer, the air velocity is determined by observing the speed of a smoke cloud with the aid of a stop watch. The smoke cloud may be caused by means of an ammonium cloud apparatus, Fig. 73 Or by exploding a smoke bomb, or by other means.
The dust count is made by means of the Hill dust counter. In this
instrument a given volume of air is made to impinge against a glass
microscope cover slip coated with an adhesive. The particles are counted
under a microscope of definite magnification and the number corrected
per cu. ft. of air.
.
Carbon dioxide samples are taken in 120 cc. rubber stoppered bottles
by exhausting air from the bottles with an atomizing bulb, Fig. 74.
The bottle should be held at arms length while sampling so as not to
be contaminated with the observer's breath and then tightly stopped
until the sample can be analysed on a Peterson-Palmquist apparatus
for carbon dioxide.
.
214
Chapter XVII
HOW TEMPERATURE, HUMIDITY AND AIR MOTION AFFECT HUMAN COMFORT
AN ordinary thermometer is only of relative value for indicating a person's feeling of comfort as the sense of warmth experienced by the human body is not due alone to the temperature registered by the dry bulb thermometer, neither doefe it depend solely upon the wet bulb temperature. Dry air at a relatively high temperature may feel cooler than air of considerably lower temperature with high moisture content according to the conclusions determined through a series of investigations conducted by the Society in conjunction with the U. S. Public Health Service and the U. S. Bureau of mines.
Human comfort or discomfort depend largely on body temperature and therefore on the relation between the rate of heat production and dissipation. By the process of metabolism heat is constantly generated within the body, while on the other hand, loss of heat is constantly oc curring from the surface of the body by radiation, convection and evaporation. To maintain a constant body temperature the loss of heat must equal the heat produced. It is therefore apparent that any inter ference with the elimination of heat from the body is accompanied by a rise in temperature and a feeling of discomfort.
There are three principal factors affecting loss of body heat:
1. Temperature.
2. Humidity.
3. Air motion.
As the temperature of the air and surrounding objects rises, the loss
of heat by convection and radiation decreases. When the temperature
reaches that of the body, the loss by radiation and convection ceases.
Finally as the air temperature exceeds that of the body, heat passes from
the air to the body.
',
If on the other hand, the relative humidity is increased the heat loss by evaporation decreases. If while the dry bulb temperature increases, the wet bulb temperature decreases sufficiently, the increase in loss of heat by evaporation may be made equal to the decrease in loss of heat by radiation and convection, resulting in no change in body temperature or comfort.
From the above, it is concluded that there must necessarily exist cer tain combinations of temperatures and humidities, which produce..the same total body heat loss by radiation, convection and evaporation and therefore the same feeling of comfort or discomfort. Lines passing through such air conditions plotted as a psychrometric chart may be called
Prepared especially for The Guide by F. C. Houghten, director of the American Society of Heating and Ventilating Engineers, Research Laboratory.
215
American Society of Heating and Ventilating Engineers Guide, 1926-27
equal comfort lines. The fact is further substantiated by the. general experience of heating engineers in observing that the lower the humidity the higher the dry bulb temperature required for the same degree of comfort.
A series of tests have been made in the two psychrometric rooms of the
Research Laboratory of the American Society of Heating and Ven
tilating Engineers, in order to locate these lines on the psychrometric
chart, both for still and moving air and the detailed data obtained is to
be found in the Society's Transactions, Vol. 27-31 inclusive, and in the
Journals for 1926.
.
The relation of temperature and humidity to comfort for persons
normally clothed in still air is given in Fig. 75 while the effect of ait
motion upon comfort or effective temperatures for persons normally
clothed are given in the Tables 93 to 99 which cover still and various
moving air conditions.
.
.
HOW TO USE THE COMFORT CHART AND TABLES
In the Psychrometric Chart, dry bulb temperature is plotted as abscissae and grains of moisture per pound of dry air as ordinates. The maximum moisture which the air can hold at any temperature gives the saturation or 100 per cent relative humidity curve. Relative humidities between 0 and 100 per cent are given by a series of curved lines similar to the saturation curve. The wet bulb temperatures for all atmospheric conditions are given by a series of nearly parallel oblique lines. Effective temperature is given by a series of oblique but not parallel lines which approach being parallel to the wet bulb lines at high temperatures and humidities, and dry bulb lines at low temperatures. The numerical value of the wet and effective temperature lines is given by the dry bulb temperature of their intersection with the saturation curve.
Dry bulb temperature is the true temperature of the air as determined by an ordinary thermometer. It does not, however, accurately indicate a person's feeling of warmth. If the humidity is high a person will feel warmer at the same dry bulb temperature than he will if the humidity is low.
Wet bulb temperature is not the temperature of the air but that which a thoroughly wet body will attain if the air passes over it for a sufficient length of time and with a high enough velocity. A person is not thoroughly wet and hence does not react entirely in accordance with the wet bulb, temperature. At high temperatures when the body is wet with perspira tion, it reacts more nearly to wet bulb temperature while at low tempera tures the body is comparatively dry and reacts more nearly in accordance with the dry bulb temperature.
Effective'temperature is an experimentally determined scale which
unlike the dry bulb and wet bulb scales is a true measure or index of a
person's feeling of warmth in all combinations of temperature and
humidity. In other words with any given effective temperature a person
will feel the same degree of warmth or coldness regardless of the dry
bulb or wet bulb temperature.
216
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Fig. 75. Standard Psychrometric Chart with Equal Comfort Lines Superimposed
American Society of Heating and Ventilating Engineers Guide, 1926-27
THE COMFORT ZONE
That range of effective temperatures over which 50 per cent of people
feel comfortable, namely 62 deg. effective temperature to 69 deg. effective
temperature, is called the Comfort Zone.
:
That particular effective temperature at which a maximum number, of
people feel comfortable is 64 deg. effective temperature and is called the
comfort line. While at rest in still air, 97 per cent of all people are com
fortable at this temperature.
.'
Tables 93 to 99 give the relation between dry and wet bulb tempera tures, and effective temperature for still air, and..various air velocities up to 700 ft. per min. for persons normally clothed.
The data given in the chart, Fig. 75, and Tables 93 to 99 are for persons normally clothed and differ somewhat from the data contained in previous editions of the Guide for person's stripped to the waist. The tables are divided into zones with correction factors in black face at the side which . subtracted from the "normally clothed effective temperatures" will give the "stripped to the waist effective temperatures" with sufficient accuracy for all practical purposes.
There are four fundamental ways of producing effective cooling: (1) The dry bulb temperature may be lowered by direct cooling or removal of heat. (2) The moisture content of the air may be reduced. (3) Air motion will produce effective cooling except for extremely severe condi tions. (4) Evaporation of water without addition or subtraction of heat . is accompanied by an increase in moisture content and a fall in dry bulb temperature along the wet bulb line resulting in effective cooling.
Take as an example a condition of 95 deg. dry bulb and 40 per cent
relative humidity having a wet bulb temperature of 75.2 deg. and effective
temperature of 83.1 deg. This condition can be made equivalent to 80
deg. effective temperature or it can be made to feel-3.1 deg. cooler by any
one of the four fundamental changes mentioned.
'
(1) By the removal of heat the dry bulb may be made to fall to 88.2 deg. (see Fig. 75) along the "100 grain moisture per pound of dry air" line when the effective temperature will be 80 deg.
(2) Without removal of sensible heat or lowering of the dry bulb the moisture content may be reduced from 100 to 54 grains per pound of dry. air, when the effective temperature will be 80 deg.
(3) Upon inspection of Tables 98 and 99 it will be found that 95 deg.
dry bulb and 75.2 deg. wet bulb will give 80.2 deg. effective temperature
with 500 ft. air velocity and 79.6 deg. effective temperature with 700 ft.
air velocity. Interpolation between these two velocities will give 567
as the velocity necessary to make this condition equivalent to 80 deg.
effective temperature,
.
(4) Evaporation of water at room temperature without addition or removal of heat will cause the point on the chart Fig. 75, indicated by our condition, to move along the wet bulb line to the left thereby lowering the dry bulb temperature and increasing the moisture ..content. The wet bulb temperature will remain the same but the effective temperature will be lowered. By adding ftTgrains of moisture without heat, the dry bulb will fall to 86.2 deg. and the effective temperature will fall to 80 deg.
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Note.--To obtain the effective temperatures for a person stripped to the waist, for any wet and dry bulb reading: subtract from the normally clothed effective temperature, the factor for the
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the particular belt or sone found a t the edge of the Table. '
''
American Society of Heating and Ventilating Engineers Guide, 1926-27
The best method of producing effective cooling to be employed in any
particular case will depend upon accompanying circumstances and should
be determined by a competent engineer. Generally removal of heat or
water vapor or both, are most effective. However excepting under .
unusually favorable circumstances direct cooling or dehumidifying is an
expensive process and can only be resorted to where the results will
justify the cost. Effective cooling by air motion or evaporation of water
is relatively much less expensive. Unfortunately however these methods
of cooling are limited to certain conditions of temperature and humidity.
Evaporation of water is effective when the air is dry or when there
is considerable difference between the wet and dry bulb temperature.
Cooling by air motion is most effective at low temperatures. When the
effective temperature approaches that of the body little or no. cooling
results and for certain higher temperatures air motion will make an
uncomfortable condition even less bearable.
'.
For moderately high, temperatures greater effective cooling is ex
perienced as the result of air motion at high humidities than at low
humidities. This suggests a valuable method of cooling by a combination
of evaporation and air motion. Take for example a summer condition of
96 deg. dry bulb and 80 deg. wet bulb having an effective temperature of
85.7 deg. A 300 ft. air velocity will improve this condition by only 2.2
deg. Saturation with water vapor will give a condition of 80 deg. dry
bulb, 80 deg. wet bulb and 80 deg. effective temperature or 5.7 deg.
effective temperature improvement. A 300 ft. air velocity with this new
wet and dry bulb will give an effective temperature of 75.7 deg. or a total
improvement of 10.0 deg.
Example 1.--Given dry bulb and wet bulb temperatures of 75 and 68 deg. First: what is the effective temperature? Second: is this condition warmer or cooler than 80 deg: dry bulb and 60 deg. wet bulb?
Answer.--The first condition is given by the intersection of the-75 deg. dry bulb line and the 68 deg. wet bulb line. The effective temperature is given by the numerical value of the effective temperature line, passing through this point and indicated by the scale along the saturation curve, and is 71.9 deg. effective temperature. The second condition is given by the intersection of 80 deg. dry bulb and 60 deg. wet bulb and is 71.7 deg. effective temperature. It is therefore 0.2 deg. effective temperature cooler than the first condition.
Example 2.--Given 76 deg. dry bulb and 61 deg. wet bulb how many degrees dif ference between this condition and the comfort line or 65 deg. effective temperature?
Answer.--The effective temperature of this condition is given by the intersection of the 76 deg. dry bulb and 61 deg. wet bulb lines and is 70 deg. effective temperature or 5 deg. effective temperature warmer than the comfort line.
Example S.--Given the dry and wet bulb temperatures in a room of 76 and 54 deg. respectively, what air velocity will be necessary to matte this condition ideally comfor table, that is, 65 deg. effective temperature?
Answer,--From Table 93 for still air it will be seen that this condition has an effective
temperature of 68.1 deg. in still air. Looking through the various Tables 94 to >99 for
moving air it will be found that with a 300 ft. velocity this condition will have an effective
temperature of 64.7 deg., and with a velocity of 200 ft. (Table 96) it will have an effective
temperature of 65.8 deg. Interpolating between these two velocities the desired velocity
is found to be 273 ft. per min.
.
Example 4---Given a.condition having dry and wet bulb temperatures of 90 and 85 deg. respectively, how much cooler will this condition feel if 300 ft. air velocity is supplied instead of still air?
225
American Society of Heating and Ventilating Engineers Guide, 1926-27
Answer.--From Table 93 it will be found that this condition in still air has an effective
temperature of 86.6 deg., while if the air has 300 ft. velocity it will be found from Table
97 that it will have an effective temperature of 83.8 deg. Cooling of 2.8 deg. will be
produced by the 300 ft. air velocity.
.
In practice these theoretical values will not be fully achieved. Therefore an allowance should be made for an increase in temperature and a decrease in humidity of the diffusing air before it strikes the occupants. The cloth ing worn and the kind of work done will also have a retarding effect. The experimental evidence now available, of the laws governing the cool ing of the human body is of great value in predicting just what may be expected of a definite air velocity at a given temperature and moisture content when directed upon the body of lightly clothed individuals. Complete reports with other detailed examples of the use of Laboratory Human Comfort Data are to be found in the A. S. H. V. E. Transactions, Vol. 27-31 for 1921 to 1925 inclusive.
There are many applications for these data. In warm weather it is especially desirable to, have greater comfort in school rooms, theaters, auditoriums, also factories, foundries, iron, steel and glass works, mines and other places where workers are subjected to extreme temperature conditions. Maintaining comfortable conditions indoors in summer when the thermometer registers about 95 deg. is a more complicated problem than maintaining the proper condition in winter.
. Effective cooling is however frequently resorted to in theaters and other public buildings and -this practice may be expected to increase. While increased comfort due to cooling is expensive and while it may generally be considered a luxury there are few other luxuries which offer as much real comfort, for the money expended. The fact that provision for cooling in hot weather is not found in more homes, clubs and places of assembly is largely due to the fact that possible comfort to be attained, from this source has not been clearly demonstrated to the building public by the air conditioning engineer.
22f5
Chapter XVIII
SYSTEMS OF VENTILATION
VENTILATION whether natural or mechanical, means the displace ment of vitiated air from any enclosure and its replacement with fresh air. The systems may be classified as follows:--
Method of Supply
Window Gravity Fan Fan
Method of Exhaust
Gravity Fan Gravity Fan (with or without recirculation)
The movement of air in natural ventilation systems is produced by the
difference in density between the column of air in the ducts and the
outside air. The greater the difference in temperature between the two
columns of air the more rapid the air movement.
In mechanical systems the circulation of air is maintained positively and uniformly regardless of outside air conditions and when properly designed and operated they will furnish any required temperature or humidity under automatic control.
Five methods of fan application in heating and ventilating are common as follows:
1. Fan system supplies both heating and ventilation.
2. Fan provides air for ventilation, direct radiation supplies heat.
3. Fan provides air for ventilation and portion of heating, remainder
supplied by. direct radiation.
.
4. Fan system does entire heating (no ventilation supplied). , .
5: Fan system provides ventilation exclusively.
Typical installations of the first system will be found in churches, theatres, auditoriums and other places of assembly requiring a relatively large amount of ventilation and little heating. The second system is usually provided in hotel, office buildings where only certain rooms need ventilation. Experience has shown that the third type is economical for schools, manufacturing plants doing special work, hotels and other places Where a properly controlled air volume is essential. System four is especially adapted to industrial plants and shops to convey heat to the points desired and create an effective air motion, and uniform tem perature with minimum heat loss. When the fan. is required to do both heating and ventilating it is necessary to keep the fans in operation-and great success has been reported in school work with systems of this-Lind
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American Society of Heating and Ventilating Engineers Guide, 1926-27
particularly because of its flexibility, absolute temperature and humidity control and economy of operation.1
The Fan System for Heating and Ventilating consists of a combination of a fan operating in conjunction with a blast heater, with or without a system of air distributing ducts. An air washer or humidifier may be added when required without otherwise changing the type of system. For heating purposes only, the fan system may or may not be used, depending on circumstances and the requirements to be met. The fan system may be used to supply both heat and fresh air for ventilation, or it may be used in conjunction with some form of direct radiation which is to care for the heat losses. When used for ventilating purposes, the fan will be required to supply whatever amount of air is specified to meet the ventilation requirements. The system may be arranged so that the fan may blow the air through the heaters, or draw the air through the heaters. Each arrangement possesses its own peculiar advantages, but the selection depends largely upon the individual requirements of the installation.
The draw-through apparatus is usually employed in factory buildings on account of its compactness as well as the advantage gained by. con necting directly to the piping system. In this case the temperature of the air delivered will be the same to all parts of the building. The blowthrough apparatus is used in public buildings, or wherever different temperatures and independent temperature regulation are required for different rooms of the building. The use of the by-pass around the heating coils permits the mixture of hot and cold air in any desired proportions, by the use of a mixing damper at the point where the two ducts from the heater, and from the by-pass, join to form one duct leading to the room. In the case of public buildings, the fan frequently blows the warm air into a space termed a plenum chamber, from which the air ducts radiate to the various rooms of the building; this arrangement is sometimes called the plenum system of heating and ventilating. They are often designated single or double type.
The air supply systems may be distinguished as upward and downward
systems the former being used in such buildings, as theaters, auditoriums
where people are closely associated. Air is supplied near the floor and
exhausted through grilles in or near the ceiling. The downward plan is
used in school-rooms, hospitals, and other .public buildings, air being
introduced 8 ft. or more above the floor and drawn out near the floor.
The selection of either system depends upon conditions confronting the
engineer.
'.
The amount of heat to be supplied can be determined as outlined in
Chapter I and briefly stated amounts to the losses from transmission, from
infiltration, with proper allowances for heat supplied by persons or
processes. Temperatures usually specified for various types of buildings
are to be found in Table 1 (p. 6);
The amount of air to be supplied depends largely upon the type of service required, the amount of heat needed, the perfection of ventilation
. 1 American Society Heating and Ventilating Engineers Transactions, Vol. 25, 1919. Com parative Study of Natural and Mechanical Ventilation for School Rooms. Legg & Walker; Vol. 28, 1922. Intermediate and Junior High Schools in Detroit, H. W. Anderson; Vol. 29, 1923, Heating and Ventilating Chicago Schools, John Howatt.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
demanded, etc. The total quantity of air to be circulated in an indirect
heating system either mechanical or gravity type is demonstrated in the
seven cases as follows:
'
H = heat loss of room or building as determined by formulae and data given under
Chapter I (B.t.u. per hour)
....
M = weight of air passing into room per hour in pounds from the heating system
Mr = weight of air recirculated per hour, pounds
.
M0 = weight of air drawn into the system from the outside for the ventilation require
ments per hour lb. and passed through the indirect radiation system
Mb = weight of tempered air by-passed around the reheater per hour, pounds
Mh = weight of air passed through heater or reheater per hour, pounds
t = mean air temperature of the room of building
t,, = mean outside air temperature
.
= .mean temperature of the air. entering the heater
t3 = mean temperature of the air leaving.the indirect radiator
lx = temperature loss assumed in the air duct system
ty = temperature of the air entering the room or building
.
0.24 = specific heat air of constant pressure. (B.t.u. required to raise 1 lb. of air
1 deg. fahr.)
The mean temperature to of the air leaving the indirect radiator (blast heater, tem pering coil, reheater, unit heater or gravity indirect radiator) should be learned from the makers, tables for the heater or indirect radiator or heater it is proposed to. use.
Care 1--When all of the air passing through indirect heater is recirculated am: M0 = 0; Mh = Afr = M; Temperature of air entering heater, ti = t ;M = g 24 (ty -- t)~~^
Case g--When all of the air passing through the indirect heater is drawn from the
outside:
^
Mr = 0;Mk= M -- Mo Temperature of air entering heater, /, = ta M = ^Atfy -- t)--
Case 3--When a portion of the air passing through the indirect heater is outside air and the remainder recirculated air:
Mh -- M Mr + Mo
Q 24 (ty -- t) .................................. :........: ................................................................
^
In this case M0 is known from the ventilating requirements and the amount of airto be
recirculated is ascertained by the following formula: Mr = M -- M0 or Mr = q 24 (ty -- t)
- Mo-...........................................................................................................................................................................................................................(4)
The mean temperature of the air entering the indirect heater is ascertained by the
following formula:
'
, M0(to + 460) + Mr {t + 460) _ 4Rn
.^
h~
Mo + Mr
.....................................................
Case 4--When all of the air circulated is drawn from the outside and passed through
a tempering coil, air washer or humidifier and reheater.
The temperature of the air I, entering the reheater will have the same dewpoint tem perature as the air in the room or building to which the air is delivered, having tempera ture t and relative humidity as specified. If the relative humidity is not specified it shall be assumed as 35 per cent. If the room temperature is not specified it shall be assumed
as 70 deg. fahr.
.
A relative humidity of 35 per cent for a room temperature of 70 deg. has been selected
because this is the highest percentage of moisture which the air can hold withoutrpro-
ducing dripping on single-thickness windows in cold weather.
In this case: M = Mo = Mh = 0 24 (ty -- t)........................................................................ ^
If it is desired to maintain a room temperature of 70 deg. with 35 per cent relative humidity from an outside temperature of zero and with simply an air washer without
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Case S
Case 6 (b) _______________
.. y,.| K-
Case 6 (c)
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any water heater in connection, the tempering coii must be of sufficient capacity to heat the entering air from the outside temperature to 88 deg. dry bulb temperature and 52 deg. wet bulb temperature, and this will be represented by ta in the diagram. In this case the difference is 36 deg. between the wet bulb temperature and the dry bulb tem perature and assuming the washer to be 67 percent efficient, moisture will be evaporated into the air in sufficient quantity to bring the temperature down to 24 deg. which is 67 per cent of 36 deg. Subtracting 24 deg. drop in temperature through the air washer from 88 deg. dry bulb temperature of the air entering the air washer, gives 64 deg. as the final temperature of the air leaving the air washer, the wet bulb temperatureTemaining at 52 deg. The reheater will heat the air to any temperature necessary to take care of the heat losses since foom heating is desired.
The dewpoint temperature of the air leaving the air washer and in the room itself will be 41 deg.
Using the same illustration and assuming that a humidifying air washer is used with a water heater, the tempering coil will simply have one stack, section or tube row deep to raise the air temperature to about 35 deg. from zero outside temperature. The hot water sprays in the air washer will saturate this air at a tempearture of 41 deg. and the. reheater will simply raise this temperature to any point required to maintain a room temperature of 70 deg. and a relative humidity of 35 per cent.
The amount of heat to be furnished by the water heater in connection with the humidifying air washer is made up of the sum of two factors--First: to heat the specified air volume from the temperature leaving the tempering coil to the saturated air tem perature leaving the washer, and Second: to evaporate sufficient moisture into this air to saturate it at the temperature required.
If only 23 per cent relative humidity is desired in the room in connection with 70 deg. dry bulb temperature, the temperature entering the. air washer, without water heater will be 64 deg. dry bulb, and the temperature leaving the air washer will be 48 deg. dry bulb, which is a drop of 16 deg. through the washer or 67 per cent of 23)^ deg. difference between 64 deg. dry bulb and the corresponding 40)4 deg. wet bulb temper ature.
The illustration in connection with Case 4 indicates that this arrangement is used entirely for heating the room by the fan system. In many cases the heat losses in a room or building are taken care of entirely by direct radiation, and in such cases the final temperature of the air leaving the heater will probably be in the neighborhood of 80 deg. In such a case the same arrangements of tempering coils and reheaters will be used. The arrangement shown in the diagram contemplates the same air tempera ture being delivered to all rooms on this system, and will not be applicable to the heating of several rooms where individual control of each room is desired.
Case 5---When a portion Mo of the air circulated is drawn from the outside and the remaining Mr recirculated air, the air drawn from the outside is passed through a tempering coil and the mixture of air, from the outside and recirculated air, being passed through an air washer or humidifider and a reheater.
Similar conditions will apply to this Case 5 as have been outlined for Case 4 except that a percentage of recirculated air at a different dry and wet bulb temperature and a different percentage of relative humidity will be mixed with the fresh air after it has been warmed by the tempering coil.
In this Case 5, Mo is known from the ventilation requirements as specified, and the amount of air permitted to be recirculated is, therefore:
Mr 0.24 (ty-t) Mo
(7)
Case 6 (a, b, c)--When all of the air circulated is drawn from the outside, passed through a tempering coil and air washer or humidifier, a portion of the tempered and conditioned air passed through an indirect heater or reheater and a portion of the tempered and conditioned air by-passed around the reheater and the mixture passed into the room or building for heating and ventilating.
The weight of air to be circulated per hour equals (Mo) as determined by the ventila tion requirements. The dry bulb temperature of the mixture of tempered and reheated air entering the room or building is to be ascertained by the following formula:
".... Mo X 0.24 (ly - l) = H.
m
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American Society of Heating and Ventilating Engineers Guide, 1926-27
H + 0.24 Met 0.24 Mo '
(9)
This case illustrates the arrangement of apparatus when the heating of several rooms
is required with individual control of temperature for each room. The arrangement of
apparatus, including tempering coil, air wpsher or humidifier, retempering coil and
reheater coil, will be the same as has been outlined in Case 4.
The air leaving the reheater and the air by-passed around the reheater, although
having different dry bulb temperatures, will have the same dewpoint temperature as
the air t in the room or building to which the air is delivered and with relative humidity
as specified; if no relative humidity is specified it can be assumed as 35 per cent. If no
room temperature is specified it should be assumed as 70 deg. The relative weights
of air passed through the reheater and by-passed around the reheater shall be ascertained
by the following method:
.
X = Parts of reheated air in mixture (1 -- X) = Parts of tempered air in mixture
ty = Mean dry-bulb temperature of the mixture entering room or building lx = Loss of temperature in the duct system ti = Mean dry bulb temperature of the air entering reheater and by-pass I* = Mean temperature of the air leaving the reheater
1
{X) iU + 460) + (1 -- x) (I, + 460) = (Jm + 460)...................................................... ........(10)
tm = Mean tempearture of air entering the duct system = (ty -)- tx). SOLVE: for X. Then Mh = X
Mh is the weight of air in pounds per hour to be passed through the reheater. The temperature ty will ordinarily be different for each room of the building. The total weight of air passed through the reheater will be the sum of the requirements for all the rooms.
Case 7--Indirect system for warming the air drawn in from the outside for ventilating purposes only. (When an indirect system is employed to warm the air drawn into the system from the outside for ventilating purposes only, the heat loss is provided for by direct radiation or by some other means).
The weight of air to be circulated per hour is M0 as may be determined from the specified ventilation requirement Mh -- M = M0. The temperature of the air delivered to the room ty shall be assumed 5 deg. higher than room temperature t specified.
a. If no air-conditioning apparatus is to be employed the arrangement is similar to Case 2 where <, = to and ty = t + 5.
b. If air-conditioning apparatus is to be employed the arrangement is similar to Case 4; Mh = M = M0.
Loss of Temperature in Duct Systems (tx) '
a. When the indirect heater and duct system, are located in the enclosure to
which the air is to be delivered, it may be assumed that there is no loss of
temperature between the indirect heater and the point or points of discharge
into the enclosure, tx = 0.
.
b. For gravity indirect heating, a loss in air temperature of 5 deg. for the first floor, 8 deg. for the second floor and 10 deg. for the third floor between the indirect radiator and room register can be assumed.
c. For ducts run underground an allowance must be made based on the estimated
heat loss of the duct, assuming an average temperature of the ground of
55 deg. fahr. .
.
d. For ducts run in outside walls to the second floor and above, a loss of not less than 10 deg. shall be used in the calculations.
When the heating and ventilation requirements have been found the size of the heater and fan are calculated for a given friction, temperature range, pressure loss in ducts, etc. Pressure losses build up rapidly as velocities are increased and generally vary approximately as the square of the velocity. The allowable pressure loss through the heater should in
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American Society of Heating and Ventilating Engineers Guide, 1926-27
.
general not exceed 50 per cent of the total static pressure of the system. In public building practice allowable pressure loss through tempering coils and reheaters should be under Yi in. of water and when an air washer is used the friction through the tempering coil and reheater should not exceed 40 per cent of the total resistance as a rule.
Factory work permits greater friction allowance for the heaters where duct runs are comparatively short and the resistance of the heater is a large part of the entire pressure loss in the system.
The fan can be selected when the following facts are known:
1. Quantity of air required in cubic foot per minute.
2. Static pressure of system (ducts, heaters; air washers, filter, entrance connections, etc).
The kind of fan will depend upon the service required, disc and propeller fans being used generally where no resistance is built up. In ventilation work centrifugal fans are largely used and these come under two classi fications--those with straight radial blades and those with curved blades. Each type of fan has its special applications and there is a definite relation between its pressure characteristics, power requirements and the service rendered. Where noise is not objectionable, fan efficiency is the governing factor. In places where quiet operation is essential proportionate outlet velocities should be chosen (see Chapter XIX).
The quantity, velocity and pressure of air delivered by the fan should be determined by the A. S. H.-V. E. Standard Code for Testing Centri fugal and Disc Fans (See Transactions, 1923, Vol. 29, p. 407.
It is well to remember that good practice requires that:
1. The mechanical efficiency of a centrifugal should exceed 55 per cent.
2. Air velocity passing thru the fan outlet should not cause excessive
noise.
.
3. The fan should operate, silently and not transmit noise to ducts.
4. The use of variable speed motors is advisable to meet changes in frictional resistance, power economy when ventilation demands vary while constant speed motors are less expensive when ventila tion requirements remain uniform.
A fan installation rightly designed and operated will be quiet and efficient but every precaution should be taken to prevent vibration or sound passage to the rooms.. The method of fan drive is important, the insulation of motor, and fan foundations with felt, cork and other ap proved materials of adequate thickness properly waterproofed.
UNIT SYSTEMS*
Unit systems consist of an individual unit incorporating all the apparatus necessary for providing, directing and controlling the necessary volume of air heated to the proper temperature for the purpose. Two types are ini common use, one for public building work and the other for factory and
Data on Unit Systems contributed by H. B. Hedges, New York, N. Y., G. E. Otis, Moline, III., and
A. J. Nesbitt, Atlantic City, N. J.
.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
industrial installations. They differ in design and construction in pro
portion to the service for which they are intended.
.
They may be located in the various rooms or parts of a building for discharging warmed air into the room or building, and either entirely or partially recirculating the air, or else 'having a fresh-air connection for special ventilation purposes. These units, in the case of a school-room and sometimes in factories, are set on the floor but frequently in factories are suspended from the roof trusses so as to leave the floor spaces un obstructed.
Public Building Work
Unit heating and ventilating systems intended for public building work consist of a small rectangular steel cabinet, enclosing the following essential parts:--
1. A fresh air inlet. 2. An air filter. 3. A motor and fan assembly. 4. A radiator or heating element. 5. A cold air or by-pass chamber. 6. Mixing chamber.
7. Air discharge outlet. 8. Fresh air and recirculating control damper. 9. A by-pass or temperature control
damper.
Note.--Both the recirculating control damper and the by-pass damper can be manually operated,
or the recirculating control damper may be pneumatically controlled from some remote point. The by-pass
or temperature control damper can be automatically operated on room temperature by means of ther
mostatic motor in connection with the use of any pneumatic automatic temperature control system.
(See also Chapter XIII.)
.
When the fresh air inlet damper is open the fresh air is drawn im mediately from out of doors, having the.dust and dirt removed by means of the air filters. From this point the air is driven by means of the motor and fan assembly and forced up through the machine, using either polyphase, alternating current or direct current motor.
All of the air may be driven through the radiator to be heated and thence to the room, or all of the air may be driven through the cold air or by-pass chamber and thence to the room, or part of the air may be driven through the radiator and part through the cold air chamber in any desired proportion, depending upon the position of the by-pass damper.
The air is driven from the machine in a vertical direction at a velocity ranging from 800 to 1000 ft. per minute. This high velocity drives the air against the ceiling of the room, thereby diffusing it and spreading it in a
downward movement to all parts of the room.
The closing of the fresh air damper simultaneously opens the recircula
ting grille at the floor line, so that there is a free path for the air to circulate by gravity through the radiator. Thus, when the motor is not operating and the fresh air damper is closed, the radiator of the unit becomes an
enclosed direct radiator, functioning in the same manner, as any other enclosed direct radiator. By starting the motor during heating-up period in the morning, the air may be drawn from the room at the floor line, heated, discharged, recirculated, reheated and redischarged, this process
continuing until the room has reached the desired temperature, thus effecting a tremendous saving in time and fuel in preparation of the room
for occupancy.
.
With this system of ventilation, the air outlets for the room serve strictly in the capacity of vents to permit of displacement and they
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American Society of Heating and Ventilating Engineers Guide, 1926-27
should be small with as little exhausting effect as possible. Under such conditions their location is unimportant further than that they be placed at or very near the floor. In the typical layout they are usually placed in the wall opposite the ventilator. This is not necessary but it has been proven a very satisfactory location and where vent flues are used it is advisable to locate them on inside walls to prevent downdrafts.
In school work where it is desired to circulate air through adjoining wardrobes, room outlets should be in low panels of doors or near floor in partitions. Wardrobe outlets may be either at floor or ceiling. The latter arrangement is usually preferable from a purely ventilation standpoint but the former provides a better heating effect. By such a plan direct radiation may usually be omitted from such rooms. When half doors or no doors are used between class-rooms and wardrobes, outlets from latter must be at floor.
Fig. 76. School Room Plan Showing Location of Units
With the mechanical unit ventilation system exhaust fans or aspirating coils in vent flues are neither necessary nor desirable, it being the idea to force the air out of the rooms under back pressure. Where the outlets are properly proportioned this has an inflation effect that retards infiltra tion and assists in diffusion. One vent for each machine is sufficient and both the grille and flue should have a net free area Of about 18 sq. in. for each 100 cu. ft. of air delivered per minute by the ventilator. -
In cases where state laws have failed to anticipate this system of ventilation and demand larger vent flues, arrangements can usually be made to provide throttling dampers in same to secure the desired effect.
The so-called corridor system of venting is frequently employed with unit ventilators and is favored by many engineers with this system of ventilation. Vent flues are dispensed with and room outlets are directly into corridors, whicfrserve for conducting the air to roof ventilators connected with grilles located in.the ceiling of the top story corridor.
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...
American Society of Heating and Ventilating Engineers Guide, 1926-27
In order to carry out the principle of diffusion and get proper results from the unit system of ventilation, consideration must be given to the number, size, location and general application of the mechanical venti lators. With a correctly designed system and proper equipment, good' diffusion will be effected if the frequency of air change in the room ventilated is equivalent to five or more volumes per hour but the extent to which the desirable effect of air motion is present will be governed both by the frequency of air change and the ceiling height.
On the same principle that underlies the necessary distribution of
direct radiation there is a- limit to the amount of air which can be dis
tributed from a single point in ventilation work if good results are to be
expected. Practical experiments seem to indicate that this limit is about
1500 cu. ft. per min. with this type of apparatus, for this reason
mechanical unit ventilators are not built with capacities greater than
1500 cu. ft. pier min. and should never be used except in rooms with very
high ceilings. In a practical way this determines the number of venti
lators to be used in a given case. Where the very best results are desired
it is recommended that the capacity of any single machine be limited to,
100 cu. ft. per min. per foot of ceiling height.
Mechanical unit ventilators should be centrally located on the outside wall of the room which they serve. Corner locations are liable to result in inefficient and unbalanced distribution. In fact, under adverse con ditions, drafts may result from such a location.
Unit ventilators may be recessed but they should never be enclosed or concealed. Not only are enclosures liable to affect the jet action but from a practical standpoint they interfere with proper care and attention by rendering the machine inaccessible. Moreover, there is a certain psychological value to an exposed machine. The occupants quickly learn its purpose and operation with the result that they appreciate its value and see that it is operated and properly cared for.
No single mechanical unit ventilator should be made to serve more than one room by the extension of ducts from the outlet since this is contrary to all the basic principles of the system. Adjacent rooms, if not sufficient in size and importance to be equipped with individual ventilating systems probably do not require any ventilation.
Where the total B.t.u. required for heating and ventilating is in excess of the rated capacity of the unit, the- unit must be supplemented by direct radiation. Otherwise, the unit can be used for both heating and ventilating without direct radiation.
No special treatment of vent flues is required by this system, the vitiated air being discharged from the building in the same manner, as all other mechanical systems. It has been found that the best results have been obtained where the cross sectional area of the vent flue did not exceed 20 sq. in. per 100 cu. ft. of air.
Industrial Service
Unit heaters for industrial work consist of a heating element over which air is forced or drawn by means of a power driven fan which also distributed this heated air to the space to be heated. The area that can be served by one unit varies according tp the type of unit and the location
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of the unit within the building. If the unit could always be located in the center of the area, which is the most ideal location from a standpoint
of distribution, then one unit would most generally be capable of heating an area from 50 ft. square up to an area 150 ft. square.
Unit heaters may be divided into two classes: Namely, the Direct
Fired Type and the Heating Coil Type.
'.
The Direct Fired Type is constructed very much along the lines of the pipeless furnace used in house heating and burns coal, coke, wood, oil or gas fuel. A power driven fan connected to the base of the heater creates
Table 100.
B.t.u. Constants for Various Steam Pressures and Temperatures of Entering Air
Steam
Pressure
las.
-10*
0* , 10
Temperature or Air Entering Heater 20" 30" 40 45" 50* 55* 60 65 70 75"
0 0.975 0.93 0.89 0.84 0.80 0.76 0.73 0.71 0.69 0.67 0.64 0.62 0.60 2 1.01 0.96 0.92 0.87 0.83 0.79 0.76 0.74 0.72 0.70 0.68 0.65 0.63 5 1.04 1.00 0.96 0.91 0.87 0.82 0.80 0.78 0.76 0.74 0.71 0.69 0.67 10 1.06 1.05 1.01 0.97 0.92 0.88 0.85 0.83 0.81 0.79 0.76 0.74 0.72 IS 1.15 1.10 1.05 1.01 0.97 0.92 0.90 0.88 0.86 0.83 0.81 0.79 0.76 20 1.18 1.14 1.09 1.05 1.00 0.96 0.94 0.92 0.89 0.87 0.85 0.83 0.81 30 1.25 1.21 1.16 1.12 1.08 1.03 1.01 0.98 0.96 0.94 0.92 0.90 0.88 40 1.30 1.26 1.22 1.17 1.12 1.08 1.06 1.04 1.02 1.00 0.97 0.95 0.93 50 1.35 1.31 1.27 1.22 1.18 1.13 1.11 1.09 1.07 1.04 1.02 1.00 0.98 60 1.39 1.35 1.31 1.26 1.22 1.18 1.16 1.13 1.11 1.09 1.07 1.05 1.03 80 1.49 1.43 1.38 1.34 1.29 1.25 1.23 1.20 1.18 1.16 1.14 1.12 1.10 100 1.53 1.49 1.44 1.40 1.35 1.31 1.29 1.26 1.24 1.22 1.20 1.18 1.16 125 1.59 1.56 1.51 1.46 1.42 1.37 1.36 1.33 1.31 1.29 1.27 1.24 1.22 135 1.61 1.57 1.53 1.48 1.44 1.39 1.37 1.35 1.33 1.30 1.28 1.26 1.24 140 1.62 1.58 1.54 1.49 1.45 1.41 1.38 1.36 1.34 1.32 1.29 1.27 1.25 150 1.64 1.60 1.55 1.51 1.46 1.42 1.40 1.38 1.35 1.33 1.31 1.28 1.26
Note.--To get B.t.u.*s at any steam pressure and entering temperature, multiply constant from table
by rated B.t.u.'s at 0 deg. entering and 5 lb. pressure.
, a rapid circulation of air over the cast iron heating surface provided in the fire box. The air thus heated is discharged into the building from an outlet on top of the heater. Generally this type is used where steam or hot water is not available and where it is not desired or practical to
install a boiler plant.
The Heating Coil Type unit heater consists of a bank of steam or hot
water heating coils which may be made of steel pipe, cast iron, copper or brass over which air is blown or drawn by means of a power driven fan. The fan may be direct connected to the motor or pulley driven from motor or line shaft. This type Unit has two distinct classifications: Namely,
the Horizontab and the Vertical types.
The Horizontal type as a general rule uses a propeller or disk fan for
passing the air over the heating surface. Cast iron and copper tube heating surface are in most cases used in this type unit. The fan and heater are built into a sheet metal casing and the direction of flow of air is regulated by means of sheet metal baffle plates. An advantage of the Horizontal Unit is'that it is comparatively light and can be suspended
from columns or trusses of the building, thus conserving the floor space,
- 237
,
American Society of Heating and Ventilating Engineers Guide, 1926-27
and allowing return mains to be run overhead. The individual motor power requirements per unit are usually less than for other types.
The Vertical Type, as is implied by its name, provides for the air to enter near the floor level and pass vertically through a bank of steam or hot water heating coils. Movement of the air is produced by a power driven fan, and *a sheet metal distributing outlet at the top directs the distribution. While this type unit is quite frequently suspended from overhead structural supports, it is primarily designed to rest on the floor level, from which position the most effective results are obtained.
The fans are of the multi-blade centrifugal type and are capable of operating against a static pressure of 1 in. of water or more.
When placed on the floor level these units take the air in at the lowest
point where the air is coldest and discharge the heated air at a distance of
from 8 to 12 ft. above the floor. The discharged warm air is dissipated
in the space to be heated and as it cools, falls to the lower level and is
again taken in at the base of the unit and reheated. When so desired the
units may be provided with a fresh air connection so that either all out
side, all inside, or a combination of both may be used through the heater.
This arrangement proves most satisfactory for producing a circulation of
outside air in the summer time for ventilation purposes, particularly in
large open industrial buildings such as; machine shops, textile mills,
foundries, warehouses, garages, mills, railway shops, armories and
gymnasiums.
.
238
Chapter XIX
DESIGN AND CONSTRUCTION OF AIR DUCTS
THE successful operation of a mechanical or plenum heating installa tion, an exhaust system or a dust collecting plant is largely dependent upon the correct design of the duct system. Materials, proportions,
friction, location and innumerable other items are factors in the correct
operation of a duct system.
In the design of ducts and flues for the mechanical circulation of air, -
or by gravity, losses due to friction are the basis for figuring and these
losses must be kept within the available pressure difference. This pres sure difference in mechanical ventilation is that derived from the fan
while in gravity ventilation it is the asperating effect due to the tempera
ture and height of the column of heated air.
.
When attempting the design of a duct system the general rules to
remember are:
1. The air should be conveyed as directly as possible at reasonable velocities to obtain the result desired with greatest economy of power, material and space.
2. Sharp elbows and bends are to be avoided.
3. All ducts or flues shall have sides as nearly equal in size as possible. (In no case shall the ratio between long and short sides be greater than 10 to 1.)
The piping systems for various operations must be of different design as the principal consideration for industrial work is for heating while in public buildings the air required for ventilation greatly exceeds the volume needed for heating. For instance, the ducts for a school, theatre or other public buildings, where freedom from noise and elimination of drafts is essential and where branch ducts serve individual rooms, is a much different problem in design than that involved in proportioning ducts intended for heating a factory, where a main duct of decreasing dimensions extends lengthwise of the building and gives a uniform distribution of air. For public buildings air velocities must, therefore, be kept low between 900 and 1200 ft. per minute while in industrial buildings they can range from 1500 to 2000 ft. per minute or even more with no other disadvantage than the difference in operating expense.
Standard velocities of air in public buildings are as follows:
1. Through the outside air intakes 1,000 ft. per min.
'
2. Through connections to and from heater 1,000 to 1,200 ft. per min.
'
3. Through the main discharge duct from 900 to 1,200 ft. per min.
__
4. In branch ducts 700 to 900 and vertical flues 400 to 600 ft. per min.
5. In registers or grilles 200 to 400 ft. per min. depending upon the size and location.
6. If diffusers of proper design are used, 25 per cent higher air velocities may be permitted. ....
Material for this section was prepared by F. R. Still, vice-president American Blower Co., New York.
239
.
American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 101.
Corresponding Pressures and Velocities of Dry Air at 70 Deg. and 29.92 In. Barometer
Inches of Water
0.05 0.10 0.20 0.2S 0.30 0.40 0.43 0.50 0.60 0.70 0.75 0.80 0.87 0.90 1.00 1.25 1.30 1.50 1.73 1.75 2.00 2.17 2.25 2.50 2.60 2.75 3.00 3.03 . 3.25 3.47 3.50 3.75 3.90 4.00 4.25 4.34 4.50 4.75
Ounces
per Sq. In.
0.0289 0.577 0.1154 0.1443 0.1730 0.2308 0.2500 0.2884 0.3460 0.4037 0.4326 0.4614 0.5000 0.5190 0.5768 0.7209 0.7500 0.8650 1.0000 1.0092 1.1535 1.2500 1.2975 1.4418 1.5000 1.5860 1.7300 1.7500 1.8740 2.0000 2.0185 2.1630 2.2500 2.3070 2.4510 2.5000 2.5950 2.7395
Velocity Ft. per Min.
Inches of Water
896 1266 1791 2003
2193 2533 2637 2832 3102 3351 3468 3582 3729 3800 4005 4478 4566" 4905 5273 5298 5664 5895 6007 6332 6457 6641 6937 6976 7220 7457 7492 7756 7910 8010 8256 8337 8496 8729
4.77 5.00
5.20 5.50 6.00
6.07 6.50 6.94 7.00 7.50 7.80 8.00 8.67
9.00 9.54 10.00 10.40 11.00 11.27 12.00 12.14 13.00 13.87
14.00 15.00
15.61 16.00 17.00 17.34 18.00 19.00 19.07 20.00
20.81 22.54 24.28 26.01 . 27.74
Ounces per Sq. In.
2.750 2.884 3.000 3.172 3.460 3.500 3.749 4.000 4.037 4.326 4.500 4.614 5.000 5.190 . 5.500 5.768 6.000 6.344 6.500 6.921 7.000 7.497 8.000 8.074 8.650 9.000 9.227 9.805 10.000 10.380 10.960 11.000 11.535 12.000 13.000 14.000 15.000 16.000
Velocity Ft. per Min.
8745 8943 9134 9392 9810 9864 10210 10545 10595 10968 11187 11328 11792 12015 12367 12665 12915 13282 13445 13875 13950 14440 14913 14985 15510 15820 16020 16513 16675 16990 17456 17488 17910 18265 19012 19730 20420 21090
Corresponding Velocity for Dry Air at Various Pressures and
Temperatures and 29.92 In: Barometer
Pressure
Inches
0.25 0.5 0.75
1.00
1.25 1.50 1.75
2.00
2.25
Ounces
0.1443 0.2884 0.4326 0.5768 0.7209 0.8650 1.0092 1.1535 1.2975
50
1965 2778 3402 3929' 4393 4812 5197 5556 5892
60 70
1986 2808 3439 3971 4440 4864 5254 5616 5956
2003 2832 3468 4005 4478 4905 5298 . 5664 6007
100
2059 2911 3565 4117 4602 5042 5446 5822 6174
150
2149 3038 3720 4296 4804 5262 5683 6076 6443
300
2399 3391 4153 4796 5362 5874 6344 6783 7193
500
2696 3812 4668 5390 6027 6602 7131 7624 8085
550
2S95 4095 5020 5795 6470 7100 7655 8195 8690
240
American Society of Heating and Ventilating Engineers Guide, 1926-27
It is customary in proportioning ducts for heating and ventilating work to follow either of two methods:
1. Arbitrarily select sizes from assumed velocities, depending upon velocity of air at fan outlet.
2. Determining the velocity which will give an assumed resistance within fan capacity at noiseless operating speed.
By decreasing the velocity in main duct as air is delivered through branch outlets: (1) uniform air delivery through outlets is accomplished, (2) friction in smaller pipes is reduced, (3) portion of velocity head is
converted into static pressure.
The two greatest losses in duct systems are dynamic losses and friction
losses. The former are chiefly caused by changes in direction or in velo
city of air flow and are expressed in pressure in inches of water gage as
per Table. 101.
.
Friction losses due to friction of air against sides of ducts, vary directly as the length of the pipe, directly, as the square of the velocity and in versely as the diameter. Friction is commonly expressed as equivalent pressure in inches water gage or in terms of velocity heads, (the ratio of friction loss to the theoretical pressure corresponding to the velocity in the duct). One velocity head is the pressure corresponding to the velo city of air in the duct.
For smooth round pipes the friction loss is:
where
f = -- (--V
50 D \4005 /
F = loss of pressure in inches of water V = velocity in feet per minute L *= length of pipe D = diameter of pipe in feet;-^ = length of pipe in diameters.
If a factor of safety is thought desirable the length 45 may be used though experiments show that, the friction loss is equal to one velocity head in a length varying from 40 to 60 diameters depending upon the smoothness of the duct. The engineer's judgment and experience should prevail in this matter. For example correction should, be made for pipes with rough or uneven surfaces and in the case of brick or concrete ducts the friction loss should be increased 25 per cent or more.
A formula for rectangular ducts is derived in a similar manner but it will be found very convenient to use the accompanying chart Fig. 77.
-Other losses of pressure are at the entrance to the duct, through heater, air washer, etc. In ordinary practice it is usual to keep the sum of the piping losses J to and the loss through heater at less than of the static pressure. The remainder is then available for producing velocity.
The ideal duct system will take all factors into consideration and proportion air velocities so that the resistance will be practically equal in all ducts regardless of length.
241
D ia m e t e r o f P ip e C u r ic F e e t per M in u t e
American Society of Heating and Ventilating Engineers Guide, 1926-27
<o
* ' --
v-- q
< oh)-4 9B
1000,000 600,000
600,000 900.000 400.000
yxifioo
200.000 150.000
100.000 60,000 60,000 50.COO 44000 90.000
20.000 15.000
(0,000 0,000 6.000 5.000 4.000 5.000
2.000 1,500
1,000 600 600 500 400 500
200 (SO
<5 o o
55
55
-^
S3
IOO
. .
Friction in Water Gage per 100 Feet Fig. 77. Friction Chart
HOW TO USE THE FRICTION CHART
While this chart can be used to determine the friction of air which is flowing through ducts, it can also be used for determining the size of a pipe to handle a specified volume or the velocity that will be necessary. For example:
242
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American Society of Heating and Ventilating Engineers Guide, 1926-27
1. Assume that a volume of 20,000 cu. ft. per min. is to be discharged through a 36 in. duct. The volume is given on the right hand margin; follow along the horizontal line opposite 20,000 cu. ft. per min. until it intersects with the diagonal line sloping upward to the right which is marked 36 in. diameter of pipe. The velocity will be found to be 2,800 ft. per min., this being the other diagonal line sloping downward to the right, At this point of intersection is a vertical line giving the friction, which is indicated at the bottom of the chart as being 0.4 in. water gage per hundred feet of length. Thus if the duct is only 40 ft.
long, the friction will amount to ^
= 0.16 in. W. G.
_
100
2. The friction of elbows varies with the radius; an elbow having a radius in the
throat that is half the diameter of the pipe, will present a frictional resistance
that is equivalent to a straight pipe that is 30 times its diameter. For instance
a 36 in. diameter elbow having a radius of 18 in. in the throat would present as
much friction as 30_X^6^ -- go ft. of straight 36 in. pipe.
If the radius in the throat is equal to the diameter then the friction would only be equal to 10 diameters. If the radius is twice the diameter, the friction is only 4.3 diameters. The friction of a rectangular pipe for a given velocity (not for volume) can be
converted to an equivalent round pipe as follows: D = ---, in which 2 W -f- 2 H
W is the width, H is the height and D is the diameter, all in inches.
To find an equivalent diameter for a given volume and the same friction as a
rectangular duct, proceed as follows: W
D = ---------------------- ---------------------
* >
0.79
SOME GENERAL INSTALLATION AND CONSTRUCTION HINTS
1. Ducts should be not less than 6 x 6 in. in size and made of galvanized iron or steel.
2. Angular turns should.be made with elbows having a radius not less than the width
or diameter of the duct.
3. Offsets should be at an angle of 30 to 45 deg.
4. Branch ducts should make curved connection with main duct and should have
accessible dampers.
i
Gages of Galvanized Iron or Steel to be Used for Ducts, for Outside Air Intake
Heating and Ventilating;
Round Ducts, Diam., In.
6 to 19 20 to 29 30 to 39 40 to 49 . 50 and above
Gage
26 24 22 20 18
' Rectangular Ducts Width, In.
4 to 18 19 to 30 31 to 60 61 to 118 118 and above
Gage .
26 24 22 20 18
5. Rectangular ducts should have metal strap or rod supports and when over 36 in. in width should be stiffened with angle iron at 4 ft. intervals.
6. Longitudinal seams and transverse joints should be flat and smooth inside; slip joints should be in direction of air flow.
7. Access doors to ducts should be hinged and fire dampers in supply and vent'ducts should be of % in. steel plate, held by fusible link for release at 160 deg. fahr.
8. Air intake should be screened with 1 in. mesh or less and protected from weather. 9. Final exit for exhaust ducts should be protected from weather and placed so as
not to contaminate air supply. 10. Underground ducts should be waterproofed, drained and provided with means of
access for inspection and cleaning.
243
American Society of Heating and Ventilating Engineers Guide, 1926-27
MEASUREMENT OF AIR FLOW
The quantity, velocity and pressure of air discharged by a fan or
flowing through a pipe may be determined by various methods. An
anemometer is used where accuracy is not required and where air velocities
not over 600 ft. per min. are to be measured, as at registers. For the
greatest, measure of reliability the anemometer shail have been newly
calibrated, and correction shall be made for the error as shown by the
' calibration.
. The standard method for measuring air velocity and pressure shall be the pitot tube as described in the A. S. H. & V. E. Standard Code for the Testing of Centrifugal and Disc Fans (Trans., A. S. H. & V. E., Vol. 29, 1923, p. 407.) Installation tests for determination of fan capacity and efficiency shall be under laboratory conditions, in accordance with this Code.
244
Chapter XX
AIR WASHERS AND FILTERS
THE cleansing of air for ventilation purposes is a very important phase of the art and is accomplished by two different means; washing and filtering. Both methods cleanse the air of solid or liquid matter in the form of dust or spray, while in addition the washer cleanses the air of soluble gases and vapors, and hence of many objectionable odors.
Air filters are distinguished from air washers in that they clean the air without the use of water or the addition of water vapor. They are of two types (1) the viscous filter depending upon the dirt impinging on surface covered with a viscous fluid or oil; (2) the true dry filter type which removes the dirt from the air by passing it through cloth or felt screens, the openings in which are too small to allow the passage of dirt.
TYPES OF AIR WASHERS
The washing of air is done by passing it over a large surface area of
water which is accomplished in the various types of washers; (1) by pas
sing it through a fine spray of water; (2) by passing it over wet surfaces;
(3) by passing it both through a spray and over wet surfaces. After the
air is washed it is freed from entrained water.
.
When air is cleansed by washing its humidity or moisture content is
usually changed. In passing through the water spray or over the wet
surfaces both the dry and wet bulb temperature of the air approaches
that of the water at which temperature the air tends to become saturated.
The moisture.content of the air may, therefore, be controlled by control
ling the water temperature. By using water at a very low temperature
the washer becomes a dehumidifier or by heating the water the air may
be humidified. By raising the dry bulb temperature of the air after leav
ing the washer its relative humidity may also be controlled. The humidi
fying efficiency of any air washer may be given as
i
_ 1 _ Final wet bulb depression Initial wet bulb depression
for example: With an initial wet bulb depression of 20 deg. and the final
wet bulb depression of 6 deg., the humidfying efficiency is
-
E = I - 6_diX =.o.70
20 deg.
Material prepared especially for The Guide by W. H. Carrier. Carrier Engineering Corp., Newark, N. J.' 245
American Society of Heating and Ventilating Engineers Guide, 1926-27
TEMPERATURE AND HUMIDITY CONTROL
Air washers require method of control of temperature to prevent freez ing by too low temperature and of overhumidification by too high temperatures of the air entering and'leaving the washer. There is avail able one method of hand control and five methods of automatic or semi automatic control. The method of hand control is by tempering coils divided into two or more sections in series; the outer coil being turned on by hand whenever the outside temperature approaches freezing; the successive coils being turned on as the temperature drops below freezing. Where two sections are available it is usual to turn on the second section when the outside temperature goes below zero, and the third section, where provided, at temperatures below zero. The first, or outside section, must always be turned on full for all temperatures to prevent freezing of the coils. The steam supply to the second, or inside section, may be hand regulated at all temperatures above 10 deg. above zero.
The five systems of automatic regulation are:
1. Substitution of automatic regulation for hand regulation and operated in a similar manner; the coils being controlled both by variations in the outside tem perature conditions and also by an auxiliary control for one inside coil from a thermostat located on the discharge side of the air washer. (It is not possible to control the temperature of the air entering the washer except where there is an unusually long tunnel or duct for the thorough mixture of the air leaving the tempering coils before coming in contact with the thermostat.) '
2. By heating the spray water so as to maintain a temperature or dew point (as the air is then saturated), between 35 and 40 deg. of the air leaving the washer. This method does not necessarily require a tempering coil, it is preferable, however, to use one tempering coil for the purpose of tempering the air should the washer be shut down and prevent freezing of the water when the apparatus is not in operation. More than one tempering coil should never be used except where temperatures may go considerably below zero, then the tempering coils may be turned on, one at 20 deg. fahr. and the second at 0 deg. fahr. The tempering coil may be operated manually or by a thermostat connected with the outside air. The steam supply for water heating should be sufficient to heat and saturate the air from 10 to 35 deg. fahr., when water heating is used in conjunction with a tempering coil. This is to allow for sufficient margin for safety of operation. The steam requirements for this are given later.
3. By regulating the heat supplied either through tempering coils or through the spray water so that the water in the tank shall be kept well above the freezing point. Inasmuch as the wet bulb temperature of the air and the water in the tank are but few degrees apart when the water in the tank is not heated directly, it is a fairly effective and simple control. One permissible variation of this method is to use a thermostat in the air leaving the washer controlling the dry bulb temperatures at this point through regulation of the steam supply to the inside tempering coil. The wet bulb temperature of the air is controlled by means of water leaving the eliminator plates and is held at the desired point by means of adding heat to the spray water. This will control exactly the tempera ture and relative humidity of the leaving air. Two or more tempering coils are required for this method.
4. The fourth method is desirable where recirculation is used and consists in main taining the temperature leaving the washer at about 40 deg. by means of a thermostat located at this point and controlling the admixture of fresh and return air through automatically operated dampers. This effectively prevents over humidification and also danger of freezing and prevents the highest economy in cost in ventilation as no steam is required for either tempering or humidifying except after the air has passed the washer.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
5. The fifth method of automatic control is to reheat the air leaving the air washer to a definite thermostatic controlled temperature and to control the relative humidity of the air by means of a hygrostat which operates either on the tem pering coils to heat the air or to heat the spray water through a water heater.
STEAM REQUIREMENTS FOR AIR WASHERS AND FOR HUMIDIFICATION
Where the spray water is not heated it is necessary that the wet bulb temperature of the incoming air be above the freezing point otherwise the eliminator plates will coat with ice and stop up even if the dry bulb temperature of the leaving air is above freezing point. It is necessary to heat zero air to 48 deg. in order that the wet bulb temperature may be 35 deg. The temperature of the leaving air may then be expected to be approximately 39 deg. dry bulb and 35 deg. wet bulb with a dew point of 31 deg. The additional heat required due to humidification is that indicated by the temperature drop of 9 deg. or 162 B.t.u. per 100 cu. ft. of air, or 1 b.h.p., for every 3400 cu. ft. of air per min. These are the minimum requirements for humidication above that required for heating the air. The following Table 102 gives the heat required from various outside entering wet bulb temperatures to various dew points tempera tures corresponding to a relative humidity of 70 deg.
Table 102. Heat Required from Various Outside Entering Wet Bulb
Temperatures to Various Dew Point Temperatures Corre
SPONDING TO A RELATIVE HUMIDITY OF 70 DeG.
See Mark's Engineers Handbook.
Wet Bulb Temperature of Entering Air, Dec. Fahr.
-10 0 10
20 30 40 50 60
Relative Humidity, Per Cent at 70 Dec. Fahr. (and Dew Point, Deg. Fahr.)
30% (37.25)
40% (44.5)
50% (50.5)
60% (55.3)
70% (59.6)
80% (63.5)
1194 984 750 510 300
1452 1246 1025
779 496 178
1653 1447 1228 983
700 384
1860 1663 1445 1200
920 603 220
2044 1840 1621 1377 1097 . 783
394
2245 2039 1822
1581 1300 987
619 181
These values are for the total heat required for both heating and humidifying the air. The amount of heat required for humidfying only may be found by subtracting from the values given the heat required to raise the temperature of 1000 cu. ft. of air per min. between the limits specified. The heat required for heating the air is given by the formula
H = 1000 hJzJi 55.5
DUST REMOVAL
The comparative efficiency of various air cleaning devices, on the basis of dust removal can be determined by means of standardized tests operated at rated capacities and when handling air at a definite standard
247 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
with respect to.quantity and quality of dirt content. The determination of the cleaning efficiency may be made according to some standard method such as that described by A. M. Goodloe, member, A. S. H. & V. E. in the February 1924, Journal. The percentage of dust removal as determined by the method of testing for all commercial air cleaning devices should lie between 80 and 95 per cent and the minimum removal Under such conditions should be specified and guaranteed by the manu facturer.
The efficiency of dust removal may be expressed by the following
formula:
.'
_ ^ _ Weight any sample leaving Weight any sample entering
In case the resistance method is used in accordance with the AndersonArmspach method of dust determination, the formula will become
g _ Time required to give a definite resistance increment with entering sample Time required to give the same increment with leaving sample
or, if the same time be used in obtaining both samples, which is preferable then
= 1 _ The resistance increment of outgoing sample The resistance increment of ingoing sample
RATING OF AIR WASHERS AND FILTERS
Air washers and filters are rated as follows:
1.-^--Capacity in cubic feet of air handled per minute.
2. --Resistance in inches of water which the washer or filter offers to the flow of air at its rated capacity.
3.--Percentage of dust removal at its rated capacity.
4.--Percentage of entrained moisture remaining in the air after passing through the
washer while operated at its rated capacity. .
'
5.--If considered as a humidifying agent, the humidfying efficiency, or the percentage
of reduction in the initial wet bulb depression without external alteration of heating the
circulating water.
248.
Chapter XXI
AIR CONDITIONING AND COOLING
THE temperature and humidity of the air that surrounds people has an important bearing on their comfort and general efficiency while in the industrial field hundreds of manufacturing operations are dependent for their success upon the atmospheric conditions maintained. Geo graphical location has a bearing on climatic conditions and an intensive study of temperature and humidity variations in different localities shows that the places having a 56 deg. fahr. wet bulb temperature are favored with best health conditions, the greatest progress in science, art and mechanical development.
Scientists have always been seeking a way to produce the same ideal conditions indoors that prevail outside at certain seasons of the year. Many studies have been made, numerous theories have been advanced and discarded. From the latest studies of human comfort (see Chapter XVII) it has been concluded that there is a definite relation between a person's feelings and the degrees of heat, humidity and air motion.
Air conditioning as it is practiced today means to obtain predetermined effects upon material or persons within an enclosure by controlling the air purity, temperature, humidity, distribution and movement.
The development of effective devices for producing and maintaining the ideal atmospheric conditions desired, has made tremendous strides in the workroom and factory, school, theatre and hotel while but little effort has been made to reproduce these conditions in dwellings.
The manufacturer has adopted air conditioning as it has become an exact science and the results are measurable in dollars and cents, in a more perfect product, an increased, production, elimination of waste or some equally important factor. Varying degrees of moisture are required in manufacturing processes and the nature of the product will indicate whether a high or low relative humidity is to be maintained. Heating as well as cooling must be considered in air conditioning work and textile mills, printing plants, bakeries, candy kitchens,, laundries, etc., all present definite problems. For example in spinning rooms 75 deg. fahr. and 65 per cent humidity have been found best for the operations; in match factories 68 deg. dry bulb and 55 deg. wet bulb permit continuous operation and reduce fire hazards; in candy dipping rooms 66 deg. dry bulb and 50 per cent relative humidity give a high quality product. In some cases humidity must be supplied in others dehumidifying is necessary.
Air has certain definite properties and obeys certain well known laws, therefore to handle problems in air conditioning the relation between the wet and dry bulb temperature and the dewpoint should be thoroughly understood by the engineer. Briefly, the dewpoint is the temperature at which saturation is'obtained for a given amount of water vapor. With air at the dew point the wet and dry bulb temperatures are the same. If
249
American Society of Heating and Ventilating Engineers Guide, 1926-27
Fig. 78. Gallons Water Required per Minute 250
American Society of Heating and Ventilating Engineers Guide, 1926-27
heat is applied to air saturated at 50 deg. both thermometers will rise,
the wet bulb more slowly and the relative humidity will be reduced. At
ordinary temperatures the absorption of 1 grain of moisture per cu. ft.
reduces the dry bulb temperature
deg.
The usual way of adding moisture to air in large plants is with the use of an air washer while in homes and offices water pans in furnaces, of devices used in connection with radiators tend to better prevailing indoor conditions. While with air washers the degree of humidity as well as the temperature can be definitely controlled, in the average dwelling little, attention is paicj to these items as contrasted with factories, theatres, schools and other large buildings.
USE OF REFRIGERATION IN AIR CONDITIONING*
The advantages of one method of cooling air over another and the general factors governing the proportioning and design of air conditioning units are of interest to all whose work may bring them in contact with systems using refrigeration. It is the purpose of this section to give those not familiar with this important branch of air conditioning a better understanding of how refrigeration is applied in this work.
The producing of the refrigeration for an air conditioning installation is a problem for the engineer, and is the same as any other refrigerating problem with a varying load. The method of treatment of the air, and its distribution is a separate study involving the entire subject of air conditioning.
The remaining problem, then, in connection with the use of refrigera tion in air conditioning is the actual application of refrigeration in a unit or apparatus'for cooling the air.
The transfer of heat in air conditioning apparatus is usually accom plished by one of three methods:
1. Passing air through cold water or cold brine sprays 2. Passing air directly over cold coils
3. Combination of the above two methods
.
COLD SPRAYS VS. COLD COILS
A liquid spray which absorbs the heat from the air and transfers it to cooling coils is more frequently used than cooling coils in direct contact with the air, for the following reasons:
1. Fewer coils required, therefore lower first cost, less space and weight
2. Low power for driving compressor 3. Ease of keeping unit clean 4. Ease of controlling effect on air 5. Securing of air cleaning 6. Humidity.control in winter
-
Section on Cooling with Refrigeration compiled especially for The Guide by N. A. Hollister, New York. N. Y.
251
American Society of Heating and Ventilating Engineers Guide, 1926-27
Fig. 79. Square Feet Wet Coil Surface 252
American Society of Heating and Ventilating Engineers Guide, 1926-27
LESS COIL REQUIRED
Water is generally used for spraying when the lowest liquid temperature is not too close to freezing. For lower temperature calcium or brine solutions of varying strengths, according to the requirements, are used. A liquid spray has the following marked advantages:
1. Cheap method of securing an enormous radiating surface for heat transfer from the air
2. Continuous cleaning radiating surface
' 3. Elimination of all frosting of the coils with the
accompanying lowering of heat transfer from coil
surface
.
4. High heat transfer from liquid to coil surface
With the comparatively small temperature differences encountered in such work, as 40 deg. water and 55 deg. air, the need of considerable heat absorbing surface is apparent. When water is sprayed the heat transfer must take place on the surface of the drops and the square feet of surface will depend upon how finely the water is divided. Ten gallons of water sprayed and divided into spheres of 0.25 in. diameter gives about 380 sq. ft. of drop surface. If divided into drops of 0.10 in. diameter spheres, the surface increases to about 1000 sq. ft. The water is divided into almost invisible drops and the square feet of radiating surface secured will make a heat transference which would require a large and expensive coil.
With water flowing over the cooling coils the rate of heat transfer is many times that secured with air passing over or through the coils even when the coils are dry'and not frosted. With the correct design and proportioning 40, 50, or even 60 B.t.u. per hour per sq. ft. per deg. difference may be obtained in practical commercial units as compared to the 2 B.t.u. or '6 B.t.u. from dry coils to air. The high transmission from water to coil, frosting disadvantages and other factors all combine to necessitate much less water-to-coil surface than coil-to-air surface with an accompanying saving of cost, space, and weight.
LOW POWER FOR DRIVING COMPRESSOR
.
Many air conditioning installations are operated 24 hours per day and on every installation the power used for operation is important. The higher the ammonia temperature, the lower the power used by the compressor.
CLEANING UNIT
When using the coil-to-air bunker room designs in order to get contact
between the coils and air, the coils must be close together, arranged in
some staggered form or with deflectors and baffles. Such arrangements
make it almost impossible to allow for proper cleaning.
'
Dirt collects on the wet surfaces as on the wet eliminator or scrubber plate surfaces in the dehumidifying unit but in the bunker room there is
253
American Society of Heating and Ventilating Engineers Guide, 1926-27
Fig. 80. Troughs 254
American Society of Heating and Ventilating Engineers Guide, 1926-27
no flow of water to clean the surface. Fungus slime frequently collects
which, together with rust and dirt and matter carried in by the air, makes
cleaning desirable, if not an absolute necessity.
With the spray method the flowing water keeps all surfaces cleaner and the draining of the tanks gives a ready means of carrying away all matter collected.
CONTROLLING EFFECT ON AIR
The control of outgoing air conditions, whether by hand or automatic
devices is more rapidly changed in the spraying method than in the coil-
to-air method. If an operator is cooling the air with coils covered with
frost (and they are practically always covered with frost and ice) and he
desires to remove the cooling effect he may shut off the refrigerant but
the bunker room will continue to treat the air until the frost and ice are
melted which may take quite a while. The alternative method of chang
ing the air temperature is to use more space and increase ..the cost by
providing a by-pass duct around the bunker room.
'
By using a small tank capacity in relation to the volume being pumped it is possible quickly to cool or heat the water and thus have quick effect
on the air.
Cleaning of Air
Where dirt or gases carried by the outdoor air which would harm a product or be undesirable for persons, the coil-to-air bunker room does no cleaning and may even add unsatisfactory bacteria due to the unit not being easily kept clean. The spray unit is in itself an efficient air cleaning apparatus.
Humidifying of Air
When refrigeration is used in air conditioning work, whether primarily for lowering the dry bulb or for lowering the humidity the resulting moisture in the air is seldom as low as in the outdoor air during our many winter months. For many uses too low a humidity is as undesirable as too high a humidity and many times a constant humidity is desired all year to control yearly manufacturing conditions. The coil-to-air method offers no humidifying whatever while the spray type unit changes from a dehumidifier to a humidifier as soon as the water is not cooled. By air re-circulation or by heating the water or by both, even an excessive humidity may be readily produced by the spray type unit and the humidity controlled all year.
Coil and Spray Combined
Wi.thout study it might appear that placing the coils in the spray chamber would be the practical solution. It is seldom that this is advisable.
. On light duty units, that is, where not much refrigeration is being used in comparison with the air being handled and in some small units coils may be placed in the spray chamber thus doing away with the lower coil chamber, tank, and troughs, but more coil surface and a large spray chamber must be used.
255
.
American Society of Heating and Ventilating Engineers Glide, 1926-27
Fig. 81. Size of Pipes and Number of Pipes High 256
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257
American Society of Heating and Ventilating Engineers Guide, 1926-27
Unless the resistance of the unit is to be increased the spray chamber must be increased to allow for the space occupied by the coil in the air path. If much refrigeration is being used it will be found that the hori zontal projected area of the coil is considerable.
Only a small fraction of the water sprayed hits or comes in contact with the coil surface. Some of the water is therefore not cooled during each cycle and to maintain a certain average water temperature some of the water must be cooled considerably lower. As it is not advisable to operate too close to the freezing point, either brine must be sprayed or a low temperature cannot be carried without submerged coil surface as well as extra coils in the spray chamber.
When the sprayed water hits the cooling coil it does not have a ten dency to stick to the coil. The result is that a lower total volume of water will be flowing over the total coil surface and less total cooling will be secured per foot of surface used.
If the cost of a larger spray chamber, extra coil surface in the spray chamber, and the submerged coils required and the other factors are favorable, the coils may be used in the upper spray chamber with satis factory results in some installations.
For some duties a return bend arrangement may be used passing the air through the upper chamber and then down and back through the lower coil chamber. The coils are covered by a film of running water at a lower temperature than the air and as some air will come in contact with the cold water and other cooled surfaces a limited amount of extra cooling may be secured.
There is one important point which is a problem for the refrigerating engineer, but which has sometimes been overlooked. This is the matter of control of the refrigeration. Almost all air conditioning installations, whether with automatic or hand control, give a varying refrigerating load. Systems have been operated using many tons of refrigeration and this load has suddenly been removed owing to changing requirements. Meanwhile'the ammonia compressor may be operating, and freezing'of the system with accompanying damages results if carried far enough. Ammonia, lines in a plant cannot be tapped and valves turned on and off quite as readily as in a steam line. The refrigerating engineer should be fully advised regarding the varying of the air conditioning refrigerating
load. With the accompanying charts no one should have difficulty in checking
a layout or making preliminary approximate estimates of the part of an air conditioning unit using refrigeration. : It is impossible to give here all the factors governing the use of refrigeration and the allowance to make for different conditions such as coils that are dirty or oily on the inside, coils with poor outside surfaces, the element of time in changing condi tions of air treatment, structural considerations and particularly the action of the water when it is sprayed in the coil chamber in contact with the air. It is not- suggested by the author that those unfamiliar with the details of such work use these charts except as a source of general information as to the factors governing the design of such equipment.
Estimates as shown by the dotted lines on the charts are made as follows:
258
American Society of Heating and Ventilating Engineers Guide, 1926-27
1. Total heat load--4,0(30 B.t.u. per minute 20 tons refrigeration
2. Design and conditions allow 6 deg. rise in water temperature 3. Average water temperature 44 deg. 4. Average ammonia temperature 10 deg. 5. Difference ammonia and water 34 deg. 6. Gallons handled per ft. of trough lj2 7. Standard unit available allows 8 ft: long troughs
Fig. 78 shows that 80 gallons water per minute are required. Fig. 79 shows that 140 square feet of cooling coil surface are required when working at the rate of 50 B.t.u. per hour per square foot per degree difference.
Fig. 80 shows 64 lineal feet trough required. Also shows 8 troughs and coils wide and space required as follows:
6 in. coil centers require space 54 in. wide 8 in. coil centers require space 68 in. wide 10 in. coil centers require space 82 in. wide 12 in. coil centers require space 96 in. wide
From Figs. 79 and 80 it was found that 140 sq. ft. of surface and 64 lineal feet of troughs were required. Fig. 81 shows the following:
Pipe diameter.......... 1M in.
Lineal Feet...... ......... 225
Pipes High................
5
1J^ in. 283 6
1 in. 404 7
Pipes High have been increased to eliminate fractions and in designing a unit the lineal feet of coil required would have to be increased in pro portion. Allowance must be made for dirty coils, uneven water distri bution, quick control of temperatures and other factors, all of which might double the coil surface shown mathematically by the charts.
The heat transfer which may be obtained in the upper chamber and the maximum rise in the water temperature, and therefore the use of Fig.. 78, will vary with each change in nozzle, pump pressure, time element, pounds of water used per pound of air, water to air temperature differences, and other such factors as might be expected, but once the volume of water and the temperature through which it must be cooled are determined, the design of that part of the apparatus using refrigeration will be a comparatively simple problem to those familiar with such work.
In this work the problems are many and varied for cooling is used in many industries as well as for the conditioning of air in hotel dining rooms, theater auditoriums and many other rooms where it is desirable to maintain a temperature under that prevailing out of doors. - "
With modern refrigerating anc^ dehumidifying apparatus properly designed and applied it is possible to obtain most any percentage of ventilation perfection outlined in Chapter XV. Unless artificial cooling is resorted to it is hardly possible to obtain better than 75 per cent perfection as outlined in Chapters XV and XVI in hot sultry summer
259 .
American Society of Heating and Ventilating Engineers Guide, 1926-27
weather. In hotel, theater, etc., cooling work recirculation will conserve heat in winter and refrigeration in summer.
The development of the science of air conditioning has been rapid and the textile industry has derived great benefit from the adoption of adequate systems. Its applications are wide entering somewhere into every process in making of articles used every day, such as clothing candy, meat products, and a host of others. Mass production of uniform quality products has been made possible and has placed manufacturing schedules on a year round basis for many industries. It has also improved conditions of comfort and permitted the operation of theaters and other assembly places every day of the year contributing greatly to the health comfort and wealth of the nation.
9
260
CHAPTER XXII
DRYING
DRYING is an extraordinarily interesting problem in engineering, and thousands of the products that we use every day go through some sort of drying process during their manufacture. Wood when dried
becomes a workable and dependable material, the leather used in our
shoes must submit to the drying operation, and the manner of its drying
determines its value in the finished product. Clay when dried becomes
ceramic ware, flour mixed with water when dried becomes macaroni,
wood pulp dried becomes papier and gelatine dried and sensatized becomes
photographic film. All textiles require the drying process at sometime
during their manufacture.
The term drying is often used to cover dehydration, distillation, oxida
tion, evaporation or any chemical action due to each of these conditions.
Drying in its broader sense is not confined to the removal of moisture,
alone, but may refer to the evaporation or removal of substances other
than water and to such operations as paint and varnish drying, linoleum
manufacture and many other materials which require special treatment
with respiect to temperature, relative humidity and rates of moisture
removal.
'
METHODS OF DRYING
In general, drying processes may be divided into three classes: vacuum drying, drying with radiant heat, and drying with air currents.
The vacuum method is particularly adapted to material which must
be dried quickly at low temperatures and is generally used in the drying
of milk, sugar, vegetables and similar products.
In drying with radiant heat the temperature of the material being
dried is above that of the air surrounding it. The uniform distribution of radiant heat is important in the proper drying of materials, and the radiator used should have relatively large radiating surface and be well distributed in the drying area. About one-third to one-half of the heat given off by the radiating surface passes through the air to the object which is to be dried without materially raising the air temperature, the remaining portion of the heat emitted by the radiator warms the air by convection and produces air currents which assist in the removal of
the moisture from the material being dried.
Drying with' currents of air or air processing as this method is usually
termed, depends for its success upon the proper circulation in the
drying chamber so that it will come into direct contact with the substance to be dried. In ordinary work air temperatures carried are from 70-200 deg. fahr. with a relative humidity of 90-50 per cent. When tempera tures exceed 200 deg. the process is referred to as high temperature
261
American Society of Heating and Ventilating Engineers Guide, 1926-27
drying. Low temperature dryers are heated either by steam or hot
water directly or indirectly and the temperatures are below the boiling
point. In high temperature dryers the range is above the boiling point
and the heat is maintained directly or indirectly by electricity or heated
oil, direct introduction of flue gases, by high pressure steam or special
air heaters. Dryers are usually termed intermittent or continuous,
depending on whether they are charged for the complete drying period
of whether the material to be dried is continuously admitted and removed.
As compartment dryers consist of an enclosure to direct the air move
ment and control the heat, the current of heated air flowing through the
drying cabinet is under accurate and uniform control of temperature
and humidity. The selection of the compartment or continuous type of
dryer depends upon the most practical method of handling the material
rather than upon the drying process. The use of the continuous dryer is
customary whenever the drying period is less than 6 hours or where the
continuous drying process is required for 24 hours at a time. The efficient
operation of the continuous dryer requires that it function at full capacity.
The continuous dryer will be found in a variety of forms those prin
cipally used being the tunnel, drum, rotary and spray types. In a tunnel
dryer the product being kept in trays or loaded on cars moves along by
gravity or by means of an endless belt conveyor and the air usually moves
in the opposite direction from the material in order to get the maximum
drying efficiency. Drum dryers are used for liquids or solids such as
paper, cloth and materials that will pass over the drum in a continuous
sheet.
.
.
A rotary type of dryer consists of. revolving drums through which material and air intermingle, the drum being inclined to facilitate the movement of the material and is generally used where the product to be dried is in a moist or semi-moist condition. Spray drying consists of sending a fine solution of the material into a current of warm air and is limited to products which can be handled in liquid form.
The relative advantages of the different types of dryers are dependent on the nature of the material, the space available and the capacity of the apparatus. .
The variety of the products to be dried include many of animal or vegetable origin and many possess exceptional hydroscopic or absorptive properties. When they are of colloidal nature, successful processing is more difficult. Frequently it is necessary to expose the material to a series of different conditions beginning with a minimum temperature and maximum humidity, the temperature being increased and the relative humidity decreased as the work progresses. Where material contains both free and hydroscopic moisture, humidity conditions must be care fully adjusted so that during the period when the free moisture is being removed case hardening or surface drying does not occur. The air circulation is another important factor and the velocity which is used should be high enough to constantly remove the heavy film of saturated air which surrounds the material as soon as it begins to dry.
The temperature in which a product is to be dried should be as high as can be used without injury to the material. The accompanying tabulation will give the conditions that are usually found satisfactory.
262
American Society of Heating and Ventilating Engineers Guide, 1926-27
Material
Temp. Deg. F.
Apples. ................................ .........
140-180
Cocoanut............. .......... ...... ..................175-200
Sugar......................................... .........
150-200
Coffee.................................:...... .........
160-180
Mixed Stock Feed.............. .. .........
220
Starch.....................................-- .........
180-200
Glue........................................... .........
70-90
Thin Leather Hides.......-..... .........
90
Thick Sole Leather............... .........
90
Shade Cloth............................ .........
240 .
Rubber.......... ...... .................... .........
80-90
Soap..................................... .........
100
Wall Board.............................. .........
200-250
Gypsum Board...................... ......
180-280
Time
6 hours 4-6 hours 20-30 minutes 24-hours 20-30 minutes 12 hours ' 2-4 days 2-3 days 4 6 days 1-2 minutes 1-2 weeks 2 days 12-24 hours 24r-48 hours
In any system where there are no critical temperatures the permissible maximum working temperature is that above which the actual gain in speed or output due to the increase temperature is less in proportion than the increase speed of operation due to the increased temperature. In the case of some fruits and vegetables a relatively low temperature and high velocity is better than too high temperature, but, a too low temperature and too long drying period result in a tough product.
The evolution of the compartment and tunnel dryer design is very interesting and inumerable means have been used to secure the proper heating effect, air distribution and moisture removal. In dryer design it should be noted that there are three important objectives to be attained: to secure an adequate supply of air so distributed that it circulates evenly over the radiators and trays; to secure a rapid air movement so that moisture is absorbed from the material to be dried, and to effectively remove the moisture from the saturated air. The quantity of air that should be supplied by the fan and the number of air changes in the drying compartment will vary with the type of instal lation and is affected by the rate at which moisture is given up by the material to be dried. .
The theoretical amount of moisture which the air will remove is directly proportional to the difference between the wet-bulb and drybulb temperature of the entering air, while the actual amount absorbed by a given quantity of air is measured by the drop in dry-bulb tempera ture between the air entering and leaving the dryer, less a slight cor rection for radiation. For the same reason the higher the temperature of the entering air (for a given initial moisture content) the greater will be the amount of moisture removed per given quantity of air and the greater the economy of the dryer.
The temperature of the air will drop approximately
deg. for
each grain of moisture absorbed per cu. ft. of air measured at 70 deg.,
or 0.64 of a deg. for each grain of moisture absorbed per pound of air.
Approximate calculations may be based on air volume, but for eaxct
determinations the weight of air handled should be used, on account of
it being a fixed quantity at all temperatures. Knowing the rate of
drying desired and the amount of moisture to be removed, it is a simple
matter to determine the quantity of air required.
It is generally found that about 2 lb. of steam are required to evaporate
263
American Society of Heating and Ventilating Engineers Guide, 1926-27
1 lb. of water, under the most favorable conditions, while the more
usual figure for steam consumption is
lb. of steam to 1 lb. of water
evaporated. The principal losses in air drying are radiation and escape
of unsaturated air, either through the usual vent ducts or by leakage
through the kiln walls.
'
'
Practically every problem in air processing and drying presents its individual considerations which affect the over-all efficiency of the final installation. The peculiarities of the material to be dried, the allowable temperature and humidities, the most efficient means of handling the material, the speed with which the process must be effected, and the mechanical or physical limitations imposed by the plant conditions themselves are all factors which must be carefully considered in the design
of air processing and drying equipment.
It is customary for engineers who specialize in the design of such equipment to treat each problem individually and develop the most efficient for the specific requirements of the client.
REFERENCES
The American Society of Heating and Ventilating Engineers Transactions,
Vol. 22, p. 479; Commercial Drying Apparatus, L. P. Dwyer, Vol. 23, p. 255; Drying by Evaporation, F. R. Still, p. 265; Drying in Industrial Plants, J. O. Ross, p. 339, 511, 529, 537, 545; Food Drying, Vol. 24, p. 7; High Temperature Drying, Burt S. Harrison, p. 25; The Temperature of Evaporation, W. H. Carrier, p. 352; Bibliograph on Food Drying and Dryers, Vol. 26, p. 551; Commercial Dehydration, J. E'. Whiteley, Vol. 27, p. 251; Drying as an Air Conditioning Problem, A. W. Lissauer, Journal, American Society of Heating and Ventilating Engineers, October, 1921, p. 715; A Chronological Survey of Drying and Dryers, J. E. Bolling.
264
Chapter XXIII
OZONE IN VENTILATION
OZONE is a normal constituent of pure, natural air and its quantity varies with the topography of the country, particularly with regard to the altitude, the presence of bodies of water, and certain plant life.
Ozone is produced, photo-chemically, by ultra-violet light of short wavelength (120-180 pp.), while light of greater amplitude (300-330 pp) exerts a decomposing effect. At high altitudes, where short wave radia tions are more intense, ozone naturally occurs in greater quantities. It is continuously under the destructive effect of longer waves, however, but a dynamic equilibrium is finally reached between the rate of formation and the rate of decay, which shifts with the altitude. Since light of longer wave length penetrates closer to the earth than does that of shorter amplitude, the equilibrium becomes favorable to ozone directly as the altitude.
In summing up the evidence at hand it may be concluded that ozone, while mostly absent from city air, is normally present in pure country air, but in amounts that are difficult to estimate accurately. In nature the air is continuoulsy under ionizing influences, and the enclosing of air, as in buildings, excludes these influences, in addition to destroying the original ionization of the air. Ionization is involved in chemical activity.
The process of ozonizing, in addition to supplying ozone, ordinarily, absent from city air, further provides considerable ionized oxygen, producing a fresh, chemically active air, comparable with fresh, pure air of nature.
Physical Properties
Density--Observed Values; 1.657 (Otto, Direct weight method). 1.717 (Soret, by diffusion),
Calculated Value; 1.66
'
'
The foregoing values refer to air as unity. Its rate of diffusion, with respect to
oxygen is 0.75.
.
Heat of Formation--The production of ozone is an endothermic reaction, the heat of formation being 34,000 calories per gram molecule (Jahn, Zeit. Anorg. Chem. 68, 250; 1910).
Boiling Point, --112 deg. cent. (International Critical Tables, 1926).
At a temperature of 270 deg. Cent. (518 deg. fahr.). Ozone is instantly decomposed.
Odor--Strong, penetrating and characteristic. Perceptible to the sense of smell in
concentrations above 0.01 p.p.m. by volume (Hill & Aeberly, Heating and Ventilating
Magazine, December, 1921).
'
. Olfacty (minimum perceptible concentration expressed in molecules per c.c.)
2.705 X 10" at 0 deg. cent, and 760.
-
Solubility--Soluble in water and dilute acids, quite soluble in carbon tetrachloride
and many vegetable oils.
Its solubility in water, like all gases, is dependent upon the temperature and partial pressure. Nernst (Festschrift, 391; 1912) gives the solubility coefficient for water, at
Compiled especially for The Guide by Frank E. Hartman, Chicago, III.
' 265
American Society of Heating and Ventilating Engineers Guide, 1926-27
0 deg. cent, and 760 m.m. Hg., as 0.494; or about ten times as great as oxygen. However, high concentrations of ozone, in solution, in water, are not easily obtained in practice, due to the low concentrations at which ozone is available commercially. Of the two factors, temperature appears to have the greatest bearing, as evinced by the following tabulation wherein the experiments are listed in order of decreasing pressure, with only small variations in temperature. The experiments listed here are typical of many hundred of the kind, made by the author.
Experiment No.
19 82 . 22 151
4 10
Gage Pressure Above an .
Atmosphere mm Hg
300 240 300 150 500 500
Partial Pressure
op 0
5.83 5.75 5.72 4.87 3.19 3.19
Temperature Deg. Cent.
Solution of O3 in H2O ppm bt- Weight
Concentration mgs. 03 PER Litre of Air
21.5 17.5 20.5 17.7 21.5
18.9
1.7 3.0 1.5.
1.98 1.0 1.7
.
11.0 11.5 10.8 10.7
4.7 4.7
Chemical Properties
Ozone is one of the strongest oxidizing agents known. It is capable of oxidizing all of the elements, with the exception of gold and some of the
metals of the platinum group.
.
In the dry state its activity towards metals is not so marked, and in very low concentrations, such as used in ventilation, it may be considered as being practically inert towards the common metals.
It exerts a depolymerising action on the rubber molecule, its destructive effect being quite characteristic even at comparatively low concentrations (ca. 3 to 4 ppm). However, unless the rubber is under stress, fairly high concentrations (ca. 50 to 100 ppm), fail to effect it appreciably. The low concentrations used in ventilation have no noticeable effect on ordinary
rubber goods.
Iodine is liberated from potassium iodide by ozone. Many of the low oxidation salts (ous salts) are carried to a higher degree of oxidation (ic
. salts) by ozone.
'
Generally, ozone reacts to liberate molecular oxygen, only the third atom entering into combination. This may be expressed by the equation;
M + 03 = MO + 0,.................-....................................... (a)
which is typical of the inorganic reactions of ozone. In many cases, however, ozone reacts as follows:
M + 03 = M03.r.................... -............... :....................(b)
This reaction is examplified in the oxidation of sulphur dioxide:
. " ' 350, + 03 = 3S03
Reaction (b) is more typical of the organic, than the inorganic, reactions
of ozone, as illustrated by the oxidation of urea:
'
CO(Nff,), + 03 = Ns + COs + 211:0................:...................... ...(c)
In the oxidation of odoriferous substances, commonly met with in ventilation, such as skatole, indole, amine compounds, and the like,
266 '
American Society of Heating and Ventilating Engineers Guide, 1926-27
reaction (c) may be said to hold throughout. Where an amino group is present, molecular nitrogen will be produced, in addition to the carbon dioxide and water produced from hydrocarbons.
Germicidal Properties
Ozone compared with other gaseous germicides, generally used for fumigation, rightfully holds first place, as is revealed by the following table:
Agent
Ozone......... ...... Formaldehyde....................................................... Sulphur Dioxide--......................
Per cent necessary in moisted air to be germicidal
0.1 1.0 4.5
.
One-tenth percent by weight, of ozone in air is equivalent to approxi
mately 560 parts per million. Such a concentration of ozone could never
be used in ventilating work. Rideal (Ozone, D. Van Nostrand) cites
0.05 per cent concentrationas germicidal in air. Hill and Aeberly .
(Heating & Ventilating Mazagine, February, 1922), report noticeable
bacteriacidal effects in concentrations ranging from 300 to 450 ppm by
volume. Ozone, even in respirable concentrations, is effective in in
hibiting the development of fungi in cold storage; however, its action is
inhibatory and not destructive.
Deodorizing
T. Graham has pointed out that odoriferous substances are susceptible
to oxidation. It is further known that most odoriferous substances
contain unsaturated valencies, which render them particularly suscep
tible to attack by ozone.
,.
The so-called odors of animal effluvia, frequently encountered in crowded places, and where a large percentage of the air is re-circulated, consists of low oxidation gases, and whilst present only in vanishingly small quantities, are highly odoriferous. These gases are completely and rapidly oxidized to odorless and innocuous products by ozone.
Hydrogen sulphide is thrown off in small quantities by man, and is
frequently present in the air in relatively large quantities, as the result of
many industrial operations. Ozone oxidizes hydrogen sulphide very
rapidly; under some conditions to sulphuric acid and under other con
ditions to free sulphur and water.
.
Products of putrefaction, such as trimethylamine, indole, skatole, the mercaptans, etc., are readily oxidized by ozone; as are the odors arising from foods, especially during cooking. Many of the odors resulting from the combustion of organic matter are destroyed. Sulphurous gases produced by the combustion of coal are completely oxidized, whilst many of the unsaturated gases resulting from the incomplete combustion of natural gases, oil and spirit fuels, are deodorized by ozone.
Carbon monoxide is but slowly oxidized to the dioxide, the reaction being accelerated by the presence of a catalyst and also at elevated temperatures. However, the molecular concentrations of ozone must be comparable, and preferably in excess of, that of the CO, in order to obtain reaction velocities of sufficient value for practical purposes.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
In garages and testing rooms the air is frequently contaminated with gasoline vapors and unsaturated gases, resulting from incomplete com bustion, which cause headaches and feelings of lassitude. Ozone is valuable in oxidizing these gases and freeing the air from odor. However, CO must always be taken into consideration. It is an odorless and "very insidious poison, since the victim has no warning of his condition until coma is induced. Four parts of CO pier ten thousand of air is the maximum concentration which may be continuously respired without noticeable effect. (Henderson, Yandell, et al--Journal. Ind. Hyg. Vol. 3, 1921). Carbon monoxide has been frequently found present in quantities much greater than four parts pier ten thousand in the atmosphere of garages and the like, and so far, adequate ventilation is the only remedy known. It is obvious that, chemically, ozone has nothing to offer for carbon monoxide correction, since the reaction is, at best, slow in the absence of a catalyst, and a molecular concentratiort of ozone comparable with a lethal concentration of CO, would produce quite as much physical distress as the carbon monoxide. Carbon monoxide is the index of good garage ventilation; this factor may be favorable and still an odoriferous condition, causing minor distress, may attain. Here ozone is of value, but is must be used with judgment, and does not permit of a curtailment of any of the ordinary CO precautions. Ozone and ionized air may possibly have some physiological effect on the haemoglobin, which may cause a shift, in selectivity, in favor of oxygen, but to date knowledge on this subject is not available.
The Production of Ozone
The air actually passed through an ozone generator should be free from water vapior, dust and gases normally foreign to the atmosphere. Rideal (Ozone, D. Van Nostrand) states that a RH of 25 per cent, at a dry bulb tempierature of 20 deg. Cent., limits the yield of ozone 60 to 70 pier cent of that which would be produced with dry air, other conditions being equal. The vapior content of air to be ozonized should not exceed 0.1 grains per cubic foot, for the best results.
The presence of sulphur dioxide, nitrogen dioxide, chlorine, etc., appreciably reduces the efficiency of an ozonizer. Ammonia gas, should it be admitted to the ozone generator in appreciable quantities, may cause an explosion.
The presence of dust favors the passage of sparks, which cause thermal decomposition of the ozone, and adds to the formation of oxides of nitrogen. Ozone generators are now generally supplied with an air filter.
Sparking and ``creeping discharges," which frequently form at the
edges of the electrodes, should be prevented by the propier design of the
electrode members.
.
The rate of decomposition of ozone is greatly accelerated at high
tempieratures, therefore, ozonizers should be operated with a minimum
tempierature rise. At room temperatures the rate of decomposition is .
negligible.
Due to the catalytic effects on the decomposition of ozone, inherent in commercial ozonizers, there is a decided limiting concentration at which ozone may be produced. As a rough approximation, it may be stated
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American Society of Heating and Ventilating Engineers Guide, 1926-27
that the rate of decomposition is proportional to the concentration of
ozone. Thus, the energy necessary to produce high concentrations is
much greater than that required to produce the same weight of ozone in a
more dilute state. The rate of air flow, to energy input, determines the
concentration; therefore, air flow is a very important factor in ozonizer
design. However, it must be pointed out that the yield does not increase
indefinitely, with increasing air flow; and since the power required to dry
the air is considerable, in relation to the power required to produce the
quantities of ozone used in ventilation, it becomes necessary to strike a .
compromise between these two costs, in order to obtain the lowest gross
cost of production.
Hill and Aeberly (Heating & Ventilating Magazine, December, 1921)
have published graphs showing the relation between yield of ozone and
air flow, while Hartman (Ice & Refrigeration. November and December,
1924) has given a detailed analysis of this factor, in the terms of dollars
and cents.
Analysis of Ozone-Air Mixtures
.
'
.
Ozone, in air, is best determined quantitatively by iodimetric titration. Of the numerous methods, for the quantitative determination of ozone, that have been advanced from time to time, none combine as high an order of accuracy with simplicity of technique, as does this standard method, the technique of which is familiar to all chemists or may be found in any text book of volumetric analysis. A few precautions, not ordinarily described in standard text books, should be observed when applying this method to ozone determinations, see Hartman, F. E., Analysis of OzoneAir Mixtures, Aerologist, August, 1926.
As the out-put of an ozonizer can be very closely controlled by the manufacturer, it is recommended that the out-put be checked, when desired, by an analysis of the ozonized air coming directly from the ozonizer, thus eliminating the errors inherent in fan deliveries, leakage, etc., which may be addative, and of sufficient magnitude to give quite an erroneous idea of the performance of the ozonizer.
It is frequently desirable; to determine the concentration of ozone actually produced in the spaces for which the ventilation is intended. Such concentrations are generally of the order of 0.01 ppm minimum, to about 0.5 ppm maximum, and are without the range of accuracy of the standard iodimetric method. A fairly accurate, and comparatively simple, method for determination of concentrations of this order has been devised by Yant, Jones & Houghten, which is described in detail in the Transactions, A. S. H. & V. E., Vol. 29, p. 331 et seq., 1923.
Periodical checks of the actual out-put of the ozonizer, together with a check of the concentration established in the ventilated spaces should be fruitful of exceedingly interesting and suggestive data.
Determining Proper Concentration
The concentration of ozone in the air of ventilated spaces, should not be allowed to rise appreciably above 0.01 ppm. . However, this does not mean that this.is the proper concentration to introduce. The quantity of ozone necessary' to maintain this concentration will depend upon what has been aptly termed ``respiratory load," or cubic feet of air, per person,
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American Society of Heating and Ventilating Engineers Guide, 1926-27
per unit of time; together with a consideration of such odoriferous operations as may exist in the ventilated spaces, and the purity of the source of air supply. Thus air drawn from near the level of the city streets will require more ozone to maintain the proper concentration, than will air drawn from purer sources. This applies equally to air drawn from the vicinity of stock yards and the like.
Likewise restaurants, smoking rooms, dance halls and theatres will require a greater quantity of ozone than will schools, offices, etc. Depart ment stores, particularly the basements, due to odors arising from fabrics and other wares, require special consideration. There is also what may be called the "building co-efficient," which includes the length of the duct system, the heigths of the ceilings, and the condition of the venti lating system, whether old and dusty or new and clean, together with the rate of air change, and whether humidity control is .provided or not.
In industrial ventilation, where specific contaminants are to be con tended with, a knowledge of the concentration and character of the contaminating substances is essential for best results. Ozone is not a cure-all for industrial odors in general, for instance, allyl alcohol vapors, which possess an annoying odor, when subjected to action with ozone, produce the aldehyde acrolein, which is exceedingly irritating, even in very small concentrations. Here harm rather than good will be done. It is best to submit problems of this character to engineers experienced in the use of ozone for definite recommendations.
It has been recommended (Hill & Aeberly, Heating & Ventilating Magazine, March, 1922) that sufficient ozone capacity be provided to permit of building up comparatively high concentrations when the building is not occupied. In schools, for example, the ozone equipment should be operated at a capacity to give perhaps 0.01 ppm of ozone when the building is occupied, and after the pupils have left the building, the full capacity of the machine should be used, closing all openings, recircu lating the entire amount of air, and building up a sufficient concentration to exert the maximum deodorizing effect throughout the building, the duct work and mechanical equipment.
For general ventilation, under average conditions (85 per cent ventila tion), the ozonizer should be of sufficient capacity to provide a concen tration of 0.05 ppm of ozone in the fan volume. For 100 per cent ventilat ing systems a lesser quantity can be made to suffice. A generalization cannot be made broad enough to cover the many special conditions, particularly problems of specific deodorization.
Determining Required Capacity
Having chosen the maximum required concentration of ozone, for the purpose in hand, it becomes necessary to calculate the capacity of the ozonizer. There seems to be no agreement, among makers of ozone equipment, regarding the unit of rating for ventilating ozonizers. There are three methods in common use, as follows:
Parts per Million: wherein the ozonizer is rated in parts per million (generally by volume) in some specific air volume. At first this may seem a very desirable method for rating ozonizers, as it is simply necessary to state the ppm of ozone, required for the specific CFM of air. Ozonizers so rated, have their ozone meter calibrated in ppm for the specified CFM, and should the fan volume be varied, the meter is liable to become
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misleading, as the original CFM may not always be considered when reading it. Con- . sideration of the original CFM, and proportioning to any new CFM, is essential with an ozonier so rated, if accurate knowledge of the concentration employed at any other
CFM is desired.
Ozone is generally applied on the basis of ppm by volume, and as there is no existing agreement concerning a standard temperature and pressure at which the ozonizer should be calibrated, this method of rating leaves the actual capacity of the unit open to question, unless the temperature and pressure employed for calibrating is stated. Since weight is unaffected by temperature and pressure, and as ozone is determined chemically, directly in the terms of weight, weight forms a better basis for the rating of ozonizers, and eliminates a number of qualifying factors, together with tedious
calculations in ozonizer design.
Milligrams per Minute: Ozonizers so rated have their ozone meter calibrated directly in the terms of milligrams per minute, and leave no questions concerning the actual capacity of the unit. Errors of omission are further circumvented, by forcing a con sideration of all factors, when determining the concentration of ozone in the air of the
ventilating system.
The expression ppm, generally means parts per million by volume at room temperature and average barometric pressure, when referred to ozone in ventilation. One litre of ozone at 25 deg. Cent, and 740 mm Hg, weighs 1.9127 grams. Taking these conditions as a basis, the weight of 1 cc. of ozone may be taken as 2 milligrams, yielding a very convenient figure for use, easily remembered, and sufficiently accurate for all practical purposes. The metric system is best employed here, for convenience of analysis and ' calculations of design, with final conversion into English units for purpose of application. It is on this basis that the following formulae have been derived:
Formulae for Application:
CFM = Fan Capacity, cubic feet per minute of air.
mpm = Milligrams of ozone per minute.
ppm = Parts of ozone per million parts of air, by
volume, at 25 deg. cent, and 740 mm. Hg.
28,320 = cc per cubic foot.
" 2 = weight of 1 cc of 03 at 25 deg. cent, and 740 mm. Hg.
Given: CFM and ppm; Find: mpm
.
CFM10PPm X 28,320 X 2 = mpm
which reduces to:
CFM X ppm v, _c a.
--------
X 56.64 = mpm......................-............... --..... (1)
Given: mpm and ppm; Find: CFM mpm X 103 ^ -J-- = CFM 56.64 X ppm
(2)
Given: mpm and CFM; Find: ppm
mpm
103
56.64 X CFM
ppm.
(3)
Ventilating Unit--The Ventilating Unit (VU) has been created by the author, for
the purpose of simplifying the calculations for applying ozone to ventilating systems.
It is a compound unit, taking into consideration quantity and time. It is analagous to
the horsepower, wherein 33,000 pounds are lifted one foot in one minute. It represents
that quantity of ozone necessary to produce a concentration of 0.1 ppm in 1,000 CFM,
at 25 deg. cent, and 740 mm Hg.
1 VU = 5.7 milligram of 03 per minute 340 milligrams of 03 per hour
"
The formulae for its application are very simple:
Given CFM and ppm; Find VU CFM 100 X ppm = VU.
(4)
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American Society of Heating and Ventilating Engineers Guide, 1926-27
. which reduces to pointing off two places in the GFM and multiplying by the ppm. Given: VU and CFM; Find: ppm ~CpkfU X .1,000 = ppm.................................................... (5)
which reduces to pointing off three places in the CFM, one place in the VU, and dividing the former into the latter.
Given: VU and ppm; Find: CFM
1,000 ppm X 10
VU = CFM
(6)
As the VU represents a definite weight of ozone, in a definite period of time, ozonizers
so rated leave no question as to their actual capacity. The decimal character of the unit admits of much facility in calculations.
WATER PURIFICATION
Ozone finds a very important application in the purification of water. Operating costs rarely exceed an energy expenditure of 500 watt hours per thousand gallons.
Ozone successfully eliminates odors and tastes of organic origin,
particularly the tastes and odors due to excessive chlorination, and the
presence of chlorinated phenols and tarry substances. Organic colors are
bleached, and the effluent of a properly designed ozonizer is practically
sterile.
'
The essentials of a good water ozcoizer are, an adequate and constant supply of ozone, in sufficiently high concentrations to effect high solubility at normal temperatures, adequate mixing of the ozonized air and water, under conditions which produce maximum diffusion and absorption, and over a sufficient period of time to effect sterilization. The control should provide under and over voltage release, together with a release for waterpressures too low to efficiently operate the mixing device.
INDUSTRIAL USES
Ozone finds a number of applications as an oxidizing agent, in industrial
operations, many of which are of little interest in ventilation. However,
ozone may be used to accelerate the drying of paints and varnishes, the
"oxidation" of drying oils, and many other drying operations involving
oxidation. Such problems are generally specific, and it is advisable to
consult the manufacturers of ozone equipment concerning them.
*
COLD STORAGE
Ozone is of value in cold storage for the prevention of mould develop- . ment, deodorizing of storage spaces, after removal of odoriferous products, to prepare for other commodities. The preservation of flavor, particularly in eggs, and the general freshening and vitalizing of the air, the advantage of which is reflected by the superior condition of products stored in "fresh" air over those stored in "dead" air.
272
Chapter XXIV
DUST, EXHAUST AND COLLECTING SYSTEMS
PNEUMATIC exhaust and collecting systems may be classified in various ways. They may be classified by the economic purpose to be accomplished by the industries served, or by the type of system used.
Classifying exhaust systems by industries served, they fall in sub divisions such as, metal working, woodworking, leather and shoe manu facturing, rubber industry, flint grinding, pottery works, pulverizing
works, celluloid manufacturing, printing establishments, felt hatting and
fur manufacturing, textile mills, grain and cereal industry, etc.
.
TYPES OF SYSTEMS
The type of exhaust system to be used is determined by the industry
served, kind of material handled, and the work to be accomplished.
There are two general arrangements; the central and the group systems.
In the central system a single or double fan is located near the center of
the shop with a piping system radiating to the various machines to be
served. In the group system, which is sometimes employed where the
machines to be served are widely scattered, small individual exhaust
fans are located at the center of the machine groups.
.
The group arrangement has the advantage of flexibility. It is, however, more difficult to balance than the central, and also the large number of small diameter trunk lines required show a much higher friction loss per foot of length than with the central system where one large main pipe serves a considerable number of machines:
Exhaust systems are also characterized by the means employed to
collect the dust or other material handled. The dust or refuse may be
collected and controlled by enclosing hoods, open hoods, inward air
leakage or general room exhaustion.
.
With some classes of machinery it is not feasible to closely hood the machines and in these cases open hoods over or adjacent to the machines are provided to collect as much of dust and fumes arising as possible. In this class come such machines as rubber mills, package filling ma chinery, sand blast, crushers, forges, pickling tanks, melting furnaces, and the unloading points of various types of conveyors.
The open hoods should be placed as close to the source of dust or fumes as possible with due regard to the movements of the operator.
When the hood has to be placed at some distance above the machine it should be large enough to encompass an area of considerable extent as
diffusion is usually quite rapid.
.---
Material for this section originally prepared for The Guide by H. M. Nichols, revised by R. E. Shaw,
Boston, Mass.
.
'
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Consideration must also be given to the natural movement of the fumes. For those that are lighter than air the hood should be over or above the machine and where a heavy vapor or dust-laden air at ordinary temperature is to be removed, horizontal or floor connections are re quired. If it is attempted to remdve heavy dust such as lead oxides by an overhead hood the conditions may be worse than if no exhaust were used at all, owing to the rising air current carrying the dust up through the breathing zones. The principle to keep in mind in all cases is to take advantage of the natural tendency of the material to move upward or downward.
In another class of operation the main object is to prevent the escape of dust into the surrounding atmosphere, the removal of some dust from the machine or enclosure being merely incidental. The dust creating apparatus is enclosed within a housing which is made as tight as prac ticable, and sufficient suction is applied to the enclosure to maintain an inward air leakage, thus preventing escape of the dust. While the ex haust system is only required to handle the air which leaks in through the crevices and openings in the enclosure, yet in many installations leakages are very high and great care is required to obtain satisfactory results with a system of this kind. The inward leakage principle is utilized for controlling dust in the operating of tumbling barrels, grinding, screen ing, elevating and similar processes.
Certain dust and fume producing operations are best carried on by isolating the process in a separate compartment or room and then apply ing general ventilation to this space. The compartment or room in which the work is performed should be as small as is consistent with convenience in handling the work. The ventilating system should be designed so that a strong current of clean air is drawn across the operator, and away from him toward the work, where the dust is picked up and carried from the room.
IMPORTANT REQUIREMENTS OF AN EFFI CIENT EXHAUST AND COLLECTING SYSTEM
.
It is impracticable to enumerate all of the requirements for an efficient
exhaust and collecting system, however, among the more important
there are the following:
'
1. Fans, collectors, hoods, and ducts should be of adequate size.
2. Air volume and velocities should be adequate for the work to be accomplished.
3. The exhaust hoods should not interfere with the operation of the machine or access to its working parts.
4. The system should not increase the fire hazard.
5. The system should not increase the dust explosion hazard.
6. Where power is expensive, should do the required work with a minimum power
consumption.
.
. 7. In cold climates, should not remove any more air than necessary from the
building.
8. Where power is comparatively cheap, first cost should be low, even if the power required to operate is slightly higher.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
In designing an exhaust system certain quantities must be chosen arbitrarily by the engineer, and the success of the installation depends to a large degree upon his experience and the skill with which he chooses these arbitrary quantities. It is quite possible for an inexperienced de signer to lay out a system which may figure out theoretically correct, but the general results may be unsatisfactory.
The first step in designing systems employing hoods to trap the material is to determine the number and size of the connections for each individual machine. At this point the designer's past experience is of great value, as, while it is possible to set certain general standards, yet in actual practice the sizes are considerably affected by the local conditions which the layout man finds in the field, and he bases the pipe sizes and hoods on his judgment, being guided by his experience and the general practice.
The size of hoods and connections are determined by the size and type
of machines or apparatus to be handled by the exhaust system, by the
kind of material worked, by the duty of the machines and other local
conditions. It is impracticable to lay down any general rules for de
termining size connections for the various types of machines and Tables
104 to 106, giving sizes as used in some of the common industries are only
intended to serve as a general guide. Under certain favorable conditions
smaller connections may be supplied.
-
Open bottom exhaust hoods of the canopy type, where it is impractical to enclose completely the point of origin of the dust or fumes, should extend over the machine or operation at least 6 in. in every direction ifthe hood is not elevated more than 2 ft. For each additional 2 ft. of elevation, the size of the hood should be increased 6 in. in all directions.
It is desirable to make the area of the connecting pipe not less than rG
of the total hood area.
.
In systems employing inward air leakages the area of connections must be proportional to total leakage area in the enclosing housing.
Tumbling barrels have connections ranging from 4 to 8 in., bucket con veyors 6 to 12 in., and screening machines 6 to 10 in.
In general room exhaust large connections should be provided so that
the air may be handled at low velocity and with a minimum power con
sumption.
After having determined on the proportions of the exhaust system as
regards hoods and connections it is then necessary to choose the air velo
city or suction at the hood connections, suction at the hood connections
being a measure-of the air velocity at that point.
.
AIR VELOCITY
The air velocity required is dependent upon the specific gravity of the material, the fineness of the particles, and their physical characteristics. Certain materials such as grease wools, silk waste, salt, and other hydro scopic substances are difficult to handle due to the tendency to deposit in the conveyor pipes.
While the velocity in the system should be sufficiently high to insure the removal of the material it should be kept as low as practicable since any higher velocity requires the use of unnecessary power. With a fixed system or orifice the power increases as the cube of the increase in velocity.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
Table 104. Size of Connections for Wood-Working Machinery
Type of Machine
Circular Saws, 12-in. diam... ................................................... Circular Saws, 12-24-in. diam................................................. Circular Saws, 24-40-in. diam................................................. Band Saws, Blade under 2 in. wide...................................... Band Saws, Blade 2-3 in. wide--............................................ Band Saws, Blade 3-4 in. wide.... .......................................... . Band Saws, Blade 4-5 in. wide--............................................. Band Saws, Blade 5-6 in. wide.... ....... ................................... Small Mortisers._........................................................................ . Single End Tenoners.................................................................. Double End Tenoners.... .......................................................... Double End, Double Head Tenoners.................................... Planers, Matchers, Moulders, Stickers, Jointers, etc.--
With Knives, 6-10 in........ ........ ;.................................... With Knives, 10-20 in......... ............................................. With Knives, 20-30 in....... ............................................... Shapers, Light Work.................................................................. Shapers, Heavy Work................................................................ Belt Sander, Belt less than 6 in. wide--............................... Belt Sander, Belt 6-10 in. wide........ .................................... Belt Sander, Belt 10-14 in. wide........ .................................... Drum Sander, 24 in....... ............................................................. Drum Sander, 30 in....... ............................................................. Drum Sander, 36 in........ ............................................................ Drum Sander, 48 in......... ......................:................................... Drum Sander, over 48 in........................................................... Disc Sander, 24 in. diam........................................................... Disc Sander, 26-36 in. diam....... ............................................. Disc Sander, 36-48 in. diam..... ................................................ Arm Sander........................................ ...........................................
Diameter of Connections in
Inches
4 5 6 4 5 6 7 8 6 6 7 10
5-6 6-8 6-10 4-5
8 5 6 7 5 6 7 8 10 5 6 7 4
105.Table
Size of Connections for Grinding and Buffing Wheels
Diameter op Wheels
Grinding--
6. in. or less, not over 1 in. thick.................................
7 in. to 9 in., inclusive, not over 1^ in. thick......
10 in. to 16 in., u
" u 2 in. u ......
17 in. to 19 in., "
u " 3 in. " ......
20 in. to 24 in., u
tt " 4 in. a ......
25 in. to 30 in., a
u a 5 in. " ......
Buffing--
6 in. or less, not over 1 in. thick.................................
7 in. to 12 in., inclusive, not over in. thick......
13 in. to 16 in., u
" " 2 in. " ....
17 in. to 20 in., "
" " 3 in. " ......
21 in. to 27 in., "
" " 4 in. " ......
27 in. to 33 in., "
" " 5 in. " ....
Max. -
Grinding Surface SQ. In.
Min. Diam.
op Branch Pipes in
. - Inches
19 3
43 3'A 101 4
180 4M 302 5 472 . 6
19 3A
57 4 101 4H 189 5 338 ' 6 518 7
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American Society of Heating and Ventilating Engineers Guide. 1926-27
Table 106.
Suctions Required at Hoods For Connections of Usual
Proportions
.
Work
Static Suction in
In.
of Water
1-2
1-2
1-2 2-4 2-3 1-2
1-2
1-2 1-4 2-3 1-3 1-2 3*-5
Velocities commonly employed are: 2,500 to 3,000 ft. per min. for light dusts, cotton, shavings and sawdust from dry wood, and similar substances. Heavy dusts, wool, shavings and sawdust from wet wood, rags, waste paper and similar materials 3,000 to 4,000 ft. per min. Lead dust, hog waste, pulp chips, etc., 4,000 to 6,000 ft. per min.
In choosing the pipe sizes consideration must be given to the way and manner in which the machines will be operated, as in case a considerable number of machines, all discharging into one main, should be shut off at the same time, the velocity in the main might easily be lowered to the point where it would not be sufficient to carry the material from the machines still in operation, and thus result in clogging the pipes. Ac cordingly, it is sometimes desirable to use velocities higher than the mini mum to allow a factor of safety to cover this contingency.
The resistance of a round pipe to the flow of air is inversely proportional to the fifth power of the diameter of the pipe. Therefore, handling a given quantity of air through a larger pipe at a lower velocity decreases the frictional resistance very materially and correspondingly decreases the horse-power required at the fan, and thus it is very desirable to keep the air velocities throughout the system as low as possible, consistent with the major requirement that the material must be taken away as fast as made, without clogging the pipes, under the varying operating conditions met with from day to day in the plant.
The static suction required at the hood connections varies from 1 to
5 in. of water. The suction required depends upon many factors such
as the relative size of the hoods and connections, kind and quantity of
material handled, as well as its physical condition. In some states codes
have been issued specifying suctions to be maintained for the more
common dusts.
.
A suction standard should always be considered in conjunction with the shape of hood, and size connection, as these factors together determine the volume of air exhausted and its velocity which in turn are a measure of the effectiveness of the exhaust system.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
The cubic feet of air of standard density taken into the system at each connection is given by the formula:
<2 = 4000 4/
where
<2 = Cubic feet of air per minute;
.
A -- Area of connection in square feet;
/ = Orifice or restriction coefficient;
i = Static suction measured in inches of water.
The orifice coefficient / is dependent upon the shape and construction of the hood and will range from 60 to 90 per cent. An average value is 70 per cent.
Knowing the suction at each hood and the diameter of each connection, the volume of air passing up each branch can be taken from the accom panying Table 107. The sum of all these volumes gives the total volume to be handled by the exhaust fan.
Table 107. Cubic Feet of Air Handled Per Minute Through Average
Collecting Hoods
.
Based on Coefficient of Orifice of 0.71 with 10 Per Cent Added for Leakage
Diameter of Connection
Pipe In.
1
Maintained Suction--In. Water Gage
l H 2 2H 3
4
5
m
2 2H
3
m 4
4J4
5
6
7
8
9
10
38
68
107 153
209 273 345 427 614 835 1092 1381 1705
47 84 131 188 256 334 423 523 751 1023 1337 1694 2090
54 97 161 217 296 386 488 605 867 1181 1546 1953 2409
61 108 168 243 330 431 546 676 970 1322 1727 2184 2695
67 118 185 266 362 473 598 ... 741 1062 1448 1892 2387 2959
76 136 214 306 *
418 546 690 854 1228 1670 2184 2762 3410
86
153 238 343 466 609 775 955 1373 1870 1 2440 3091 3806
Common practice is to provide a main suction pipe having an area 20 to 25 per cent in excess of the sum of the areas of the branches enter
ing it between the point in question and the dead end of the main.
Similarly the discharge pipe leading from the fan outlet to collector is
frequently made the same diameter as the large end of the main suction
pipe. The reason for this increase in size is that a considerable power
saving results from the lower air velocity. However, there is no technical
reason why mains should be a certain percentage greater area than the
sum of the connections, and still lower power consumption can be ob
tained by using larger branches and mains of equal area. While the rule
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American Society of Heating and Ventilating Engineers Guide, 1926-27
of thumb method of determining size of mains works very well in many cases, yet it is always desirable to figure the mains and branches of the proper size to give the velocity which has been found best suited to the
work to be done.
In certain special cases where explosive or poisonous dusts such as aluminum buffings, grain dust, powdered sugar, or lead dust are handled, increasing the size of the mains unduly would introduce a serious hazard.
An exhaust system to be effective must remove a certain amount of air from each hood or other connection, and in addition must maintain sufficient velocity throughout the piping system to convey the dust or refuse material to the separator. Any system which is mechanically well constructed and handles the requisite air at the connections and maintains sufficiently high velocities, is an effective system from the standpoint of the work done. However, to keep the operating cost low it is advantageous to do the work with as low velocities as the character istics of the material will permit. The skilled designer will keep both of these requirements in mind and produce a system which is both effective and economical of power.
The maintained resistance of the exhaust system is composed of three
factors: (1) Loss through the hoods; (2) Collector drop; and (3) Fric
tion drop in the pipes.
.
A. Suction at the various hoods must be chosen from experience. Loss through the hoods can be calculated by an experienced engineer but may be taken very roughly at one-half the suction.
B. Collector drop in inches of water is given by the following.formula:
Drop - CVf-ioLoo-V)
-
where
C = a constant which depends upon the type of collector and is found to range from 0.25 to 0.75;
V = velocity in feet per minute of air entering the collector.
C. Friction drop in the pipes must be computed for each section where there is a change in area or in velocity. Find the velocities in each sec tion of pipe starting with the branch furtherest from the fan. The friction drop for these sections can be determined by reference to Table 108. Total friction loss in the piping system is the friction drop in furthest branch plus the drop in the various sections of the main, plus the drop in the discharge pipe.
The total maintained resistance of the system--or static head re quired at the fan = A + B + C.
SELECTING THE FAN
Having determined the volume of air and static head required, the size of exhaust fan, speed and horse-power can be found by reference to the manufacturers performance tables or charts covering the type of exhaust fan selected.
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Table 108. .
Frictional Resistance of Straight Conveyor Pipe
To Flow of Air Per 100 Feet of Pipe
Vbl. of Air in Ft.
per Min.
2000 2200 2400 2600 2800 3000 3200 3400 3600 3800 4000 4200 4400 4800 5200 5600 6000
2000 2500 2400 2600. . 2800 3000 3200 3400 3600 3800 4000 4200 4400 4800 5200 5600 6000
Loss of Pressure in Inches for Given Diameter Pipe
4'
1.92 2.32 2.77 3.26 3.76 4.33 4.93 5.56 6.23 6.95 7.69 8.48 9.26 11.05 13.00 15.25 17.30
5'
1.53 1.85 2.22 2.60 3.01 3.46 3.94 4.45 4.98 5.55 6.15 6.78 7.41 8.85 10.50 12.05 13.85
6*
1.28 1.55 1.84 2.17 2.52 2.88 3.28 3.71 4.15 4.62 5.13 5.65 6.18 7.38 8.66 10. OS 11.52
7'
1.09 1.32 1.58 1.86 2.15 2.47 2.82 3.18 3.56 3.97 4.40 4.85 5.30 6.32 7.44 8.61 9.89
8'
0.962 1.16 1.39 1.63 1.89 2.08 2.47 2.78 3.12 3.48 3.85 4.25 4.63 5.55 6.50 7.55 8.66
10' -
0.770 0.932 1.01 1.30 1.51 1.73 1.97 2.22 2.49 2.78 3.08 3.49 3.71 4.43 5.21 6.03 6.92
12'
0.640 0.778 0.924 1.08 1.26 1.44 1.64 1.85 2.08 2.32 . 2.57 2.83 3.09 3.69 4.34 5.05 5.76
14* 16* 18' 20' 22' 24' , 30'
0.550 0.655 0.7900.930 1.07 1.24 1.41 1.59 1.78 1.99 2.20 2.43
2.66 3.17 3.72 4.32 4.95
0.482 0.582 0.693 0.810 0.932 1.08 1.23
1.43 1.56 1.74 1.92 2.12 2.33 2.77 3.25 3.78 4.33
0.428 0.578 0.617 0.722 0.838 0.961 1.09 1.24 1.38 1.54 1.71 1.88 2.06 2.46 2.89 3.35 3.85
0.385 0.465 0.553 0.650 0.754 0.865 0.985 1.11 1.25 1.39 1.54 1.70 1.85 2.22 2.61 3.02 3.46
0.350 0.423 0.504 0.590 0.685 0.788 0.895 1.01 1.13 1.26 1.40 1.54 1.68 2.02 2.36 2.74 3.14
0.320 0.388 0.462 0.542 0.628 0.722 0.820 0.925 1.04
1.16 1.28 1.42 1.54 1.85 2.16 2.52 2.89
0.257
0.310 0.369 0.434 0.503 0.577 0.657 0.742 0.832 0.926 1.03 1.13 . 1.24 1.48 . 1.75 2.01 2.31
FRICTIONAL RESISTANCE OF ELBOWS
Elbows having a throat radius equal to the pipe diameter set up a resistance equivalent to a section of straight pipe approximately 10 diameters long. With a throat radius of 1H times the diameter the resistance is about the same as seven diameters of straight pipe.
The usual types of ventilating fans are unsuitable for exhaust systems which are required to handle materials such as shavings, sawdust, emery dust, etc. Higher pressures are required than in ventilating work and in addition housings and blast wheel must be so constructed that the materials handled do not deposit in same. While the fans used in different exhaust systems are more or less of the same general type, modifications are frequently necessary to fit them for handling such materials as long shavings, strips of paper, cotton, pulverized coal, etc.
The most common method of separating the dust and other materials from the air is to pass the mixture through a centrifugal or "cyclone"
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collector. In this type of collector the mixture of the air and material is introduced on a tangent, near the cylindrical top of the collector, and the whirling motion sets up a centrifugal action causing the compara tively heavy materials suspended in the air to be thrown against the side of the separator, from which position it spirals down to the tail piece, while the air escapes through the stack at the center of the collector.
For most systems, the nominal size and number of the collector will be the same as the diameter in inches of the main pipe leading to it. The nominal sizes of the different makes of collectors vary greatly, and it is advisable to make sure that a collector is large enough to do the work without excessive pressure drop, irrespective of nominal number or size. The larger the collector within certain limits the better will be the separa tion, and the less will be the back pressure on the fan and power consumed.
Fig. S4. Exhaust and Conveying System Handles Waste from Wood
Working Machines
Special construction is sometimes required for fine dust, also some blow pipe manufacturers use a special type of collector for furnace feed, the object being to deliver the material to furnaces as uniformly as possibly.
When more than one fan delivers into a single collector a back pressure valve is required to prevent one fan blowing back through the other in case the second fan should stop for any reason.
In most plants, where wood refuse is used for fuel, it is delivered by gravity directly from the collector to the furnace. The discharge~pipe leading from the bottom of the collector is divided and the junction fur nished with a switch or valve so arranged that when the material.comes too fast for the fires it can be diverted into a reserve bin.
The furnace feeder should be hinged where it is attached to the lower end of the discharge pipe, in order that it may be disconnected from the
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furnace when the fan is shut down. Also great care must be taken to provide an absolutely tight switch. Otherwise, when discharging refuse to the storage bin, fine sawdust will sift through this valve and settle in the furnace feed pipe, and, in ,case the fireman has neglected to dis connect the feeder from the furnace, the flame may flash back, following this train of fine sawdust, into the collector.
Other forms of collectors or separators, are: settling chambers, cloth screen and bag collectors, bag houses, air washers and electric precipi tators.
DESIGN OF HOODS
.
The mechanical design as regards shape and construction of the hoods is extremely important. Probably more systems fail from improper hood construction than from any other one cause.
If the material to be moved is already in motion, as are the chips thrown off from wood-working machines, the hoods should be arranged in the path of the particles so that the velocity of the particles assists the air in carrying the material to the throat of the hood.
. Hoods should be arranged to draw dust and fumes away from the face of the operator. They should be placed as close as possible to the source of dust or waste material and wherever practical, the hoods should en tirely enclose the dust producing operation.
Hoods are usually constructed Of galvanized sheet iron or other equally substantial and durable material. The material should be heavy enough to stand the abrasive action of the dust and refuse. The hoods should be of sufficient mechanical strength to keep their shape and should be well braced and substantially supported. Galvanized iron used should never
be lighter than No. 22 gage.
If acid or corrosive fumes are present heavy material painted with acid resisting paint should be used, or the hoods may be made of non-corrosive
material.
.
The exposed edges of all sheet metal hoods should be bound with wire
or band iron, not only to give the necessary stiffness, but also to prevent
the operator from being cut by the raw edges of the sheets.
3
CONVEYOR PIPES
The conveyor pipes leading from the hoods to the fan and thence to
the collector are commonly made of galvanized iron, the gage of which
varies from No. 24 to 14, depending upon the diameter. The piping should
be free from dents, fins and projections of all kinds on which refuse ma
terial might catch.
All permanent circular joints should be lap-jointed, riveted and sol
dered, and all longitudinal joints either grooved and locked or riveted and
soldered." Circular laps should be in the direction of the flow, and piping
installed out-of-doors should have the longitudinal laps at the bottom.
Every change in pipe size should be made on a taper not by an abrupt
change.
:
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American Society of Heating and Ventilating Engineers Guide, 1926-27
All pipes passing through roofs should be equipped with collars so arranged as to prevent water leaking into the building.
The main trunks and branch pipes should be as short and straight as possible, strongly supported, and have the dead ends capped to permit inspection and cleaning. All branch pipes should join the main at an acute angle, the junction being at the side or top and never at the bot tom of the main. Branch pipes should not join the main pipes at points such that the material from one branch tends to enter the branch on opposite side of main.
Cleanout openings having suitable covers should be so placed in the main and branch pipes that every part of the system can be easily reached
Fig. 85. Collectors on Roof Piano Factory
m case the system clogs. Either a large cleanout door should be placed in the main suction pipe near the fan inlet or a detachable section of pipe, held in place by lug bands, may be provided.
Elbows should be made at least two gages heavier than straight pipe of the same diameter, the better to enable them to withstand the addi tional wear caused by changing the direction of flow. They should preferably have a throat radius of at least one and one-half times the diameter'of the pipe.
Every pipe should be kept open and unobstructed throughout its entire length, and no fixed screen should be placed in it, although'the
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American Society of Heating and Ventilating Engineers Guide, 1926-27
use of a trap at the junction of the hood and branch pipe is permissible, provided it is not allowed to fill up completely.
The passing of pipes through fire-walls .should be avoided wherever possible, and sweep-up connections should be so arranged that foreign material cannot be easily introduced into them.
Where considerable quantities of explosive dust or inflammable materials pass through the exhaust fan, the blast wheel should be con structed of brass composition, copper or other soft metal arid in all cases ample clearance should be provided between blast wheels and housings.
Where stringy or fibrous material is to be handled through the fan be sure to employ a fan wheel especially designed for that purpose.
MAINTENANCE OF SYSTEM
Because of its simplicity the exhaust system usually receives but
little attention once it is installed; however, to obtain the best results, it should be' inspected at suitable intervals and necessary adjustments made.
The exhaust fan should be given proper attention the same as any other
high-speed machine. It should be kept in proper alignment and tightly
bolted to its foundation.
.
Suction hoods, which have been removed to adjust the machines,
should be replaced, as soon as the adjustments are completed.
Never start a machine with the blast gate closed, as the slight air leak-'
age past the blast gate may draw material into the pipe and clog it.
Disconnect furnace feeders from the furnaces when not in operation,
and do not overload the system by ill-advised additions.
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Chapter XXV
MECHANICAL DRAFT
THERE is a certain draft which will give the best results for every kind of fuel and rate of combustion. The amount of fuel that can be burned per hour per square foot of grate surface is governed by the quality,
and the type of fuel as well as by the draft obtainable. Mechanical draft
is used to obtain economy of operation, increased capacity or both and
may be accomplished by either the forced or induced method. The two
common methods of producing mechanical draft are by means of fans or
steam jets. Each method has its advantages and design conditions will
govern the choice of apparatus. Steam jets are reliable, have nothing to
break or wear out and are more economical to install. On the other hand
fans usually take more power to operate and in cases where fan engines
or turbines are used steam can be recovered in the water heater or
condensers.
.
Mechanical draft fans are usually either disc or centrifugal type and
because of the severe service to which they are subjected they must be of
rugged construction, well balanced, must be able to operate continuously,
withstand high stresses, maintain the proper pressure and horse power
characteristics and show a good efficiency over a wide range of operative
conditions.
.
The amount of coal that can be burned per hour per square foot of grate surface is governed by the quality and type of coal as well as the amount of draft available. Mechanical draft fans should be of such capacity that they will be able to handle the quantity of gases produced. If it is assumed that 5 lb. of coal per boiler horse power at 24 lb. of flue gases per pound of coal there would be 120 lb. of flue gases per'hour to handle.
The volume of flue gases may be easily computed from the density of gases at the flue temperature and the size of fan to be provided ihay be obtained from the maker's table. No attempt should be made to put more air through existing boilers by speeding up the fans as the power consumption will be increased too rapidly. With the fuel bed at constant thickness doubling the weight of air requires about Zx/i times the draft pressure difference, and trebling the weight of air about 6 times. Under the first condition the fan would require times the weight of steam so it can be seen that the most efficient fan must be selected in order for boilers to be driven at a high rating.
. The effects of running a fan under conditions other than those for which
it is designed are graphically shown by the performance curves of any
given fan.
--
Where the size of the openings and the length of the pipe remain constant the volume of air handled by any fan increases almost directly,
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American Society of Heating and Ventilating Engineers Guide, 1926-27
as the speed, the pressure increases as the square of the speed and the
power consumed increases as the cube of the speed. It is evident therefore
that if more air is required but at an increased pressure it would be better
to install a larger or additional fan rather than increase the speed of the
present fan.
'
FORCED DRAFT
In forced draft work the air enters directly to the ash-pit so that the fuel bed is under pressure. Pressure maintained is sufficient to force the air through the duct system, stoker setting and fuel bed otherwise there would be an objectionable leakage of gasses whenever the fire doors were opened. Losses through the boilers, breechings, etc. are cared for by the
stack. Forced draft equipment requires a higher stack than when the induced
draft system is used. As the fan handles comparatively cool air the
Fig. 86. Draft Required to Burn Various Kinds of Coal
equipment required is smaller and uses less power than an induced draft system of similar capacity.
Forced draft is used in under feed stokers and with chain grate stokers when high peak loads, beyond the capacity available with the natural draft, are required.
INDUCED DRAFT
Fans for induced draft are placed near the base of the stack and handle the smoke arid hot gasses leaving the furnace. It is desirable to use this system when ap even draft is required, and the chimney available is of limited height.
With the practice of providing economizers, air heaters, etc. in the modern boiler plant and operating up to 400 per cent rating an excessive load is placed upon the chimney and induced draft equipment is necessary.
A good idea of the draft needed to burn various kinds of coal at the rate indicated under normal conditions is shown in Fig. 86. Draft for
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American Society of, Heating and Ventilating Engineers Guide, 1926-27 ;
various loads varies with the combustion rate and with the, kind of fuel used. The principal losses which the draft will have to overcome will be through the boiler, fuel bed, the stokers, brick work, breechings and economizers.
The amount of air required with the forced draft system will depend upon the size of the plant and will necessitate the assumption of the combustion rate and the evaporation. There are theoretically 12 lb. of air required for the combustion of 1 lb. of coal, actually the requirements are from 20 to 25 lb. per pound of fuel.
It is customary in mechanical draft work to allow for 100 per cent excess air for hand-fired installations and 50 per cent excess where a stoker is used. This, however, is affected by the kind of stoker used, the size of the installation and the rating it carries. As there is a definite relation between the analysis of flue gases leaving the boiler and the quantity of air supplied, the results of an analysis will give the amount of air or gases being handled by a forced or induced fan. The method used is usually the Orsat apparatus. The amount of air being used may be determined by taking COs readings in the breeching or forced draft connections, or by weighing the coal and ash and taking a flue gas analysis.
MECHANICAL STOKERS
Three types of stokers are commonly used, namely chain-grate, under fejjd and over feed type. Their use permits a uniform fuel supply, efficient combustion, boiler operation at higher rating and the effectual meeting of peak loads. Either forced or induced draft is successful with chain grate stokers which are designed primarily for the use of bituminous coal particularly the free burning and clinkering types. Where forced draft is used, air is delivered at different pressures under the grate, the control being accomplished by dampers, to suit the grade of fuel and the firing rate. At the front the pressure will not exceed 2 in. water gauge and will decrease toward the rear as the fuel bed gets thinner.
Over feed stokers are adapted for all kinds of fuel and the angle of the
grate bars will indicate whether bituminous, semi-bituminous coking coal
or the non-coking types are to be used.
'
Under feed stokers are made in single or multiple units and will burn coking or non-coking varieties of coal equally well. In both cases either forced or induced draft may be used.
The important points to be observed in recommending and using stoker installations are:
1. Stokers in large plants used in conjunction with modern methods
of coal storage and handling at their disposal show a considerable
labor saving. .
2. In small plants stokers are only advisable where the saving in fuel will be large or where the smoke question is a factor.
3. The upkeep cost of stokers generally exceeds that for hand
fired furnaces.
-
4. The use of different fuels and a better efficiency is obtainable with mechanical stokers.
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No stoker will handle every class of fuel satisfactorily so that in selecting a stoker the engineer should take into consideration the type best suited for the fuel and operating conditions. Relative to efficiency of combustion, other conditions being similar there will be no appreciable difference with the different types' of stokers provided that the proper type is used for the fuel to be burned and the operating conditions are fulfilled.
The duct for forced draft work should be as short and straight as possible and designed so that the maximum velocity pressure under load conditions should not exceed 10. per cent of the static pressure. The air velocity should generally not exceed 2500 cu. ft. per minute.' Air ducts are made of heavy steel but concrete ducts are commonly used. Duct sizes are determined in accordance with the general laws of frictional resistance.
288
Chapter XXVI
VENTILATORS AND NATURAL VENTILATION
OF the two methods of ventilating available, namely by mechanical means, and by the so-called natural forces, the later is often favored, because it is not dependent upon fans, blowers and motive power appara tus, any of which may get out of order; it requires no supervision, and it costs nothing for power to operate, ft is dependent upon the operation
of natural laws and is not subject to the requirements of control possible
with mechanical ventilation. .
Natural ventilation utilizes two separate agencies, (1) the buoyancy of the air caused by temperature difference between inside and outside of the building, and (2) the energy of the wind. The former is the same action that produces draft in a chimney. The two forces are entirely distinct and separate, and may either co-operate or oppose each other, depending upon the design of the ventilator.
A ventilator is an opening in the roof, properly protected against rain, snow and down draft; and surrounded by a hood or cowl intended to utilize the force of even the slightest breeze from any direction what-so-
ever, in such a manner as to assist and increase air movement within an ' enclosure. Occasionally a damper is required to prevent over-ventilation
in cold, stormy weather. In any event, openings near the floor of the
building which is to be ventilated are necessary to allow the ventilators
to act.
Ventilators may be classified in general as stationary and rotary, and each of these may be divided into siphoning and non-siphoning, the rotary ventilator being one which always presents the same face to the wind, and the siphoning ventilator being one which is so constructed as to use the force of the wind to siphon the air out of the ventilator, usually
allowing some of the external air to pass through the head.
.
Engineers, architects and contractors who must make a selection should be guided by the following four general points, (1) quality of material, (2) design, (3) construction and (4) capacity (conditions should
be stated otherwise a fair comparison of this item is impossible).
What is generally desired more specifically is, the greatest amount of reliable ventilation for a given cost of equipment. The following facts
affect ventilation and ventilator capacity:
.
, 1. Temperature difference between inside and outside of building.
2. Height of ventilator above air inlet openings.
...
3. Wind velocity.
'
4. Design, shape and proportions of ventilator.
Material for this section furnished especially for The Guide by Frank Kelley, Pittsburgh, Pa., C. T. Palmer, Akron, Ohio and Thornton Lewis, Philadelphia, Pa.
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American Society of Heating and Ventilating Engineers Guide, 1926-27
5. Air admission below the ventilator, (resistance to flow of air into building).
6. Resistance to air flow through the building. 7. Resistance to air flow in the ventilators themselves. 8. Location of the ventilator with respect to surrounding objects.
Of the factors mentioned, only items 4 and 7 depend upon the ventila tor itself; the other items depend upon circumstances wholly outside of ventilator size and design.
While ventilators may be divided into certain classes or groups and the average efficiency of one class will be higher or lower than the average efficiency of another class, this does not in any way determine the capacity of individual ventilators, as ventilators of the same class and, which from a casual observation appear to be the same, will have entirely different characteristics, due to the fact that some of the fundamentals have been overlooked or changed in one or the other.
The principles which should be followed are:
A--Stationary Ventilators.
1. A head sufficiently large to produce a large low-pressure area on the side opposite the wind, and to give an area of outlet for the air leaving the head large enough to obviate undue resistance to flow. At the same time the head should not be so large as to be unwieldy handling or to be structurely weak when erected.
2. A storm band on stationary non-siphoning ventilators sufficiently wide and so placed as to prevent the entrance of external air into the ventilator head.
3. If the ventilator is a siphoning type additional outlet air space must be provided in the head in order not to restrict the air pas sage from the exhaust pipe.
B--Rotary Ventilators.
.
1. A flaring outlet from a rotary ventilator will give a better exhaust than a straight oultet.
2. Practically frictionless and noiseless turning of the ventilator head, when the wind direction changes. The head should turn at very low wind velocities.
3. Smallest possible change of direction of the air ascending from the building and least possible resistance to its egress by louvres or other obstructions at the outlet opening.
C--All Ventilators.
'
1. Freest possible outlet for the air from the building, with large areas and smallest possible change of direction of the air flow.
2. Freedom from down drafts and from entrance of rain or snow.
3. Freedom from being rendered inoperative by collection of snow or formation of ice on ventilator.
The simplest form of ventilator, shown in Fig. 87, consists of an outlet pipe with a conical hood above it. The addition of a storm band, as
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American Society of Heating and Ventilating Engineers Guide, 1926-27
shown in Figs. 88, 89 and 90, gives an increased protection against the
entrance of rain or snow. The storm band, if placed so close to the cones
as to restrict the outflow of air, interferes with ventilation. On the other
hand, if the openings are made large enough to permit free egress of the
inside air, the storm band increases the ventilation by utilizing the wind
velocity to produce suction.
'
A further development of the later principle is the siphon ventilator, as illustrated in Fig. 91, in which siphons or ducts are introduced for the particular purpose of producing suction.
Various Styles of Roof Ventilators
In the swiveling or rotary ventilators, typified by Figs. 92 and 93, a freely rotating cowl is used. A wind vane is provided for keeping the opening facing away from the direction of the wind. This type allows free egress of the inside air (unless the outlet is made unduly small). For producing suction, it depends upon the viscous drag of the wind pas sing along the outside of the cowl.
In the induction or ejector type of ventilator, which is also of the swivel ing or rotary type Fig. 94, the kinetic energy of the wind is used to a large extent by creating suction, due to the viscous drag both inside and out side the cowl. This device is effective for ventilation even with very low wind velocities. In some stationary ventilators of the siphon type, or of
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American Society of Heating and Ventilating Engineers Guide, 1926-27
the swiveling cowl type, low wind velocities have the effect of reducing
the air discharge produced by the temperature difference, apparently because the laws of fluid flow are not the same at high and low velocities,
which is an established fact.
.
All comparisons of capacity must be referred to a given dimension, namely the throat area, corresponding to the nominal size of the ventila tor.
Resistance to flow of air is caused by; (1) restricted outlet openings, or
(2) many turns or changes of the direction of the air flow. As regards the first item, this depends entirely upon the proportions, and not upon the type; some of the stationary ventilators have smaller, and others have larger outlet area than some cowl ventilators of the same nominal
size. Regarding the second item, the swiveling cowl ventilators offer less resistance than the stationary type, in that the direction of air flow is changed as little as possible.
Unless swiveling ventilators move very freely, the opening,, at times, faces towards the wind so that ventilation produced by temperature difference is much reduced, or wholly counteracted. In that case, snow
and rain may blow in. The rumbling or creaking noise caused by hard turning swivel ventilator is also very unpleasant. These troubles are, of course, eliminated in well designed ventilators, but must be kept in
mind.
In Fig. 95, is shown a rotary or air-turbine ventilator, which rotates
continously under the action of the wind, the motion being produced by the difference of wind pressure on the convex and concave sides of the vanes. The air-exhausting action is due to centrifugal force. This type of ventilator must be very carefully designed if it is to be leak-proof, and
if the noises and impact forces, due to ice accumulating on the vanes in the winter are to be eliminated.
CAPACITIES
The variety of factors affecting capacity makes it essential for the user of ventilators to exercise great care in respect to this item of capacity.
The draft in a ventilator head, due to the velocity of the wind, is. primarily caused by the low pressure area or partial vacuum on the leeward side of the ventilator head. A draft in certain designs may also be caused by the siphoning action of the wind passing through the ven tilator head, but any air which is allowed to enter the head to create a siphoning action must get out and in so doing will diminish the effective area of the head for exhausting air, and it is also very likely to reduce the effectiveness of the low pressure area.
Naturally the ventilator which makes the best use of the available forces for creating a draft and which at the same time provides the freest path for the flow of exhaust through the ventilators should be the best ventilator. It does not follow, however, that a ventilator of one class is better or poorer than one of any other class. It may be good or poor not because it belongs to a certain class, but depending upon whether the proper basic principles have been observed in its design.
The theoretical velocity of the gases due to temperature difference may be obtained from the following well-known formula:
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American Society of Heating and Ventilating Engineers Guide, 1926-27 V = ^2gH = ^2gH(IL-i )
in which
,
V = Velocity in feet per second g -- Gravity 32.2 ' H = Effective height of ventilator r1 = Temperature absolute of air in ventilator r = Temperature absolute of air outside. .
Rotary Ventilators
Fig. 95 Air-Turbine Ventilator
Determining the Effective Height
This gives the theoretical velocity which will be reduced in the practical case by the resistance in the pipe and the ventilator head. It is impossible to state an exact ratio between_the velocity obtainable and the theoretical as every case will be different, but a reasonable assumption would be 50 per cent providing there is free admission of fresh air into the room or space ventilated.
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Many exaggerated claims haye been made in the marketing of ventila tors and it was only recently that very careful tests were made by the U. S. Bureau of Standards (Trans. A. S. H. V. E., Vol. 27, 1921, p. 67. See also Trans., Vol. 28, 1922, p. 189 and Vol. 29, 1923, p. 39) and1 by other'reliable investigators, with the result that ventilator capacities are now quite accurately known under specified test conditions.
Conservative figures for the best types of ventilators now on the market, under conditions of unrestricted flow of air to the ventilator, are given by the equation:
where
<3 = A x
36 xJhx (/i - t0)
6+ V
+ 20. X V
Q -- cubic feet of air exhausted per hour through a ventilator having a free area at the throat of A square inches, mounted on a roof at a height of H feet from the center of the ventilator outlet to the floor, and with a wind
' velocity of V miles per hour, and average temperature t\ inside t0 outside.
The height H has been given as the height above the floor; strictly speaking,, it is the height of the column of warm air in the building, which is approximately equal to the height above the location of the air inlet to the building. This location is usually near the floor. If, however, the inlet' is much higher, as shown for instance in Fig. 96, the height H is indeterminate, but may, in general, be taken as halfway between the center of the air inlet and the floor.
Highest class ventilators, for instance those of the ejector type, will, under favorable conditions, discharge continuously 25 per cent more air than these conservative figures indicate. Capacities are lower, on the other hand, if ventilators of lower efficiency are used, or if the flow of air into or through the building is restricted, or if the ventilator is not ex posed to the free sweep of the wind. Tests occasionally show consider ably higher discharge rates over short periods of time. These abnormally high results are produced by the action of the wind upon certain openings of the building; they are not due to the ventilator itself, and cannot be depended upon for continuous ventilation if the direction of the wind changes. In the smaller sizes of ventilators (12 in. or less in throat diameter) the air discharge pier square inch of cross-sectional area is reduced, on account of the frictional resistance and, in the rotary types, on account of reduction of free area by the supports, bearings, etc.
Example.--What is the capacity of an 18 in. ventilator, located 35 ft. above the floor, with 6 miles per hour wind velocity, 50 deg. fahr. outside temperature, 68 deg. fahr. inside temperature?
Answer.--A = 0.7854 X (18)a = 255 sq. in.
36. X 0 = 255. X
35 X ^68 - 50 )
6+6
+ 20 X O'
average capacity under these conditions.
294
= 50,000 cu. ft. per hr.,
American Society of Heating and Ventilating Engineers Guide, 1926-27
VENTILATION REQUIREMENTS
The air supply pier pierson and per hour, or the number of the renewals of air contents pier hour is given in Chapter I, p. 23. (See also Chapter XV, p. 202.)
To obtain effective, uniform ventilation and avoid local drafts, the ventilators should not be placed more than 30 ft. apart; 20 ft. apart is a good average. It is best, although not absolutely necessary, to locate the ventilator at the ridge of the roof, unless the building exceeds 40 ft. in width, in which case two rows of smaller ventilators should be used. Where the building to be ventilated is surrounded by higher buildings which obstruct air currents, it is desirable to extend the ventilators above the buildings by mounting them on stacks.
Example.--A foundry building is 40 ft. wide, 200 ft. long, with an average height of 40 ft.; the ventilators are to be mounted at the ridge of the roof, at a height of 55 ft. above the floor. What number and size of ventilators are required?
Answer.--In this case, ventilation is especially necessary in summer. The air in the building should not be over 10 deg. fahr. warmer than the outside air. The wind velocity may be as low as 4 miles per hour. Spacing the ventilators, tentatively, 25 ft. apart, 8 ventilators would be required. Under average conditions, 10 air renewals per hour are sufficient. If the foundry is small and cramped, and pouring takes place over a large section of the floor space, 15 or more air renewals per hour may be needed. On the basis of 10 renewals per hour, the capacity of each ventilator must be:
Q_ = 10 X----(-2--0--0---f-t-.---X- --4--0---f-t-.-- X----4--0---f:--t. )- = 400,000 cu. ft. per ,hour . .O
The discharge per square inch of throat area under these conditions is;
J~36 X y 55 X 10 deg.
6 + 4 mi./hr.
+ 20 X 4 mi./hr.
= 165. cu. ft. of air per hr.
The required throat area per ventilator is
400,000 = 2420. sq. in. 165.
if there is no resistance and no wind pressure.
VThe diameter is
2420. = 55.5 inches. .7854
Standard sizes are 54 in. and 60 in.
Either eight--54 in. or else seven--60 in. ventilators could be used, spaced respectively
25 ft. or 28 ft. apart.
The foregoing is based on the use of high class ventilators. If ventila tors of lower efficiency are used,'or if the air flow into the building is restricted (as in winter) larger ventilators may be required.
CONTROL OF VENTILATION
The ideal ventilator would be one which utilized to the very-best advantage even the very lowest wind velocities; attained full capacity at a wind velocity of 4 or 5 miles per hour; and then automatically con trolled the air flow so that the discharge remained constant at all higher wind velocities. Such an ideal ventilator does not exist.
The best types now on the market do, however, fulfill very well the
295
American Society of Heating and Ventilating Engineers Guide, 1926-27
first two requirements; for the last one, hand regulation is depended
upon. For this purpose either a butterfly damper is provided in the
throat of the ventilator,, or, in some of the rotary types, louvres are
sometimes arranged at the discharge opening of the ventilator. The
damper or louvres may be operated by chains from the floor of the build
ing, or the butterfly damper electrically controlled by push button.
The louvres with their operating device have the disadvantage of restrict
ing the free area of discharge, even when open wide. In some designs,
this results in a serious reduction of capacity. Ice can interfere with
their operation. The dampers may be made to close automatically in
case of fire, by use of a weight and fusible link arrangement. The dampers
should be so located that ice cannot freeze them tight so that adjustment
is impossible.
Regulation may also be accomplished, just as effectively, by restricting the flow of air into the building (closing the windows or doors), although this is quite inconvenient in many cases.
It is generally considered best practice to have the area to be ventilated
between the intake and the exhaust. Also to have the intake 15 per cent
greater in area than the exhaust.
'
The efficient ventilator uses every bit of wind energy striking it, to the
fullest possible extent.
-
The ideal ventilator is then the one using all the forces at hand, to the greatest possible advantage. Such a ventilator must first be correctly designed to use all these forces--proportioned to use them efficiently--be strongly and practically built to last---needing no care or attention--as they are usually placed in inaccesible places.
APPLICATION OF VENTILATORS
The use of ventilators on factory and mill buildings is too well known to require comment. For pickling rooms, etc., where noxious fumes are produced, they are practically indispensable.
Ventilators for houses are becoming quite'common, especially for the ventilation of bathrooms, which has been much neglected in the past. A frequent use for ventilators is on the top of chimneys, to prevent down drafts and to increase the updraft by means of wind action.
For use on houses, several requirements must be kept in mind. Good appearance and noiseless operation are very important. The motion of the ventilator, if of the revolving type, must not shake the building or cause knocks or thumps; and the construction must be such that in the winter the movable part does not freeze to the fixed portion of the venti lator and thus stop the rotation.
On account of the increasing danger of carbon monoxide poisoning, it
is becoming regular practice to equip garages with ventilators to carry off
the waste gases coming from motor exhausts.
`
Another application of ventilators is found in connection with power
ventilating systems on the outlet or discharge opening.
.
A very important application for ventilators is on schools, where re circulation of air is used. The duty required, necessitates careful selection. Down draft must positively be eliminated.
296
~
Consulting Service Section
DIRECTORY OF ENGINEERS
Specialising in Heating and Vmtilating Work
ARRANGED ALPHABETICALLY
A. R. ACHESON Consulting Engineer
601 Eckel Building Syracuse, N. Y.
ALPHONSE A. ADLER M.E., Sc.D.
Consulting Engineer
9 Murray Street
New York, N. Y.
BATTEY & KIPP, Inc.
Engineers
'
Designing -- Constructing
Complete Industrial Plants-- Power Plants, Railroad Shops
and Terminals
Investigations, Appraisals and Reports
231 South LaSalle Street
CHICAGO
ESTEN BOLLING, M. E.
Consulting Publicity Engineer
Box 46
East Orange, N. J.
DONALD R. BREWSTER
Drying Engineer and Consultant
Specializing on Design and Operation of Lumber, Dry Kilns and other Industrial
Drying Equipment
104 Baltimore Building
. Memphis, Tenn.
HERBERT BRUNNER Combustion Engineer 320 West 48th Street
New York, N. Y.
298
TI S-. "
ALBERT A. CARY
Consulting Engineer
Steam and Power plants designed and reconstructed
Furnaces designed for all kinds of fuel
Heat distributed by steam,
water or other high tem-
perature fluids
.
95 Liberty Street
New York, N. Y.
THOS. CHESTER Air Conditioning, Cooling,
Dehumidifying 718 Copeland Street'
Pittsburgh, Pa.
. ',
J. E. COLEMAN, M.E. Consulting Engineer.
Heating and Ventilating 50 Church Street New York, N. Y. 20 Rector Place Red Bank, N. J.
COOK & WHITE Consulting Engineers 309 Mutual Building
Kansas City, Mo.
SAMUEL E. DIBBLE Consulting Engineer Heating, Ventilating and
Plumbing 415 Hastings Street
Pittsburgh, Pa.
ROBINSON V. FROST, C.E.
Research in Heating ' and Ventilating
828 W. Marshall Street
Norristown, Pa.
--
'
299
WALTER E. GILLHAM
Architectural Engineer
Specializing in The Design of Heating, Ventilating, Plumb
ing, Electric Wiring and Refrigeration Systems
Not a Sales Engineer
409 Interstate Building
Kansas City, Mo.
LEE P. HYNES Electric Heating Engineer
406 N. Pearl Street Albany, N. Y.
JAROS & BAUM
Consulting Engineers for
Mechanical Equipment of Buildings
116 West 39th Street
New York, N. Y.
c
ALFRED KELLOGG Consulting Engineer Power - Heating
Lighting
89 Franklin Street Boston, Mass.
CARL J. KIEFER
Consulting Engineer
Member A. S. M. E. Member A. S. H. & V. E.
Mechanical - Heating Ventilating
Sanitary`Equipment Designs
Schmidt Building Cincinnati, Ohio
-
RICHARD D. KIMBALL CO. Consulting Engineers Heating, Ventilating, Electrical & Sanitary 6 Beacon Street Boston, Mass.
300
SAMUEL R. LEWIS
Engineer for Mechanical Equipment of Buildings
407 S. Dearborn Street
Chicago
MENSING & CO. Consulting Engineers
Presser Building Philadelphia, Pa.
RICHARDSON & GAY Consulting Engineers
220 Devonshire Street Boston, Mass.
EDW. B. RICHARDSON
B.S., M.I.T., '98 -- B.S.C.E.
A.S.M.E.
A.I.E.E.
ROBERT P. SCHOENIJAHN, M.E.
' Consulting Engineer
Industrial Trust Building
Wilmington, Del.
C. H. SODERBERG Consulting Engineer 608 Donovan Building
Detroit, Mich.
WALTER S. T1MMIS
Consulting Engineer
Mechanical Equipment of Buildings, Vibration Tests
and Reports
315 Fifth Avenue
New York, N. Y.
301
PERRY WEST, M.E. Consulting Engineer
13. Central Avenue Newark, N. J.
J. J. WILSON
State Registered Consulting Engineer
5514 Paschall Avenue
Philadelphia, Pa.
302
Catalog Data Section
(Pages 303-556)
with
INDEX TO TECHNICAL DATA SECTION
(Pages 557-562)
also an
INDEX TO MODERN EQUIPMENT
(Pages 563-576)
and
INDEX TO ADVERTISERS
(Pages 577-580)
Air Conditioning
Carrier Fnqineerinq (orporalion
Atmospheric Conditioning Corporation
Offices and Laboratories: 750 Frelinghuysen Ave.
Newark, N. J.
Boston, 176 Federal Street
New York, 39 Cortlandt Street
Chicago. Burnham Building
Cleveland, Union Trust Building
Philadelphia, Land Title Building
Kansas City, Manufacturers Exchange Building
Los Angeles, 911 Mateo Street
Engineers, Manufacturers, Contractors, specializing in the design and instal lation of automatically controlled Air Conditioning Equipment, Heating, Cooling, Ventilation, Humidification, Dehumidification, and the scientific application of Conditioned Air ireDrying and Processing. Manufactured Weather to make "Ev&ry day a good day."
Air Conditioning Systems--Especially designed for Textile Mills, Candy Fac tories, Bakeries, Flour Mills, Drug and Chemical Plants, Printing Plants, Pack ing Plants, Laboratories, Theatres, Public Buildings and for numerous other industries where there are requirements for clean air uniformly distributed and automatically controlled at any desired condition of temperature and humidity. Equipment, workmanship and results are guaranteed. Ask for Bulletin 50G or re quest specific information.
Drying and Processing Equipment-- The Carrier Ejector System of air circula tion has been found almost universally and ideally adaptable to all drying and processing operations. By the ejector principle, all of the air within the drying room is set into uniform circulation over the material being treated. Drying rates and schedules are subjected to control by Carrier automatic instruments. The system is adaptable to periodic rooms or continuous tunnels. Write for informa tion on specific applications.
A Typical Carrier Humidifier or Dehumidifier showing the automatically controlled fresh and return air dampers, the spray chamber with pumping and water healing equipment and, on the left, the fan which delivers the air to the duct system
304
Carrier Engineering Corporation
Air Conditioning
. Cross Section of a Typical Theatre Equipped with a Carrier System for Cooling, Dehumidifying and Purifying the Air in Summer and Warming, Humidifying and Purifying the Air in Winter'. Note the use ofCarrier Centrifugal Refrigeration in connection with this equipment.
Cooling and Air Conditioning in Public and Private Buildings--With a background of more than twenty years of experience in the design and application of Air Conditioning equipment, the Carrier Organization has logically led in applying this science to the maintenance of condi tions of physical comfort of people congre gated within buildings. In Theatres, . Auditoria, Hospitals, Hotels, Department Stores, Office Buildings, Factories and Mansions it is now possible to maintain ideal conditions of physical comfort, regardless of seasons or outdoor weather. Winter conditions require humidification and heating. In Summer, cooling and dehumidification must be accomplished. Numerous Carrier installations are pro ducing the desired conditions unfailingly. We are at all times pleased to cooperate with Architects, Engineers and Builders in the design and installation of Air Con ditioning equipment within buildings under their direction. Write for the book, "Theatre Cooling''-G.
Carrier Centrifugal Refrigeration-- This system is an innovation in the pro duction of cold. The refrigerant is a harmless, inoffensive liquid. The com pressor is a simple centrifugal unit similar in construction and operation to a centri fugal pump. Control is automatic. Space
A Complete Carrier Centrifugal Refrigeration Unit. Capacity of this Unit 200 Tons
requirement one-quarter that of any other system. This system is used in connection with all of our cooling and dehumidifying installations. Complete safety and sim plicity of operation are assured. Details on request.
305
Air Conditioning
The Cooling & Air Conditioning Corp.
Executive Office
Boston Chicago
31 UNION SQUARE New York City
Atlanta Pittsburgh
Engineers and Contractors
Automatically Controlled Air Conditioning Systems: Cooling--Humidifying-- Dehumidifying -- Heating -- Ventilating -- Drying -- Ross Paper Conditioning -- Fleisher Bakery Systems
Complete Dehumidifying Equipment
Air Conditioning Systems are designed to overcome the handicaps imposed on industry by variations in weather, or adverse climatic conditions. They insure to the manufacturer that effect on materials and processes which can only be produced by ideal temperature and humidity values, making his plant entirely independent of the seasons or changeable daily weather.
Whether the cure for such difficulties involves the creation of high or low temperatures and high or low humidities in any combination, this organization offers a broad experience in the careful design of dependable equipment united with the highest type of engineering and contracting service.
In addition to the treatment of industrial departments requiring humidifying or dehumidifying, the cooling of theatres, moving picture houses, cafes, and other places of assembly are fields in which we have specialized with marked success.
The experienced active personnel of this organization enables us to design and in stall automatically controlled cooling and air conditioning equipments of any size, for any purpose and having had broad experience in practically all fields where this type of equipment is employed, our sales engineers wilt be glad to cooperate with those requesting their service.
306
Air Diffusers
Knowles Mushroom Ventilator Co.
202-204 FRANKLIN STREET, NEW YORK
Knowles Air Diffusers for Auditoriums of Theatres, Churches, Schools
Nu-Notch Air Diffusers
Are finely adjusted by merely raising and lowering the cap in ten recessed notches, and locking. They cannot be tampered with and are made with lugs for either wood or concrete floors. No set screws. Three outer bearings make them rigid.
Size
4' diam. 5' 6* ` 7" * 8* 10* `
C. F. M. at 300 Vel.
27 42 60 81 105 165
Area. Sq. Ft.
0.0873 0.1364 0.1964 0.2673 0.3491 0.5454
Weight, Lb*.
2.75 3.50 4.25 5.75 8.00 11.75
Specification Data--For concrete floors furnish and place 6 in. cast iron mushroom air diffusers with recessed notches for permanent adjustment of mushroom caps at any desired opening: to have center screw locking feature, and L shaped lugs as manufac tured by Knowles Mushroom Ventilator Co. Provide for each opening No. 20 galvanized iron sleeve extending through concrete floor; to be set when floor slab is laid. (See
booklet page 6.)
Standard Aisle Hood Air Deflectors
Are used to throw the fresh air out into the aisles in one direction. They provide the engineer with an inexpensive method of introducing a large volume of air wherever needed without causing annoying drafts. A curved damper reduces friction loss.
Long Wide High
Lbs.
Small Size................. l*arge Size.................
8* 8*
W 6#
W 6'
May also be made in any size to suit conditions.
C.F.M. at 300 Vel.
75 too
Area Sq. Ft.
0.25 0.333.
Riser Concrete Plan
Gallery Riser Ventilator
For the intake or exhaust of warm or cool air in the balconies of auditoriums adjustable toany opening and locked.
SIZE A B C D E AffCA TwBTr
6 7% 4% 7b 4b `4 (96 GO 2
a 9% 63& 10W
Vi $4S /Ob 4-
to 12
HV
/6%
7I1
(Q%
/Z(
IT
8%
77%
i%t
545 .725
7G5 235
ek 9i
Also 6x12 Standard Size
Camelback Air Diffusers
Give a two-way air delivery, at ends as shown and are particularly desirable in keeping duct work at a minimum.
They are furnished with or without dampers. Nos. 1 and 3 have no dampers while Nos.. 2 and 4 have two regu
lating dampers.
-
Nos. 1 and 3--Size 14" long, 7" wide, 6" high at ends.
Nos. 2 and 4--Size 14" long, 7" wide, 5" high at ends.
. (See Booklet for Capacities)
All are of substantial construction being made of heavy cast iron. Other Knowles Products are Single Damper, Double Damper and Lever Lock Mushroom Ventilator,
Disc-Loc Gallery Exhaust Vents.
Send for new booklet containing complete engineering data.
307
Air Filters
The Cooling Tower Co., Inc.
15 John Street NEW YORK, N. Y.
Tangldust Air Filters, Cooling Towers for Theater Cooling Systems, Spray Nozzle Cooling Systems and Impact- Air Washers
Tangldust "Two-stage" Air Filter
The Tangldust is a* `twostage" air filter, built in standard units, that re moves 97 per cent of the precipitable dust and dirt. The "two-stage" feature is a refinement of ordinary filter design, and takes into consideration the fact that ordinary air contains both heavy dust and fibrous mat ter and abo fine dust.
This type of construction provides for the depositing of the bulk of the coarser dirt on the first stage, con sisting of baffle or elimina tor plates vertically ar Front and Rear of Filler, ranged across the front of Showing Wire CoiU of Sec- the filter. The remaining ond Stage in Rear of Filter. dust which passes through the first stage is deposited on the wire coils of the second stage which are arranged in increasing density from front to rear of filter. This dust eventually dislodges and falls to the bottom of each coil, preventing the building up of a resistance to the tar flow
within the filter.
after many years of the
most severe service.
Easy to Clean an
Recharge. --The method of cleaning the
filter -- consisting in
placing the cell first in
a cleaning and then in a
charging tank, each op
erate bysimply raising
and lowering a counter
balanced bar--can be
accomplished quickly
and easily. The han
dlingof the cells or units
is greatly simplified by
the use of a special re Removable Handle for Easy Han
movable bundling bar,
dling of Filter Celia
illustrated herewith.
Less Frequent Re
charging.--This is the result of the use of the special
removable oil pad, saturated with Tangelcne oil, which is
placed at the top of each filter cell. In operation, it con
tinues to keep the filter surfaces constantly moistened with
oil long after the ordinary filter has become inoperative. This
naturally results in less frequent recharging being required.
Vert Low Upkeep Costs.--The form of construction of
the Tangldust filter, making cleaning much easier and
recharging less frequent, makes it most
economical in upkeep. The most in
experienced operator can easily take
care of a good-sized installation.
. Filter Specifications
Furnish and install as shown on plan, an air filter such as the Tangldust Air Filter manufactured by The Coouno Tower Co.. Inc., New York, N. Y., capable of cleaning 800 cu. ft. of air per
Cross Section Showing Pataage of Air Through the Two Stages of Construction
THE WIDE RANGE OF APPLICATION.
General Ventilation.--Schools, hospitals, hotels, museums, theaters,
restaurants and public buildings.
i
Electrical Ventilation.--Cooling turbo-generators, sub-stations, buss
galleries, telephone exchanges, etc.
Bacteria Control.--Hospital operating rooms and contagious wards,
bottling plants, etc.
.
Dust Recovery.--For recovering valuable dust, such as gold and silver; also
minute, velocity not to exceed S50 ft. per minute. Filter shall be constructed in
two stages with a renewable oil pad at the top of each filter cell for greater effi ciency, easier cleaning and to prevent the
filter drying out between charging. Re sistance offilter at 800 cu. ft. of air per
minute per cell shall not be more than .t in. water gage and not more than .3 in
when each cell has accumulated qts. of dust.
for control of injurious dust, such as lead, abrasives, chemicals, flour, starch, aluminum, etc. Drying Operations.--Butter, eggs, fruit, laundries, paint, milk, sugar and chemicals. Air Compressors.--Internal combustion engines and pneumatic tools.
Send pos Bulletin 255^3
Cooling Towers for Theatre
Cooling Systems
Important Features and Advantages of Tangldust Filters
Dustproop Construction.--While the Tangldust filter
cells or units are interchangeable, the supporting or enclosing
frame is built to
meet the specifies- _ tions of each in stallation. This, continuous pelt uner ,
ntogether with our jtxrr*fgrmbs dust-proof
special dustproof BETWEEN CELL AND CASINO
joint -- consisting
of a continuous felt liner between the cell and casing--
FlLTERj CELL
insures a dustproof
installation even
Dustproof Joint
Cooling towers are de signed to recool the cir culating water in air refrigerating systems.
They are being very suc cessfully applied to the cool
ing equipment of theatres, where they assure a plenti ful supply of cool water being always available for the refrigeration system.
This eliminates frequent repairs and shutdowns' of the system.
For further information send for catalogue.
Tower on Rivoli Theatre, New York City
308
Air Fillers
i
DURO AIR FILTER COMPANY
HOME OFFICE--315t-3155 SHIELDS AVENUE
CHICAGO
Represented in
NEW YORK CITY
BOSTON
MILWAUKEE
TORONTO
.
i
CLEVELAND DETROIT ^ KANSAS CITY ST. LOUIS
AND
OTHER
.
PRINCIPAL
CITIES
THE AIR FILTER EVERLASTING
With a copper filtration medium, a substance ideal for its purpose, DURO AIR FILTERS are suited to any application where a Clean Air Supply is important.
Features of Importance:
.
1. Simple, Effective Cleaning accom plished by ordinary unskilled labor with minimum of difficulty!
2. By Rotative Cleaning a Constant effect in pressure characteristics is maintained!
3. Rough Stop of Coarse Dust!
4. Cavernous Region for Retention of Dust Load!
5. Final and Complete Elimination of Finest Particles!
6. Filtration Media Non-Friable!
7. Non-Corrosive!
8. Non-Magnetic!
9. Electrolytically Inert!
10. Lightweight, Durable, Sturdy Design and Construction Throughout!
ALL PATENT RIGHTS RESERVED
Write tor complete specifications and performance data
309
to
Air Fillers
BRADFORD
PENNSYLVANIA
Midwest Canada, Ltd.
Montreal, Canada
Branches in Principal Cities
PRINCIPLE--Midwest Air Filters operate on the baffleimpingement principle. Each filter cell contains a series of specially perforated and shaped metal plates so designed that they form a graduate filter medium, which with larger openings and spaces for dust accumulations in the front has smaller openings with less spaces in the rear, thereby eliminating the coarser dust on the front sheets or the filter
and the finer dust particles towards the rear of the filter cell. This design forces the air to change its direction many times
in passing through the cell, and as the sheets are coated with a viscose, sticky fluid, "Viscosine", the dust particles are impinged against the sticky surface of the filter sheets at each change of direction of the air stream, where they are caught and held. At the extreme back of each cell an extra fine filter medium, consisting of a series of knitted copper
mats of flat copper wire also coated with Viscosine, is arranged, thereby providing a very high efficiency.
and soda in a special tank provided with the installation. It is then drained and aUowed to dry. -When dry it is dipped in Viscosine and set aside to drain, when it serves as the next reserve cell.
The entire filter being constantly covered with Viscosine, does not corrode or rust. An installation is practically everlasting.
DATA AND SPECIFICATIONS
Size of unit (overall)--20 x 20 x 6^ in.
Size of Cell--19^ * 19H * 4 in. Net Weight of Ceil--23 lb.
Weight of Unit--38 lb.
Capacity per Cell--Normal 800 cu. ft. per min.
Efficiency--The average efficiency, under normal operating conditions, is 97 to 99 per cent.
Resistance--Maintained at any desired value by routine cleaning and selecting proper velocity through filter.
Cleaning--Depends on dust conditions. In average installation, each cell is cleaned once
every six to eight weeks. Time required--3 to 5 minutes per cell.
Viscosine Consumption--One gallon per unit per year.
Other types--We have a complete line of filters for various purposes and conditions. Figure 2 shows a filter of the self-cleaning type, and for further information please send your request to our Engineering and Research Department, who will gladly furnish data, sketches and recommendations without any cost or obligation to you.
(Fig. I) Midwest Filter Unit Type U-t (cell andframe)
SPECIAL FEATURES--Each filter unit consists of a frame and a cell, all of which are completely inter changeable.
Each frame is provided with a continuous flange in the rear, against which the filter cells are foroed by thumb screws set in removable plate clips which fit into slots at the four corners of the frame. Thus air-tight joints are provided between all cells and frames.
Each frame is further provided with projecting turned-over ' lips, at one side and at the bottom. These Ups grip and interlock with the adjoining side and top of adjacent frames. The frames themselves are bolted together at the rear. In this way, a double air seal is formed on all frames, .and an absolutely air-tight installation assured.
INSTALLATION--An installation consists of the proper number of units assembled in an angle iron frame. Any limitations of space are easily and economically met.
OPERATION AND MAINTENANCE--There being no moving parts, practically no operating supervision is required. Maintenance consists in periodical cleaning and recharging of cells in Viscosine.
Cleaning is systematically carried out by removing the cell next to the one last cleaned, and replacing at once by a clean, charged reserve cell. The dirty cell is washed in hot water
310
(Fig. i)
Air Filters and Cleaners
Reed Air Filter Co.
. Incorporated
Factory and General Offices
202 Central Avenue : - LOUISVILLE, KY.
NEW YORK OFFICE
50 CHURCH STREET
ReedAir
fitterstSa ^
BRANCH OFFICES IN PRINCIPAL CITIES-
The Reed System of Air Filtration
provides a simple, economical and efficient
method of supplying clean air for ventila
tion and industrial processes.
The Reed Streamline Air Filter
represents the most recent development in
the self-cleaning filter. It is automatic in
operation, positive in performance, has
no moving parts and requires no, personal
attention in its performance,
.
All mechanical movement ' Has been
eliminated. The filtering media is station-
principle and building the Reed Stream line Filter in standard unit sizes has simplified laying out and installing filters of various capacities. Cleaning efficiency of the Reed Streamline Filter is 95 per cent--operating resistance, .25" of water.
The Reed Unit Air Filter operates on the principle of the human nostril. The split-wire filtering media, used in Reed Filters exclusively, divides the air into innumerable fine streams, bringing it into intimate contact with Adhesine-coated
surfaces.
The Reed Streamline Self-Cleaning Air Filter
A Reed Air Filter Unit
ary--nothing moves but the charging liquid. Once a day the filter is auto matically flushed or flooded with Adhesine which cleans the filtering media and leaves it freshly charged.
The filtering media of the Reed. Streamline (Self-Cleaning) Filter con sists of staggered rows of streamline forms similar to the low-wind-resistance shapes developed in the air service. These shapes
Q>^C><C>^C>
Progressively packed media, varying in density through the depth of the filter, gives greater dust capacity, keeps re sistance at a minimum and prolongs periods between cleanings.
Our Engineering Department will be glad to furnish complete data and drawings without cost or obligation.
Data and Specifications of Reed Air Filters
Size of Filter, over all.....................................20x20x4 in. Effective opening...................... -18x18 in. (2% sq. ft.) Capacity of each unit.................... 800 cu. ft. per min. Efficiency of Filter (Standard Type "B").........97% Surface Area of Filter Media.................. .`..1500 sq. ft. Linear velocity of air through filter 365 ft. per min. Resistance of clean filter to flow
of air................................................&-in. water gauge
Low-Resistance Streamline Forms Used in Reed Self-Cleaning Filter
offer minimum resistance to air flow and clean the air byimpingementon and scrub bing contact with Adhesine-coated surfaces.
The only auxiliary equipment is a small motor pump outfit. Adhering to the unit
Frequency of cleaning depends upon amount of solids to be removed from air. For the average city air, cleaning periods may be estimated roughly as once in six to ten weeks. Time required for clean ing operation five to eight minutes.
Weight of filter celL-................................................. 20 lb. Weight of cleaning tank.__..................................... 45 lb. Weight of filter frame............................................... 10 lb. Weight of "Adhesine" per gal.............................7.5 lb.
311
Air Filters
Spray Engineering Company
60 High Street BOSTON, MASSACHUSETTS
SPRACO AIR FILTERS
Spraco Air Filters constitute the most efficient device- for removing from the ventilating air, dust, dirt, and other foreign matter. Some of the reasons why Spraco Air Filters are superior follow:
First.--Filter media arranged from coarse to fine in the direction of air flow results in progressive filtration. Ample space provided for the accumulation of the maximum amount of dirt without obstructing the air flow.
Second.--Framework for holding cells is made up in sections of all welded con struction, insuring maximum strength and perfect alignment. Sectional framework eliminates airieakage and reduces the cost of installation to a minimum.
Third.--Cells make two point contact with sectional framework, which is provided with a felt sealing strip. All air must pass through filter media.
Fourth.--Quick acting spring latches, Four to each cell, hold the cells firmly against the two point seal.
Fifth.--Washing tanks are equipped with steam water heater, drain, and water connections. Steam water heater insures maintaining washing solution hot, while the Spraco Rotary Washing tank is the quickest and most effective means of cleaning the cells. -
Send for Bulletin F-47.
Engineering Service
The Spray Engineering Company maintains a corps of engineers experienced in all phases of air conditioning, including the filtering, washing, cooling, humidifying, and . dehumidifying of air for all classes of work. These engineers are available for con sultation regarding the best solution of such problems.
Specifications Space occupied by Cell.................................................. Net weight of Cell..... ..................................................... Net weight of Sectional Framework......................... Standard air capacity of Cell...................................... Average Resistance..........................................................
Cleaning efficiency.................................................. ........
312
20" x 20" x 4".
30 lbs.
15 lbs. per cell.
800 C. F. M.
x/x" w. g. when clean
.
w. g. with 1 lb. dirt per cell.
Under normal conditions
will remove 97% of dust
and dirt as determined by
microscopic dust count.
Boilers
American Radiator Company
Western Executive Office 816 South Michigan Ave. CHICAGO, ILLINOIS
General Sales Department 1807 Elmwood Avenue
BUFFALO, NEW YORK
Eastern Executive Office 40 West 40th Street
NEW YORK .CITY
Manufacturers of Ideal Boilers, American Radiators, and other Heating, Ventilating, and Refrigerating Products
THE IDEAL SMOKELESS BOILER
The Ideal Smokeless Boiler has established itself by years of service as representing the highest standard of smokeless performance. It burns all grades of soft coal smokelessly without skilled atten dance, is easily installed, requires no special setting, and has no parts to wear out or be replaced. It is especially well adapted for battery installation.
S6* Series
Complete data on Ideal Boilers and American Radiators are contained in the Ideal Fitter and special technical catalogs. Any branch of the company or the Advertising Department, 1807 Elmwood Avenue, Buffalo, New York, will be pleased to forward any of these catalogs on request.
Steam
Number Rating of Steam
Boiler Sq. Ft.
Water
Number Rating of Water
Boiler Sq.Ft.
Grate Area
Sq. Ft.
Fuel Ca pacity Lbs.
Total Length
"L" Ins.
Steam Outlets No. and
Size
Water Outlets No. and
Size
Steam Inlets No. and
Size
Water Inlets No. and
Size
Chimney Chimney Size Height
Ins. Ft.
S-2308-S S-2309-S S-23I0-S S-23M-S S-Z3I2-S
S-2907-S S-2908-S S-2909-S S-29KLS S291l-S
S-3608S S-3609-S S36I0-S S-36JI-S S-3612-S S-3613-S S-3614-S S-36ISS
S-4807-S S-4808S S-4809-S S-48I0-S S-481 l-S S-4812-S S-48I3-S S-48I4-S
S-7909-S S-791G-S S-791l-S S-79I2-S S-7913-S S-79I4-S S-79ISS S-7916-S S-7917-S
1.050 1.200 1350 1.500 1,650
2,400 2.800 3.200 3.600 4.000
4,450 5.100 5.750 6.400 7.050 7.700 8.350 9.000
9,000 10.250 11.500 12.750 14.000 15.250 16.500 17.750
14.000 15.500 17.000 18.500 20.000 21.500 23.000 24.500 26.000
W-2308-S W-2309-S W-23IOS W-Z3M-S W-23I2-S
W-2907-S W-2908-S W-2909-S W-29I0-S W-291 l-S
W-360fUS W-3609-S W-36I0-S W-3611-S W-3612-S W-3613-S W-3614-S W-3615^
W-4807-S W-4808-S W-4809-S W-48IO-S W-48II-S W-48I2-S W-4813S W-48I4-S
W-7909-S W-7910-S W-79M-S W-7912-S W-79I3-S W-7914-S W-79I5-S W-79I6-S W-79I7-S
1.650 1.875 2.100 2325 2.550
3.900 4.550 5,200 5.850 6.500
7,300 8.400 9.500 10,600 11.700 12.800 13.900 15.000
14.500 16.500 18.500 20.500 22,500 24.500 26.500 28.500
22.000 24.500 27.000 29.500 32.000 34.500 37,000 39.500 42.000
4.64 5.28 5.92 6.56 7.20
7.26 8.47 9.68 10.89 12.10
10.50 12.00 13.50 15.00 16.50 18.00 19.50 21.00
21.60 2530 25.20 28.80 28.80 28.80 32.40 32.40
29.52 32.80 36.08 3936 42.64 45.92 41.00 44.28 44.28
281 320 359 398 437
523 611 699 787 875
972 1.116 1.260 1.404 1,548 1,692 1.836 1.980
1.770 2.065 2.065 2.360 2.360 2,360 2.655 2,655
1.071 1,194 1.305 1.428 1.551 1.674 1.495 1.495 1.618
33 37 41 45 49
42 48 54 60 66
48 54 60 66 72 78 84 90
MV,
79% 90 iooy. iii'A 122% 133
143%
60 66 72 78 84 90 % 102 108
1-4 1-4 1-4 1-4 1-4
1-5 1-5 2-5 2-5 2-5
2-6 2-6 2-6 2-6 2-6 2-6 2-6 2-6
3-6 3-6 3-6 3-6 4-6 4-6 4-6 4-6
2-10 2-10 2-10 2-10 2-10 2-10 2-10 2-10 2-10
1-4 1-4 1-4 1-4 1-4
2-5 2-5" 2-5 2-5 2-5
2-6 2-6 2-6 2-6 2-6 2-6 2-6 2-6
3-6 3-6 3-6 3-6 4-6 4-6 4-6 4-6
2-10 2-10 2-10 2-10 2-10 2-10 2-10 2-102-10
2-3 2-3 2-3 2-3 2t3
2-4 2-4 2-4 2-4 2-4
2-4 2-4 2-4 2-4 2-4 2-4 2-4 2-4
4-4 4-4 4-4 4-4 4-4 4-4 4-4 4-4
1-4 1-4 1-4 1-4 1-4 1-4 1-4 1-4 1-4
2-3 2-3 2-3 2-3 2-3
2-5 2-5 2-5 2-5 2-5
t t t t
4-6 4-6 4-6 4-6 4-6 4-6 4-6 4-6
2-10 2-10 2-10 2-10 2-10 2-10 2-10 2-10 2-10
12 x 12 12x 12 12 x 12 !2x 12 I2z 12
I6x 16 16 x 16 16x20 16x20 20x20
20x20 20x20 20x20 20x20 20x24 20x24 20x24 24x24
24x24 24x24 24x28 24x28 28x28 28x28 28x32 28x32
24x24 24x24 24x28 24x28 24x28 28x28 28x28 30x30 30x30
35 35 35 40 40
40 45 50
55 60
50 55 55 60 60 ' 65 70 75
70 75 80 85 95 100 105 110
80 85 90 "95 100 105 110 115 120
Two 3H-inch and two 4-inch.
tFour 3H-inch and two 4-inch Safety Valve sires accord with A. S. M. E. Boiler Code.
313
American Radiator Company
Heating Specialties
No. 800
Arco Water Regulator For damper control on hot water heating boilers. Adjustable for temperature between 100 and 220. All metal. Length of Bulb 2% inches. Connection, 2 inches.
American Radiator Company
PACKLESS VALVES
Air Valdes and Switches
PACKED VALVES
No. 988
Arco Packless Valves--Quick Opening
Leakless feature consists of special moulded ring with metallic core held under compression by a spring. Requires no repacking. Opens or closes with one turn. Does not stick or bind. Furnished with either round or lever composition handle.
No. 988 Angle. No. 955 R. H. Corner. No. 960 L. H. Corner. No. 970 Globe. No. 968 Fractional Type with indicator and graduatcdfdial.
No. 78
Detroit Steam Valves Metal well distributed--strong and heavy where strength is needed. Regularly equipped with composition handle, black hard rubber finish. No. 72 Angle. No. 32 R. H. Corner. No. 37 L. H. Corner. No. 57 Globe. No. 373 Gate.
No. 816 '
Ideal Quick Vent All metal. Very sensitive. For venting mains, long runs of pipe, indirect stacks, drop risers, etc. No. 815--No. 820
No. 801
Arco Junior Water Regulator
For damper control on Hot Water Supply
Boilers. Temperature range 130-180. Length
of Bulb. 2 inches. Connection,
inches.
Patent Pending
No. 886
No. 817
. Vento Vent
For use on Vento Heaters and Blast Coils.
Stack connection,
Dup connection,
Arco Tank Regulator For temperature control of liquids heated by steam. (Also made in flexible tube type No. 826). Range 140 to 180 F. For use on steam pres sures up to 15 lbs.
Send for complete catalog of Ideal Healing Specialties
314
No. 860
Ideal Packless Valves--Bellows Type
Metallic bellows surrounds the stem and work
ing parts, which prevents passage of steam, water
or air around the stem opening. Equipped' with
round composition handle.
No. 850 Angle. No. 851 R. H. Comer. No. 852
L. H. Corner. No. 860 Globe.
Also furnished in Quick Opening type--one turn.
Nos. 878, 879, 880, 870.
No. 101
Detroit Hot Water Valve The No. 101 Hot Water Valve will not stick or turn hard. The narrow edge of the plate presents a small area of contact so that corrosion is easily broken away. Concave plate gives true elbow shape when valve is open, reducing friction of water flow. Made in Angle pattern only. Union Elbow, No. 132.
No. 8U5 TheriHostat
MERCOID CONTROLS Patents Pending
All Mercoid Controls employ the Mercoid Switch which carries the full line current at 110 or 220 volts without arcing or corrosion of contacts. Mercoid instruments give automatic control of temperature, pressure or vacuum. The various models provide a wide field of application. The No. 845 Mercoid Thermostat is especially adapted for use with Unit Heaters--starting or stopping the fan as the air temperature changes. The No. 847 Arco Motor Valve; for high or low pressure steam, water, air, etc., can be used with any Mercoid Control. Write for full details of this complete line.
315
Boilers
The Bigelow Company
Main Office and Works
NEW HAVEN : CONNECTICUT
New York, N. Y. 149 Broadway
Boston, Mass. 141 Milk Street
Manufacturers of
Bigelow-Hornsby Water Tube Boilers Bigelow Horizontal Return Tubular Boilers
Bigelow Two-Pass Boilers Bigelow Manning Boilers Bigelow Upright Boilers
Bigelow H. R. T. Boiler
Investigation of the Bigelow H. R. T. boiler will convince you of its true value. Economical service has been the big feature of Bigelow products during a period of boiler building extending over 50 years. With a shop containing the most modem approved equipment for boiler construction a product is assured representing the highest quality in work manship.
The Bigelow Two-Pass Boiler is the latest development of this company. After careful investigation of the existing types of steel heating boilers an effort was made to eliminate the objectionable feat ures of many; the result being the Bigelow Two-Pass Boiler. This boiler will meet heating and power requirements especially where space limitations prevail: Elimina tion of staybolts and special brick shapes in furnace reduces maintenance to a minimum. Large furnace volume; long gas travel, uniform velocity of gas over heating surface and low exit temperature assures maximum efficiency.
For Central Power Stations and large industrial plants the Bigelow Hornsby water tube boiler is unexcelled. High continuous economy, large overload ca pacity, large furnace volume and straight tubes are a few of the features contained in this type of boiler. The Hornsby is built in units of 375 H. P. to 3,000 H. P.
Bigelow Two-Pass Boiler
Built in units from 25. H. P. to 150 H. P.
316
Boilers
. IRVINGTON, N. Y.
FACTORIES: IRVINGTON, N. Y. ELIZABETH, N. J. LANCASTER, PA. Offices: Boston. Mass., Chicago, IlL, Baltimore, Md., Philadelphia, Pa., New York City, N.Y., San Francisco, Calif.
Makers of Low Pressure and High Pressure Cast Iron Boilers
There ore twenty members of the Burnham Family, in round and square boilers, each adapted to its particular place and purpose.
Round Sectional Steam Boiler Made for either water or steam heat ing. Has separate corrugated crown sheet section, and extra longfire travel..
The Hot Water Supply Boiler It has a wonderful reputation for the economical heating af water supply tanks. Sold equipped with following special features: Automatic Hot f Water Damper Regulator; Hot Water Relief Valve set at 80 lbs., two 2 inch Brass Plugs on front section *or clean-out purposes.
The One, Two, Three Of Oil Burning Economy
AS you know there is a wide variance of comparative costs in oil burning.
At best, it seems seldom to result in much better than an even break for residence heating.
This is largely due to most boilers having too short a fire travel.
This means that the necessary air pres sure under which oil burning must be conducted, carries the hot gases too quickly to the chimney, causing an excess of heat losses.
Burnham boilers having a long fire travel, not only baffle down the speed of the gases; but also muffle the noise.
The Burnham Square Sectionals,, .with their three times back and forth fire travel, give high efficiency with oil fuels.
317
i
Boilers and Radiators
Continental Heater Corporation
Dunkirk, N. Y.
MANUFACTURERS OF CAST IRON BOILERS AND RADIATORS
Conlento
CONTENTO BOILERS
Boiler No.
4-A 5-A 6-A 7-A 8~A
Water Rating Sq. Ft.
400 535 670 825 990
Steam - Rating Sq. Ft.
240 320 400 500 600
Overall Length Inches
20 23% 27 30% 34
Crate Area Sq.Ft.
0.94 1.22 1.55 1.92 2.25
CONTINENTAL SQUARE BOILERS
Boiler No.
Water Rating Sq. Ft.
Steam Rating Sq. Ft.
Overall
Length Inches
Grate Area Sq. Ft.
417 750 450 33 1.44
517 1000
600
37
1.95
617 1250 750 41 2.45
717 1500 900 45 2.95
617 1750 1050 50 3.45
Four, five and six section boilers, 2-233" flow and returns. Seven and eight sectional boilers, 3-2H" flow and returns. Water line 46 inches.
Continental Square
The Contento can be used either on the same floor with the radiators or in the basement.
The forward and back fire travel utilizes the gases instead of allowing them to be wasted up the chimney. The deep roomy firepot makes frequent attention unneces sary.
The Continental Square Boiler will hold fire for long intervals. The water tube design makes it a quick heater. The flues are easily cleaned and the boiler can there fore be run at highest efficiency at all times with soft as well as hard coal or coke.
CONTINENTAL RADIATORS
Each individual section is rigidly tested and
inspected. After being assembled every radiator
receives a second test. Continental Radiators are
dependable.
'
38* 32* 26* 23*
38* 32* 26* 23*
38* 32* 26* 22*
Four Column........... 38* 32* 26* 22*
hive Column............ 22" 18* 14*
Wall.......................... 7-B
9-B
One, two and three column have 2H" centers. Four and five column have 3" centers.
WALL RADIATION
20*
20* . 18*-
18*
Column Radiators are assembled with extra heavy - malleable nip ples.
7-B 9-B
Height
22* 29*
Width
12* 12*
318
C. T. to C. Tappings
19* 25%"
Wall Radiators are assembled with screw nipple.
Continental Heater Corporation
Boilers and Radiators
Continental Low Water Line Boilers
Smokeless and Regular Types
Interior View
Superior Features
Extremely low water line, that of largest boiler being only 47 inches. Fired short way of grates, making firing easy. Water tubes in fire box come in direct contact with flames. Good cir culation within boiler and large volume of water insures steady water line on fan systems. Made in regular and smokeless types. Will burn any kind of fuel including oil. Every boiler set up and rigidly tested before ship ment.
CONTINENTAL LOW WATER LINE BOILER DATA (Ratings have never been changed)
Smokeless Boiler Number
Regular Series
Boiler Number
Steam Rating
Water Rating
Crate Area
Flow and Return 2 Each
Inches
Front Length .of Boiler
Inches
Extreme
Overall
Depth 1 Inches
Chimney : Area Inches
Chimney
Height Feet
20 Series Water Line 38 Inches--Height of Flow 43 Inches
25
700 1,150
3.88
26
900 1,500
4.85
27
1,100
1,850
5.82
28
1,300
2,200
6.80
3 35 39'/, 3 42
3 49 39'/, 3 56 39%
8x12
12x12 12x12 12x12
40 40 40 40
,30 Series Water Line 43 Inches--Height of Flow 48 Inches
530
35
1,200
2,000
5.83
4
35
54'/,
12x12
40
630
36
1,600
2,650
7.29
4
42
54%
12x12
40
730
37
2,000
3,300
8.75
4
49
54%
12x12
40
830
38
2,400
4,000
10.21
4
56
54%
12x12
40
930
39
2,800
4,650
11.67
4 63
12x16
40
sa1030
310
3,200
5,300
13.13
4 70
12x16 >. 45
1130
311
3,600
6,000
14.59
4 77
I2x(6
45
$1230
312
4,000
6.650
16.05
4 84
16x16
45
640
740
840 940
1040 1140 1240
(340 1440 1540
1640 1740
1840
40 Series Water Line 47 Inches--Height of Flow 54 Inches
46 47 48 49 .
410 411 412
413
414 .415
416 417
418
2,500
3,200 3,900 4,600
5,300 6,000
6,700 7,400 8,100
8,800 9,500
10,200 10,900
4,150 5,300
6,450 7,600
8,750 9,900 11,100
12,250 13,400 14,550
15,700 16,850
18,000
9.72 11.66 13,60
15.54 17.48
19.43 21.35 23.32 25.27
27.22 29.17
31.12 33.07
5 5
5 5 5 5
5 5
5 5 5
--5 5
42 49
56 63 70 77
84 91
98 105 112
119 126
79 79 79
79 79
79 79 79
79 79 79
79 79
12x16
50
12x16
50
16x16
50
16x20 . 55
16x20
55
20x20
55
20x20
60
24x24
65
24x24 ^ 65
24x28
65
28x28
70
28x28
70
28x32
70
One additional 4-in.-flow. Two additional 4-in. flows. Double series boilers 2,600 to 22,300 sq. ft.
319
Boilers, Heating
Fitzgibbons Boiler Co., Inc.
' ESTABLISHED 1886
General Offices: 570 Seventh Avenue, NEW YORK CITY
Products: Fitzgibbons-Ontario (small-sized) steel boilers for steam or hot water heating.
Fitzgibbons-Compac (intermediate sized) steel boilers for steam or hot water heating.
Fitzgibbons (large sized) steel boilers for heating. And for power, see page 322.
Reputation and Performance: For forty years Fitzgibbons Boilers have been known and recognized for their economy in coal consumption, quick steaming ability, and high evaporative power. Equally wellknown have been their performance records for low cost operation and absence of maintenance cost.
Fitzgibbons-Ontario Steel Heating Boiler for small-sized installations, homes, churches, garages, etc.
Fitzgibbons-Ontario (Small-Sized) Steel Boilers: These boilers embody all the economical and efficient features of the larger sized Fitzgibbons boilers and are made in sizes ranging from 400 sq. ft. to 3200 sq. ft., steam rating or from 700 sq. ft. to 5100 sq. ft. water rating. The smallest size is 4 ft. 7 in. high, 5 ft. long and 2 ft. 2 in. wide, and is particularly suited for use in small residences where space is limited.
They are built entirely of rust-resisting copper-steel, assuring durability and a life-time of service.
FITZGIBBONS-ONTARIO STEEL BOILERS--Ratings and Specifications
Number of Boiler_____ H-8 H-12 H-16 H-20 H-24 H-28 H-32 H-36 H-44 H-50 H-58 H-64
Steam Rating....................... 400 600 600 1000 (200 1400 1600 1800 2200 2500 2900 3200
Hot Water Rating............... 700 1000 1300 1600 1900 2200 2600 2900 3500 4000 4600 5100
A-Diam. Vert. Snell.......... 26' 29' 29' 29' 33' 33' 36' 36' 40* 40s 43' 43'
B--Height Bare Boiler........ ys>/,' 4'-1' 4'-!' 4'-1' 4'-1' 4'-r 4'-4' 4'-4' 4'-6' 4'-8' y-00 5'-O'
C-Length Bare Boiler........ '-2' 5'-0" 6'-O' 7'~0' 6'-5' 7'-5' y-<r 7'-9' 7'-7' 8'-7' 8'-4' 9'-4'
U-Uiaa. Hot. Shell........... 18' E-Floor to Water Line.... y-v
21' 4'-4'
21' 21' 23' 23' 27' 27' 31' 31' 33' 4'-4' 4'-4' 4'-4' 4'-4' 4'-7' 4'-7' 4'-l1' 4#-1l' 5'-2'
33' 5'-2'
K-Diameter Fire Box........ 21' 24' 24' 24' 28' 28' 31' 31' 34' 34' 37' 37'
L-Diam. Cast Iron Base... w
33'/,' 33'/,' 33'/,' 37'/,' 37'/,' 40'/,' <0W 42>/,' 42>/,' 45)/,' 45*4'
M-Height Cast Iron Base.. 10>/,' 13' 13' 13' 13' 13' 13' 13' 13' 13' 13' 13'
N-Floor to Center Fire Door 26'/,' 31' 31' 31' 31' 31' 31' 31' 31' 31' 31' 31'
O-Height............................. 4'-7' 5'-2' 5'-2' 5'-2' 5'-2' 5'-2' 5'-5' 5'-5' 5'-9" y-v 6'-l' 6'-!'
P-Length Overall............... y-00 5'-l0' &'-10" 7'-l0' 7'-3' 8'-3' T-V 8'-7' 8'-5' 9'-5' y-v 10'--2"
Q-Height Cast' Iron Stand. 25'/,' W' 28y/ 28)/,' 27V,' 27V,' 28' 28' 28' 28' 28' 28'
R--Width Smoke Uptake...
S-Length Smoke Uptake.. -T-Loeation Supply Outlet. U-Location Damper Reg...
1w2V? 8'
\tr
6>/,' 'W
12'
6'/,' 15'/* Vff 12'
6>/,' 15'/' 8>/'
12'
w 17)/' 10'/' 13'
7'/,' 17*/,'
1OV2 13"
S'/,' 20V2* \w 15'
8'/,' 20'/' IM// 15'
9'/,' 22' 13'
15'
9i/2' 22' 13' 15'
(O'
25' !2'/2' 17'
10* 25'-
17'1
V-Suggested Behind Boiler.. 18' 23' 33' 45' 3r 44' 31' 43' 35' 47' 40' 52'
Supply Outlet....................... 3' 4' 4' 4' w 4</,' 5' 5' 5' 5' 6' 6'
Return.......... ..
3' 4' 4' 4' w 4'A' 5' 5' 5' 5' 6' 6'
Safety Valve......................... v,' 1'
Diameter Smoke Pipe.......... 8'
ur
1' 10'
1' w i'/' M/2' \'/i' 2'
10' 12' 12' 14' 14'
16'
2' V 16' 18'
2' 18'
Approx. Sq. Ft. Covering... 36
46
52
58 60 66 72 80 . 86
94 102
110
Approx. Shipping Weight..; 1750 1950 2000 2050 2300 2350 2900 2950 3550 3800 4200 4500
Ratings are based on two pounds pressure for steam and 180 deg. fahr. for water and give actual number of square feet direct cast iron radiator surface or equivalent when sufficient radiation is installed to heat the building to 70 deg. fahr.'
320
Fitzgibbons Boiler Co., Inc.
Boilers, Heating
Fitzgibbons-Compac (Intermediate Sized) Steel Boilers: This series is iden tical in general design with the large Fitz gibbons Boiler and is made in sizes from 3300 to 16,500 sq. fL steam radiation. A most compact boiler specially adaptable to limited space conditions.
Construction: Fitzgibbons-Ontario and Fitzgibbons-Compac . boilers are built completely of steel without a single cast-iron part holding water. Tested under pressure before shipment, and ready for immediate installation upon arrival at job. No assembling of parts at the building; no packed joints, unions, holts, etc.
Fuel-Economy: The furnace with its gas diverting arch is so large, and the heating surfaces so ample, that the direct fire and major portion of flue surface is exposed to the hottest gases, utilizing all the heat available from the fuel. This results In a saving of upwards of 20 per cent in amount of fuel required in comparison with ordinary types of heating boilers.
Bum Coal, Oil or Gas: The fuel-saving results whether egg, stove, chestnut, pea or buckwheat size of coal, or oil or gas is used as fuel. Unusually efficient when burning oil owing to large furnace and rapid water circulation.
NetRatings:- Ratings are net and indi cate the amount of equivalent cast iron radiation that boilers will heat on the basis of 0.25 lbs. steam sq. ft. of equivalent cast iron radiation with the pressure at boiler two pounds, or 180 deg. fahr. temperature of water. Cast iron radiation equivalent is cast iron radiation plus heating loss of means, branches, risers, etc., plus hot water domestic-heating load plus heat loss of condensation not returned.
Fitzgibbons-ComPac Steel Heating Boiler for moderate-sized plants
FITZGIBBONS-COMPAC STEEL BOILERS--Ratings and Specifications
No.
of Boiler
Steam Rating
Sq. Ft.
Diara. Height
Vert. Bare Shell Boiler
Length
Bare Boiler
Diam. Hor. Shell
Water Line
Over
all Height
Height Stand
A B C D E CH
Smoke Uptake
K
Space
to Draw Tubes
Approx.
Sq. Ft. Cover
Approx. Weight
in lbs.
Steam in.
L ing
Re
turn in.
H-66 H-76
H-86 H-88 H-98 H-108
H-120 H-132 H-144
H-150 H-160 H-170
H-200 H-220
H-250 H-270
H-310 H-330
3300 4'-0' 5'--10* 8'-!' 3'-4' 6'-0* 7'-!' 3800 4'-0' 5'-10* 9'-l' 3'-4' 6'-0" 7'-!' 4300 4'-0' 5'--10* I0'-1' 3'-4' 6'-0' 7'-!' 4400 4'-4' S'--11* 8'-7' 3'-6' 6'-0" T-V 4900 4/-4' 5'-l1' 9'-7' 3'-6' y-o0 v-r 5400 4'-4' 5'-11* 10'--7* 3'-6' y-o' T-V 6000 4'-9" 6'-7' 9'-9' 4'-0' 6'-7' 7'-10* 6600 4'-9' 6'-7' IO'-9* 4'-O' 6'-7' 7'--10* 7200 4'-9' 6'-7' 1l'-9* 4'-O' 6'-7' 7'--10* 7500 5'-0' 6'-l1' 9'-IO' 4'-3' 6'-H' R'-2' 8000 y-o0 6'-((* lO'-IO* 4'-3' 6'-11' 8'-2' 6500 y-or 6'--11* ll'-IO* 4'-3' 6'-1I* 8'-2' (0,000 5'-4' 8'-6' 12'-0* 4'-6' 8'-3' 9'-9' 11,000 5'-4'. 8'-6' !3'-0' 4'-6' 8'-3' 9'-9" 12,500 5'-10* 9'-0" 12'--3* 5'-0" v-<r 10'--3* (3,500 5'-10* 9'-0" 12'--9* y-o* 8'-9* 10'--3* 15,500 6'-2' 9'-2' 14'--0* ,5'-2' 8'-11* 10'-5' 16,500 6'-V 9'-2" 14'-6' S' -2' 8'--11* 10'-5'
v-r v-r v-r v-v 2'-5' 2'-5' v-r v-r v-r 2'-8' 2'-8*
2'-8' 3'-3' 3'-3'
3'-3' 3'-3'
3'-3'
3*-3'
13V, 'x26' 13'/ 'x26* 13'/ 'x26' 14' sir 14' xir 14' xir 14' x37' 14' x37'
14' x37' 14' x44' 14' x44'
14' x44* 15' x4V* (5' x49" 16' x58* 16' x58* 17' x58*
17' x58'
2'-9" 3'-9"
4'-9'
2'-8' 3'-8' 4'-8'
3'-8' 4'-8'
5'-8' 3'-8' 4'-8'
5'-8' 6'-3'
7'-3' 6'-3' 6'-9'
7'-6' 8'-O'
118 5500 128 5850
138 62U0 132 6300 143 6650 154 7000 167 9000
180 9500
193 10,000 181 (0,200 195 tO,850 208 11,500 260 >3,000 280 (4.000 295 (5.000 315 15,500 335 17,000 350 16,000
6 6 6
6 6 6 7
7 7
7 7 7
8 8
8 8 8
8
4 4 4 4
4 4
5 5
5 5 5
5 6 6 6
6 6
6
321
Fitzgibbons Boiler Co., Inc.
Boilers, Heating
PITZGIBBONS Large Steel Boilers
The Fitzgibbons Boiler owes its high standing among architects, engineers and builders to (1) its capacity to carry its rating with ease (2) its coal-saving as compared with other types, and (3) its absence of maintenance cost.
Construction: The design embodies the strongest possible construction with a minimum of interna!
bracing. The combustion chamber is concentric with the vertical shell possessing similar strength. The .
interior of the boiler is readily visible and accessible in all parts for inspection and cleaning. Numerous handhole openings together with the manhole in the top head facilitate getting at all parts. Built completely of steel, eliminating all brick work.
Steam Pressures: The Fitzgibbons Boiler for
heating is built for 15 lbs. steam pressure to conform
with the rigid requirements of the A. S. M. E. .
Boiler Code.
.
Combustion: Complete combustion of the fuel',
and its consumable gases in the combustion cham ber with a minimum of excess air is a requisite of economical operation. The Fitzgibbons Boiler has a circular grate with no dead corners. The com bustion chamber is over six feet in height, giving
the ample furnace volume now recognized as essential for complete combustion. The lower
crown-sheet of the furnace diverts the gases into a thorough mixture with the air admitted through the special opening over-the fire-door. This mass of consumable gas is.completely burned in the high combustion chamber before ` entering the tubes. Smokeless operation with semi-bituminous coal
indicates the thoroughness of this combustion. Furnace temperatures have run close to 3000 F.
Circulation: The second requisite of economical operation is the rapid absorption of the heat by the water. This can be effected only by properly arranged heating surfaces over which a fast circula tion is maintained. The horizontal shell with the , tubes in the Fitzgibbons Boiler is completely sub merged. The water-line is in the vertical cylinder immediately over the combustion chamber. As a result of this unique arrangement, the circulation is always towards the front of the boiler along a fixed path increasing its speed as it approaches the combustion chamber where the source of greatest heat exists. The perfection of this circulation is evidenced by (1) the quick-steaming ability of the boiler (2) less than one per cent moisture in the 6team regardless of overload carried and (3) unusually low fiue-gas temperatures.
Economy: Forty years of operation under all sorts of conditions of fuel, supervision and load requirements have placed the fuel-saving charac
teristic of the boiler at over 20 per cent of the fuel ordinarily required by boilers of the rectangular-grate design. This economy results directly from the boiler's
cylindrical construction, its complete combustion and its rapid water circulation.
Adaptability; The boiler requires little boiler-room
space. To overcome unusual space limitations caused
by irregular column or girder construction, the boiler
can be specially built with the fire-door placed on any
radius. Any fuel can be burned; semi-bituminous;
anthracite buckwheat; oil; gas; wood or sawdust*
An ever-increasing yearly production of this single
boiler attests to its correctness of design, its economy
in operation and its all-around efficient service.
.
Fitzgibbons Heating Boiler Showing Furnace
FITZGIBBONS BOILERS--Ratings and Specifications
322
Boilers
Harrisburg Star Boiler Corp.
15 Park Row, NEW YORK
Internally Fired, Self Contained Water Tube Boilers for
Low Pressure Heating and Medium Pressure Power
Lower Water Lines and head room than fire-tube boilers. Draft Areas which are sometimes restricted in fire tube boilers, are ample in Harrisburg
Star Boilers allowing slower movement of gases giving more time for absorption of their heat. Forced and Positive circulation through water tubes providing for effective transfer of heat from gases which cioss tubes (3) times. Both Inside and Outside surfaces of tubes can be cleaned. It is just as important to remove scale from water surfaces of tubes as it is to remove soot from fire surfaces. As a Safety Feature: The division of water into small masses prevents serious results in case of rupture.
323
Boilers
General Boilers Company
Manufacturers of
Pacific Steel Heating Boilers, Pacific Circulating Tanks
Waukegan, Illinois
PACIFIC STEEL HEATING BOILERS
For Burning Soft Coal Smokelessly For Soft or Hard Coal, Gas or Wood For Burning Oil
Pacific Steel Heating Boilers are built for steam or hot water heating using soft coal, hard coal, oil, gas, or wood as fuel.
They are constructed of steel accord ing to the A. 5. M. E. Code for building low pressure steel heating boilers. Every joint and seam in the Pacific is electrically welded and each boiler is built and tested to a pressure many times its normal working pressure un der the supervision of an inspector stationed in our plant by one of the largest insurance companies. A stand ard boiler policy is furnished with each steam boiler.
Because of the compact design Pacific Boilers save from 25 to 40 per cent, of the boiler room floor space required by other steel firebox boilers, (see dimensions given on opposite page).
The catalog ratings on Pacific Boilers are based on heating surface with steam at two pounds gauge pressure, hot water at 180 deg. at boiler. Any Pacific Boiler will carry its full rated toad in direct cast iron radiation. Extra capacity must be allowed for exposed piping, storage tank, pipe coils or indirect radiators and for buildings where normal tem peratures below 70 deg. F. are to be maintained.
324
General Boilers Company
Boilers
Catalogue ! Number
Net R ating-
Steam Height Water
Line, Inches Diameter Smoke
Connec. Inches Minimum Height
Stack, Feet Grate Area,
Square Feet Heating Surface.
Square Feet Size of Outlet. 1 Inches Size of Return,
Inches Length Overall Width Overall Height Boiler Length Base Width Base j Length for Ashpit Width for Ashpit Depth for Ashpit
PACIFIC SMOKELESS BOILERS
t3s
t/i V
f8fi
u
J0s0 *5
QX
%609 1900 64 14 13 50 6.77 152.0 4
610 2400 64 14 13 50 8.16 189.0 4
66$ 78$
8875
75
52 64
fA
12 !2
33 41
611 2900 68 16 15 55 9.47 234.0 5 3 612 3400 68 16 15 55 11.06 279.0 5 3 613 4000 68 18 17 60 11.85 318.0 5 3 6M 4500 68 18 17 60 12.70 372.0 5 3
81 46$ 93 46$
94 m. 106 w,
78 64
12 41 3IV2
478 76
79'/, 76$
12 49 31$ 12 49 33$
79V, 88$ 39$ 12 53 33$
613 5000 75 18 17 60 12.07 392.0 6 3 % 58
89V, 76>/, 45V, 12 41 39$
616 5500 75 18 17 65 13.10 425.0 6 3 102 58
89'/, 8$ 45$ 12 45 39'/,
T&617 5800 75 18 17 65 15.15 457.6 6 3 108 58
89V,
618 6500 81 74 22 65 16.42 508.5 7 4 96 62'/, 96
45$ 12 53 39$ 51$ 12 49 45$
619 7500 81 24 72 70 18.83 594.8 7 4 620 8500 81 24 22 70 20.00 637.5 7 4 621 9000 89 26 24 70 J9.ll 708.7 8 4 622 10000 89 76 24 75 20.50 809.5 8 4
108 114
112 124
b6m2$' 70$ m'A
96 96 106
106
88$ 51$ 12 57 45$
94y2 88w inrtf/
51$
58$ 58$
12
12
12
61 49
53
45$ 52$
52$
6Z3 12000 99 30 28 75 25.14 864.5 8 4 674 14000 99 30 28 75 26.64 988.8 8 4
113 125
77$ 117V,
63
77'/, 117V, i oo$ 63
15 61 57. 15 65 57
623 15500 106 37 30 85 32.6 1183.8 8 5 129 86
125V, 100$ 83'/, 15 57 77
676 18000 106 32 30 85 34.7 1332.9 8 5 141 86 677 20500 106 32 30 90 36.7 1482.0 10 6 153 86
125V, 112$ 83$ 15 61 77 125V, 124$ 83$ 15 65 77
628 22000 119 36 33 (00 19.1 1583.1 (0 6 (44 93$ 140 \\v/t 96V, 18 61 90V,
679 25000 119 36 33 100 41.4 1759.0 10 6 630 28000 119 36 33 100 43.7 1934.9 10 6
156JA 95$ 140 168(4 95$ 140
125V, 96$ 18 65 90$ 137V, 96$ 18 69 90$
13 X
X
X h* S3 f-
For Pacific Oil Fired Boilers use the above specification.
PACIFIC DIRECT DRAFT BOILERS
Net R ating-
Steam Diameter Smoke
Connec. Inches Diameter Stack
Inches Minimum Height ]
Stack. Feet | Crate Area,
Square Feet Heating Surface,
Square Feet Size of Outlet,
Inches Size of Return, \
Inches || Length Overall Width Overall
1
, Height Boiler Length Base Width Base Height Base j |
| Length for Ashpit Width for Ashpit | Depth for Ashpit
H
it 2* fca oX
709 1600 64 14 13 45 6.77 152.0 4 2$ 66'/, 42$ 75 52 33$ 12 33 27$
210 1900 64 14 13 45 8.16 189.0 4 2$ 78$ 42$ 75 64 33$ 12 41 27$
711 2400 68 16 15 50 9.47 234.0 5 V 212 2900 68 16 15 50 11.06 279.0 5 3 213 3300 68 18 17 55 11.85 318.0 5 3
81 46$ 78 64 37$ 12 41 31$
93 94
46$ 49$
78 79V,
76 37$ 76$ 39$
12 12
4949
3313'$/;
714
215 716
3800 68 18 17 55 12.70 372.0 5 3 4100 75 18 17 55 12.07 392.0 6 3 4500 75 18 17 60 13.10 425.0 6 3
106 96
102
49'/,
58 58
79V, 88$ 39$ 12 53 33$ 89'/, 76$ 45$ 12 41 39$ 89V, 82$ 45$ 12 45 39$
S3
X
717 5000 79 18 17 60 15.15 457.6 6 3 108 58
89V, 88$ 45$ 12 53 39$
718 5500 81 24 22 60 16.42 508.5 7 4 96 62'/, 96 719 6500 81 74 22 65 18.83 594.8 7 4 108 62$ 96
76$ 51$ 12 49 45$
88$
12 57 45$
X
770 7000 81 24 22 65 20.00 637.5 7 4 114 62$ 96
94$ 51$ 12 61 45$
771 772
7500 89 26 74 65 19.11 708.7 8 4 8500 89 26 24 70 20.5Q 809.5 8 4
112 124
70$ 106 106
88$ 100$ 58'A
12 12
49 53
52$ 52$
< X
223 10000 99 30 28 70 25.14 864.5 8 4 774 11500 99 30 78 70 26.64 988.8 8 4
113 125
77$ 77$
"TV, 88$ 63 II7V, 100$ 63
15 61 57 15 65 57 .
eg
225 13000 106 37 30 75 32.6 1183.8 8 5 129 86
12V/- '00$ 83$ 15 57 77
776 15000 106 32 30 75 34 7 1332.9 8 5 141 86
125M 112$ 83$ 15 61- 77
227 17000 106 32 30 80 36.7 1482.0 10- 6 153 86
125V, 124$ 83$ 15 65 77 t-
228 19000 JI9 36 33 90 39.1 1583.1 10 6 144 95$ 140 HP/. 96$ 18 61 90$
229 22000 119 36 33 90 41.4 1759.0 10 6
230 25000 119 36 33 90 43.7 1934.9 to 6
156$ 95$ 140 168$ 95$ 140
125V U/V.
96$ 96$
18 18
65 -90$ 69 90$
Pacific Boilers are constructed with smoke outlet at the rear and all of the tubes, both upper and
lower banks, are cleaned or removed from the front of the boiler through the front flue doors. Space at
rear of boiler is not necessary.
. . .
Complete catalog showing all types and sizes Pacific Boilers will be furnished on request.
325
Boilers
Hart & Grouse Company
General Office: UTICA, N. Y.
` Branch Offices in Principal Cities
Manufacturers of Royal .Boilers and Furnaces
Royal Smokeless Boiler
ROYAL SMOKELESS BOILERS
Actual Steam Capacities--1670 to 16,600 Sq. Ft
The Royal Smokeless Boiler is of the water tube down draft principle. This principle, originated by the Hart & Crouse Co. as applied to cast iron sectional boilers, has proved to be a most effective method of burning any grade of soft coal smokelessly independent of firing skill.
The large amount of heating surface in Royal Boilers is retained intact as originally designed. Consequently they produce results with efficiency and economy.
Boiler No.]
Actual ' Actual Current
Capacity Capacity Rating Steam* Water Steam Sq.Ft. Sq. Ft. Sq. Ft.
Current Rating Water .Sq. Ft.
Heating Surface Sq. Ft.
Grate Length Length
Area Sq. Ft.
Sections Inches
Boiler Inches
Flow
Tapping No. ana
Size
.Return Tapping
No. and Size
Smoke InihL
338 i 339! 340341 1 342 ; 343 344 345 346 347
409 410 - 411 ` 412. 413 . 414 415. 416
548 549 550 551 552 553 554
555 556 557 558
54-8 54-9 54-10 54-11 54-12 54-13 54-14 54-15 54-16 54-17 54-18
1,670 1,965 2*370 2,680 2,975 3,280 3,585 3,890 4,200 4,500
4,250 4,750 5,250 5,750 6,250 6,750 7,250 7,775
7,400 8,470 9,480 10,200 11,250
12,200 13,000 13,900 14,800 15,700 16,600
7,400 8,470 9,460
10,200 11,250 12,200 13,000 13,900 (4,800 *15,700 16,600
2.680 3,140 3,800 4,290 4,760 5,250 5.740 6,225 6,720 7,200
6,800 7,600 8,400 9,200
10,000
10,800 11,600 12,450
11,850 13,550 15,170 16,330 18,000 19,550 20,800
22,250 23,700 25,150 26,550
11,850 13,550 15,170 16,330 18,000 19,550 20,800 22,250 23,700 25,150 26.550
4,800 5,400
6,000 6,600 7,200 7,800 8,600 9,200
10,000
11,000
9,000
10,000
11,000
12:000 13,000 14,000 15,000 16,000
14,000 15,800 17,600 19,400 21,000 23,200 25,000 26,800 28,800 30,800 32,600
14,000 15,800 17,600 19,400 21,000 23,200 25,000 26.800 28,800 30,800 32.600
i 7,900 ; 8,900 : 9,900 10,900 11,900 12,900 14,200 15,200 16,500 18,150
14,850 16,500 18,150 .19,800 !21,450. 23,100 ,24,750 ;26,400
23,100 ;26,070 29,040 32,010 34,650 .38,280 41,250
44,220 47,520 50,820 53,790
.23,100 26,070 .29,040 -32,010 ;34,650 ;38,280
41.250 44*220 47,520 50,820 53.790
179
200
220 240 262. 283 316 337 360 378
324 359 394 427 461 496 53! 565
511 573 642 710. 773 841 909 978 1046 1114 1183
511 573 642 710 773 841 . 909 978 1046 1114 1183
14.23
17.00 19.65 22.50 22.50 25.10 25.10 28:00 28.00 28.00
24.00 27.50 3L66 31.66 31:.66 35.50 35i.50 35.50
37.50 45.00 45.00 45.00 52.50 52.50 52.50 52.50 52.50 52.50 52.50
37.50 45.00 45.00 45.00 52.50 52.50 52.50 52.50 52.50 52.50 52.50
503/, 563/, 63 69 75%
81% 87% 94 100 106'/,
.653/, 725/,
79'/, 86% 93% 101 108 115
83% 93% 104%
114%. 124% 135 145
1551% 165% 176 186%
83%
93% 104%
H4% 124% 135 145 155% 165% 176 186%
Push Nipple Type. :.
: Additional Data
Series
33'
66 72 78 84 90 96 102% 109 115 121
93 100 108
114% 121% 129 136 1)43
120% 130% 141%
151% 161% 172 182 192% 202% 213 223%
981% 108%
119% 129% 139%
150 160 170% 180%
191 201%
1-5* 1-5' 1-5' 1-6' 1-6' 1-6' 1-6' 1-6' 1-6' 1-6'
1-8' 1-8' 1-8' 1-8' 1-8' 1-8' 1-8' 1^8'
1-8' 1 S' 1-10' 1-10* MG' 1-f!0' 1-10* 1-10* 1410' 1--I0' M0*
3-6' 4-6' 4-)6' 5-6' 5-6' 5t6' 6-6' 6^6' 6-6'
6-6'
40*
2-3' 2-3' 2-3' 2-4' 2-4' 2-4' 2-4' 2-4' 2-4' 2-4'
2-5' 2-5' 2-5' 2-5' 2-5' i 2-5' 2-5' 2-5'
2-5' 2-5' 2-5' 2-5' 2-5' 2-5' 2-5' 2-5' 2-5' 2-5' 2-5'
4-4' 8-4' 8-4' 10-4' 10-4' 10-4' 12-4' 12-4' 12-4' 12-4' 12-4'
18 18 18 18 18. 18 18
21
21
21
21
21
21
21
21 24 24 . 24
24 24 24 24 24 24 24 24 24 24 24
24 24 24 24 24 24 24 24 24 24 24
54' .
Height of water line........................................... ........Inches
Height ot* How ouUet (Header type)............... Height of flow outlet (Push Nipple type).... Overall width..................................................... ........Inches Width at base.................................................... ........Inches
63 90
68 40
68 68' 99 .108
-89.
78 97 . 52 .621%
Height from top of foundation. Add 2" for floor height.
326
Hart & Crouse Company
Boilers
ROYAL SECTIONAL BOILERS Actual Steam Capacities--400 to 9,966 Sq. Ft. Actual Water Capacities--667 to 16,000 Sq. Ft.
Series
Additional Data 22'
28' 36'
Height of flow outlet (Push Nipple type) .. .Inches Height of flow outlet (Header type)........
Smoke Pipe................................................
46 56
36 32>/, 10
54 65
44 38 12
Height to top of foundation. Add 2" for floor height.
63 75
56 45 15
54'
68" 89 108 50% 62% 24
Boiler Np.
Actual Capacity
Steam
Sq. Ft.
Actual Capacity
Water
Sq. Ft.
Current Current Rating Rating Steam Water
Sq. Ft. Sq. Ft.
Max.
Grate Area Sq.Ft.
Length Length
of of Sections Boiler
Inches Inches
Steam Steam Water Water Flows Returns Flows Returns
No. and No. and No. and No. and
Size Size Size Size
22-4 22-5 22-6 22-7
28-5 28-6 28-7 28-8
36-5 36-6 36-7 36-8 36-9 36-10
36-12
554-A 564 574 584 594 604
614 624 634 644 654
854 864
874 884 894
703 713
723 733
743 753
1
400 533 667 800
667 1,083 1,300 1,517
1,400 , 1,750 2,100 2,450 2,800 3,150
3,850
4,233 4)900 5,567 6,233 6,767 7,300 7,833 8)367 8,900 9,433 9,966
4,233 4,900 5,567 6,233 6,767 7)300 7,833 8,367 8,900 9,433 9,966
667 867 1,100 1,330
1,433 1,783 2,133 2,483
2,310 2,883 3,467 4,038 4,617 5,200
6,900 7,567 8,333 9,335 10,000 11,000 12,000 13.000 14,000 15,000 16,000
6,900 7,567 - 8,333 9,335 10,000 11,000 12,000 13,000 14,000 15,000 16.000
800 1,000
1,200 1,600
1,700
2,100 2,500 2,900
2,925 3,650 4,375 5,100 5,825 6,550 7,275
8,000
8,600 (0,400 12,200 14,000 15,800 17,600 19,400 21,000 23,200 25,000 26,800
8,600 10,400
12,200 14,000 15,800 17,600 19,400 21,000 23,200 25,000 26,800
1,300 1,650
2,000 2,350
3.36 4.43 5.50 6.57
2,800 3,450 4.125
4,775
6.42 7.98 9.54
11.10
4,825
6,025 7,200 8,400 9,600 10,800
9.25 11.50 13.75 16.00
18.25 20.50 22.75 25.00
14,190 17,160 19,520
23,100 26,070
29,040 32,010 34,650 .38,280 41,250
44,220
15.00
18.75 22.50 26.25 30.00 33.75 37.50
41.25 45.00 45.00
45.00
i4,190 15.00
17,160 18.75
19,520 22.50 23,100 26.25 26,070 30.00 29,040 33.75 32,010 37.50
34,650 41.25
38,280 45.00 41,250 j 45.00 44,220 1 45.00
25 32 39 . 46
36 44 52 60
41 50 59 68 77 86 95 104
53 63 73 83% 93% 104% 114% 124% 135 145 155%
53 63 73 83%
104% 114% 124% 135 1 145 1 155%
34 41 . 48 55
46% 54% 62% 70%
52 .61 70 79
88 97 106 115
68 78 88 98% 108% 119% 129% 139%
150 160 170%
90 100
110 120% 130%
141% 151% 161% 172 182 : 192%
2-4'
2-4' 2-4' -
2-4'
4-3'
4-3' 4-3' 4-3?
2-4'
2-4' 2-4' 2-4'
2-5'
2-5' 2-5' 2-5'
4r4'' 4-4' 4-4'
4-4'
2-4' 2-4'
3-4' 3-4'
2-6'
4-4'
2-6' 4-4'
2-6' 4-4' 2-6';- . 4_4
2-6' 4-4'
2-6' 4^4'
2-6' 4-4'
2-6' 4-4'
2-6'
2-6' 2-6'
2-6' 2-6' 2-6'
2-6' 3-6' 3-6' 4-6'
4-6' 4-6' 5-6' 5-6' 5-6' 6-6' 6-6'
4-4' 6-4' 6-4' 8-4' 8-4'
8-4' 10-4' 10-4'
10-4' 12-4'
!214'
2-6' 3-6' 3-6' 4-6' 4-6'
4-6' 5-6'
5-6' 5-6' 6-6' 6-6'
1-8' 2-5' 1-6'
'1-8'
2-5'
1-8'
1-8' 2-5' 1-8'
1-8' 2-5' 1-8'
1-8' 2-5' 1-10'
1-10'
2-5'
1-10'
1-10'
2-5'
1-10'
1-10'
2-5'
1-10"
MO*
2-5'
1-10'
1-10*
2-5'
1-10"
i-icr 1 2-5' 1 1-10'
4-4' 4-4' 4-4' 4-4'
4-4' 4-4' 6-4' 6-4'
4-4' 4-4' 4-4' 4-4' 4-4' 4-4'
4-4' 6-4' 6-4'* 8-4' 8-4' 8-4' 10-4' 10-4' 10-4' 12-4' 12-4'
2-6' /-oJ 2-6' 2-6' 3-6' 3-6' 3-6' 3-6' 3-6' 3-6" 3-6'
Header Type.
Steam No.
ROYAL ROUND BOILERS
Actual Capacity
Sq. Ft.
Current Rating Sq; Ft.
Water No.
Actual Capacity Sq. Ft.
Current Rating Sq. Ft.
Royal Round Steam Boiler
1035 . 1045
1055 1065 1075
1037 1047 1057 1067 1077
1039 1049 1059 1069 1079
178 244 325 415 525
200 280 375480 625
218 300 425 575 700
425 625 825 1025 1250
475 700 925 1150 1400
525 775 1025 1275 1600
1134 1144 1154 1164 1174
1136 1146 1156 1166 1176
1138 1148 1158 1168 1178
284 390 520 664 840
320 450 600 768
1000
339 - '480
680 920
1120
700 1030 1360 1700 2060
780 1150 1525' 1900 2300
870 1275 1700 2100 2640
Royal Round Water Boiler
327
Boilers
t LECTRIC WfLDEp -
IECClESIMPLEX]
^STEEL BOILERS^
Heggie-Simplex Boiler Co.
Joliet, Illinois
Heating Boiler Division of James G. Heggie & Sons, Manufacturers of Steel Boilers of all Kinds for over
Thirty-four Years
Representatives in Principal Cities
HEGGIE-SIMPLEX HEATING BOILERS
For Burning Soft Coal Smokelessly For Soft or Hard Coal, Coke, Gas or Wood .
For Burning Oil
During the thirty-five years covered by the activities of Jas. G. Heggie & Sons, boiler design has been perfected in its fundamentals. The Heggie-Simplex Boiler is the last step in this evolution. In it there is no compro mise with traditional features. It is the embodiment of a scientific study of all known heating principles and requirements.
The Heggie-Simplex Boiler combines in one portable, electrically welded steel unit all the recognized advantages of both firebox and return tubular, double pass boilers. It has four distinctive features of fundamental importance:
1. An extra large firebox and a maximum of direct, heating surface.
2. A secondary combustion chamber that provides ample room for complete com bustion before the flues are reached.
. 3. A " rear-front-rear " flue passage for the gases.
4. A single, unimpeded, freely circulating body of water.
Correct heating principles find their most perfect expression in this boiler design. It secures as complete combustion of any fuel as ever has been attained in a heating boiler, with full application of its heat units.
Needless to say, Heggie-Simplex Boilers are more economical of operation than other types--in fuel consumption, number of firings, and ash handling. They are also economical of space, because of their com pactness, the rear smoke outlet, and the front tube cleaning feature. No finer materials are used in any heating boilers, and none are fabricated more expertly or with greater care. While built to A. 5. M. E. requirements, in a number of points they exceed these stand ards. They may be installed with unex ampled ease, requiring no bricking, packing or other costly operations.
Heggie-Simplex Boilers are guaranteed to develop the capacities listed on the following pages, at the point of most economical fuel consumption. They are based upon a stand ard for steam of two pounds pressure at the boiler, and for water upon a mean temperature of 180 deg. fahr. as the water leaves the boiler.
Send for Catalog No. 26 to obtain more detailed information and specifications.
328
Heggie-Simplex Boiler Co.
329
Boilers
H E G G 1E -S IM P LE X D 1R E C T .D R A F T S TE A M H E A T IN G B O ILE R S
Heggie-Simplex Boiler Co.
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Boilers and Furnaces
IriTERn/mon/iL He/tter Cocop/iny
New York
Makers of Heating Apparatus
Fisk Bldg., Broadway and 57th St.
UtlCa, N Y,
. Chicago 1933-35 Wentworth Ave.
Cleveland 1441 Davenport Ave., N.E.
Detroit 1114 Dime Savings Bank Bldg.
Pa^oRia-His
1613 Filbert St Nashau, N. H. 110 Chestnut St.
J^eOATOMY
ROWERS
On the following pages we present condensed data on the INTERNATIONAL Round Boilers, Economy Sectional Boilers, both the Regular Pattern, and Mixing Arch and Wing Wall Type Smokeless Patterns.
INTERNATIONAL Guaranteed Radiation Loads make possible the immediate and accurate selection of the proper boiler size for any job. All guess work is eliminated. Proper allowance has already been made to cover piping mains and risers. These Guaranteed Radiation Loads have been determined from tests in our Research Depart
ment. The INTERNATIONAL HEATER COMPANY supports these Guaranteed Radiation Loads absolutely. The guarantee under which INTERNATIONAL Economy Steam and Water Boilers are rated reads:
"We guarantee INTERNATIONAL ECONOMY steam and water
boilers to maintain 2 pounds steam pressure or 180 temperature at the
boiler, on the guaranteed amount of direct cast iron radiation shown for
each size. Additional loads such as domestic hot water supply, direct-
indirect and indirect radiators, blast coils, or rooms to be maintained below
70 temperature, must be reduced to and included in equivalent square
. feet of direct cast iron radiation.
`
"This guarantee is based on fuel of at least 11,500 B.t.u. and a chimney
providing sufficient draft to properly burn the fuel."
'Both the Regular and the Smokeless types have the following distinctive features in common: A long fire travel and all heating surface below the water line; a low steady water line with water gauge tapped directly into the section; dry steam guaranteed without a header and only one main outlet from boiler; grate bar connections of sectional boilers are outside the ashpit; all heating surface easily cleanedfrom front of boiler through large flue doors.
Cut-Away View of No. 140-S-4? Economy Smokeless Boiler
331
International Heater Company
Boilers and Furnaces
InTERM/mon/iL He/tter Ccxop/my
SECTIONAL MEASUREMENTS Smokeless Steam Sizes
International Heater Company
Boilers and Furnaces
InTERn/mon/iL He/tter Cocop/my
Height of Water Line, Inches j Diameter of Smoke Outlet, Inches | Height to Supply Outlet, Inches Add to Height for Trimmings, Inches Width of Boiler. Including
Trimmings, Inches Height from Floor to Center of
Return Tappings. Inches Height of Fire Box to Crown, Inches Height, Grate to Middle of Feed
Door, Inches Size of Feed Door, Inches
,8 cVo
22 47 12 57 II 39 19 22 16 9x17
28 50 14 62V, 11 45 19V, 24 16 9x17
34 54 16 68 11 54 20
26 18 11x21
47 59 24 73 12 63 21 'h 26 18 2-10x17
47 in. Series Economy Smokeless Boiler Showing Access for Cleaning
Ratings and Dimensions ECONOMY SMOKELESS BOILERS { (Steam Pattern)
Guaranteed
Radiation Load
Sq. Ft.
Com mercial Rating Sq. Ft.
Grate Sq. Ft.
Additional Grate, Sq. Ft.
Coal Capacity
Pounds
Minimum Chimney Dimensions
Size of Flue Height Inches . Feet
trappings Supply Return
60-S-22 70-S-22 80-S-22
90-S-22 100-S-22 60-S-28
70-S-28 80-S-28
90-S-28 I00-S-28 70-S-34
80-S-34 90-S-34
100-S-34 1IO-S-34
I20-S-34 130-S-34 140-S-34 I50-S-34
6I-S-47
7I-S-47 81--S--47
9I-S-47 IOO-S-47
1IO-S-47
I20-S-47 130-S-47
I40-S-47 150-S-47 I60-S-47.
I70-S-47 180-S-47 190-S-47
200-S-47
210-S-47
837 1008
1183 1354
1525 1079
1306 1533 1770 1998
1720
2010 2300
2600 2900 3200 3510
3815 4150 3300
3890 4500 5100
5715 6385 7075 7800
8550 9300
10000
10710 11425 12125
12810 13500
2200
2650 3100 3550 4000
2850 3450 4050 4650 5250
4500 5250
6000 6750 7500 8250
9000 9750 10500
7950 9450 10950 12450 13950
15450 16950 18450
19950 21450 22950 24450
25950 27450
28950 30450
6.4 7.3 8.5 9.7
11.0
8.2
9.3
10.8 12.4 14.0 11.3 13.2 15.1 17.0 13.2 15.1 15.1 17.0 17.0 16.32 19.58 22.85 26.11 19.5 19.5 19.5
22.8
22.8 22.8
22.8
22.8 26.1 26.1 26.1 26.1
3.0
3.3 3.7 4.1 4.4
3.3 3.7 4.1 4.4
4.8 4.0 4.1 4.7
5.1 4.4
4.7 4.7
5.1 5.1 4.70 5.16
5.60 6.06 5.1
5.1 5.1 5.6 5.6
5.6 . 5.6
5.6
6.0
6.0
6.0
6.0
460 545 630 715
800 590 705
820 935 1050
985 1135 1285 1435 1135 1285 1285 1435 1435 1250 1500 1750
2000 1500 1500 1500 1750 1750 1750 1750 1750
2000
2000
2000
2000
12x12 12 x 12
12 x 12 12x12 12 x 16 16 x 16 16x16 I6x 16
16 x 16 16 x 16 16 x 16
16 x 16 16 x 16 16x20 20x20 20x20 20x20
20x24 20x24 20x24 20x24
24x24 24x24 24x24
24x24 24x28 24x28 24x28
28x28 28x28
28,32 28x32 28x32 32.32
32x32
35 40 40 45
50 35 40 40 45
50 45 45 50 50
55 55 60
60 60
55 55
60 60
65 70 70
75 75 80
85 90 95
100 105
110
2-3'// 2-3'/'
3-3'/'
3-3'/' 3-3'/' 2-4' 2-4' 3-4'
3-4' 3-4' 3-5'
3-5' 3-5' 3-5' 3-5' 3-5'
3-5' 3-5' 3-5' 2-6'
2-6' 3-6' 3-6' 3-6' 3-6'
4-6' 4-6' 4-6' 4-6'
4-6' 4-6'
4-6' 4-6' 4-6' 4-6'
m
2-3'// 2-3'/' 2-3'/'
2-4' 2-4' 2-4'
2-4' 2-4' 2-5'
2-5' 2-5' 2-5' 2-5' 2-5'
2-5' 2-5' 2-5' 2-6' 2-6'
2-6' 2-6' 2-6' 2-6'
2-6' 2-6' 2-6' 2-6*
2-6' 2-6' 2-6'
2-6' 2-6' 2-6'
'Judgment should be used in fitting the boiler to a job. As'an example: Do not attach a short boiler to
a relatively high stack, or a long boiler to a relatively low stack. Suit the boiler to the job.
**AU Economy Smokeless Boilers, 22" and 28" series. Nos. 70-S-34 to 100-S-34 and Nos. 61-S-47 to
91-S-47, inclusive, are built with grates extending full length of the boiler and using a mixing arch. All
larger sizes are built as shown in catalog with bridge and wing walls.
...
tThe Economy line of boilers does not require a header. Plug and bush tappings to size of mains.
{Send for Catalog 1751-G for additional data.
332
Water Pattern
jfceOJVOMY SECTIONAL ftomsus
Steam Pattern
Water Pattern
Number
Guaranteed * Radiation
Load
Sq.Ft.
Commercial Rating
Sq. Ft.
Size of Grate Sq. Ft.
Additional Area
Side Grates Sq. Ft.
Number
Guaranteed
Radiation Load
Sq. Ft.
Commercial
Rating Sq.Ft.
Size of
Grate Sq. Ft.
Additional Area
Side Grates Sq. Ft.
4-S-19 5-S-19 fr-S-19
4-S-22 5-S-22 6-S-22 7-S-22
. 5-S-28 6-S-28 7-S-28 8-S-28
5-S-34 6-S-34 7-S-34 8-S-34 9-S-34 IO-S-34
6-S-47 7-S-47 8-S-47 9-S-47 IO-S-47
427 568 711
497 667 837 1008
852 1079 1306 1533
1137 1421 1705 1989 2274 2558
3180 3780 4380 4980 5580
915
1220 1525
1070 1435 1600 2165
1830 2320 2800 3300
2440 3050 3660 4270 4880 5490
6890 8190 9490 10790 12090
3.1 4.2 5.2
3.6 4.9 6.1 7.3
6.2 7.7 9.3 10.9
7.5 9.4 11.3 13.2 15.1 17.0
16.3 19.5 22.8 26.1 29.3
2.1
19-W-4
705
2.5
19-W-5
937
2.9
I9-W-6
1173
2.2
22-W-4
820
2.6
22-W-5
1100
3.0
22-W-6
1381
3.3
22-W-7
1663
3.0
28-W-5
1405
3.3
28-W-6
1780
3.7
28-W-7
2155
4.1
28-W-8
2529
3.3 W-34-W-5
1876
3.6 W-34-W-6
2345
4.0 W-34-W-7
2813
4.4 W-34-W-8
3282
4.7 W-34-W-9
3752
5.1 W-34-W-I0 4221
4.7
47-W-6
5247
5.1
47-W-7
6237
5.6
47-W-8
7227
6.0
47-W-9
8217
6*. 5
47-W-10
9207
1525 2015 2500
1760 2365 2970 3570
3020 3825 4630 5435
4026 5002 5978 7076 8052 9028
11375 13520 15665 17810 19955
3.1 4.2 5.2
3.6 4.9 6.1 7.3
6.2 7.7 9.3 10.9 t
7.5 9.4 11.3 * 13.2 ; 15.1 17.0 ,
16.3 19.5 22.8 26.1 29.3
2.1 2.5 2.9
2.2
2.6 3.0 3.3
3.0 3.3 3.7 4.1
3.3 3.6 4.0 4.4 4.7 5.1
4.7 5.1 5.6 6.0 6.5
SERIES .
19* 22' 28' 34'
47'
Height of Water Line............ 44' 47' 50* 54' 59*
Height to Supply Outlets___ 53' 57' 62V,' 68' 73'
Add to height for 1 riminings. 9* II' 11' 11'
12'
27' *>>/.' 35' >/.' 53'
Width of Boiler, including
Trimmings......................... 35' 39* 45' 54' 63'
Height from Floor to Center
18' 19* 19A' 20' 21W
Height of Fire Box to Crown 22' 22' 24' 26' 26'
Height, Grate to Middle of
Feed Door.......................... 16' 16' 18' 18' 18'
Size of Feed Door.................. 9x14' 9x17' 9x17' 11x21' 2-10x17'
Diameter of Smoke Flue. . .. 9' 12* 14' 16' 2tr
SERIES
19* 22' 28' 34'
47'
Height to Supply Outlets.... 50* 54' vr 68'
73'
Width of Boiler..................... 33' 36' 42' 48' 59*
Height from F loor to Center IB' 19* IQt/j*
?u//
Height of Fire Box to Crown. 22' 22* 24' 26' Height, Grate to Middle
26*
of F eed Door............... 16' 16' 18' 18'
18'
9x14' 9x17' 9x17' 11x21' 2 10x17
Width of Ashpit.................... 27' 29V/ 35' '403// 53' 9' 12' 14' 16' 20'
--
Column No. 1 is our "Guaranteed Radiation Load" rating indirect cast iron radiation, as explained on preceding page. Column No. 2 is our "Commercial'' rating indicating our ratings based on tests made in accordance with the A. S. of H. & V. E Code. This is for comparison with boiler ratings of other manufacturers who use this as their rating basis.
333
International Healer Company
Boilers and Furnaces
InTERn/mon/iL He/tter Cocop/my
ECONOMY ROUND BOILERS
These Boilers are designed to meet the most rigid demands for economical heating.
The carburetor principle of combustion is embodied in the design, also the positive cross fire travel, an exclusive feature of Economy Round Boilers.
Have deep firepot section, positive circulation, ample steam dome, individual cleanout doors, and side draft door.
Equipped with patented herring-bone triangular grate or flat grate for soft coal and the small sizes of anthracite coal.
Made in eighteen sizes, 18 to 30 in. grate diameters. Guar
anteed radiation loads (steam): 187 to 166 sq. ft. of radiation,
corresponding sizes for water.
See Catalog 1746-G for additional data.
Economy Round Water
Data on ECONOMY ROUND BOILERS
Steam Pattern
Water Pattern
Number
Ratings
Guar anteed
Radiation Load
Sq. Ft.
Com mercial Rating
Sq. Ft.
Height
Water Line Inches
Number
Ratings
-Guar
anteed Radiation
Load Sq. Ft.
Com mercial Rating Sq. Ft.
3-E-18 and 32-E-I8 4-E-18 and 42-E-18
5-E-16 and 52-E-18
187 208
229
525 41 585 45 645 49
18-E-3 and I8-E-32
309
900
I8-E-4 and 18-E-42
343
975
18-EL-5 and 18-E-52 378 1050
B-221 and B-2221 B-321 and B-3221 B-421 and B-4221
193 540 43% B-212 and B-2122 232 655 471/5 B-213 and B-2132 267 760 51 % B-214 and B-2142
318 938 383 1088
441 . 1238
B-224 and B-2224
B-324 and B-3224 B-424 and B-4224 B-324 and B-5224
250 710 44Vi B-242 and B-2422
413 1200
293 825 49
B-243 and B-2432
483 1388
333 950 53% B-244 and B-2442
549 1575
360 1015 58
B-245 and B-2452 . 594
1763
B-227 and B-2227 B-327 and B-3227 B-427 and B-4227 B-527 and B-5227
320 900 46% B-272 and B-2722
372 1050 51
B-273 and B-2732
427
1200
55>/,
B-274 and B-2742
467
1315
60%
B-275 and B-2752
528 1538 614 1763 705 1988 771 2213
B-230 and B-2230
B-330 and B-3230 B-430 and B-4230 B-530 and B-5230
467 1300 47>/2 B-302 and B-3022
544
1530
52>/4
B-303 and B-3032
613 1725 58
B-304 and B-3042
666 1875 63% B-305 and B-3052
771 2213 898 2550 1011 2888
1099 3150
Height to Flow Outlet Inches
40% 44% 48%
42% 46% 50%
43% 48 52% 57
45% 50% 55 59%
48 53%
ft
. SERIES Outside Diameter at Base........................................................... Size of Smoke Flue...................................................................... Tappings, Supply and Return....................................................
18"
25%" I5%" 7' 23" t-2%"
21*
29* 16* 9* 26%* 2-2%'
24*
32' 17* 9* 28%* 2-3'
27'
35" I7%" 10" 321/.' 2t3%"
30*
39* 17%* 10' 35' 2-4'
In the 18" sizes the crown sheet is cast separate from firepot. In 21", 24", 27" and 30" si2es the firepot
and crown sheet are cast in one piece.
'
334
International Healer Company
Boilers and Furnaces
InTERn/rrioii/iL He/tter Coop/iny
INTERNATIONAL CARTON FURNACE
The International Carton Furnace is a sturdy,
powerful heater made entirely of heavy cast iron
with but five principal castings used in its as
semblage.
`
It is very economical in the use of any fuel com
monly used for heating purposes because of its self
cleaning radiator.
Deep sealed cup joints are provided wherever
castings join. The base and lower casing ring are
in one piece, feed chute and combustion chamber
are cast as a unit, and the ashpit is in one piece.
Has patented herring-bone triangular grate, large
double feed door, and roomy ashpit.
Made in six sizes. Firepot diameters 20 to 33 in.
Casing diameters 44 to 60 in.
Complete Catalog 1818-G sent on request.
Economy Furnace
INTERNATIONAL ECONOMY FURNACE
This is a moderate priced heater, but one of unusual efficiency. Proportions of heating surface, grate area and air capacity check with scientific and accepted standards.
The front is finished in a rich blue and surface grinding assures correct fit of contact joints.
The unique Economy radiator is totally different from any other and wide air spaces causes practically 50% of the air to pass toward the center over the hottest part of the fire. This heater has triangular grates, a big humidifier, large roomy ashpit, cold drop wire handles on both tight fitting feed and ashpit doors, and its ashpit, feed chute, and radiator openings extend thru the front so no smoke, gas, or dust can leak into the warm air chamber.
It is made in five sizes for hard or soft coal. Firepot diameters: 18 to 26 inches; casing dia meters: 36 to 52 inches.
Complete data in catalog 1752-G.
INTERNATIONAL ONEPIPE HEATER
The International Onepipe Heater is designed to deliver large volumes of warm air through one register correctly pro portioned to firepot diameter.
The castings with the exception of special flanged front are the same as those used in the Baronet Furnace.
Heavy galvanized casings. Inner casing triple lined with heavy asbestos and corrugated tin. Both casings extend down to the rings which are integral with the base.
Top is adjustable to various heights without cutting. Furnished with cast or steel radiator for hard or soft coal. Firepot diameters 16 to 24 in. Casing diameters 36 te50 in., register sizes 24 x 24 in. to 40 x 40 in. Complete data in Catalog 1610-G.
Onepipe Healer
Special Types for Warming and Ventilating School Houses. Send for Bulletins 1505-G and 1757-G.
335
Boilers
Ironton Bernhard Boiler Mfg. Co.
Ironton - Ohio
ligHHARB
B@ii.eBS .
The Consistent Boiler
The COMBUSTION from each Grate Bar being entirely taken care of in the Section directly above it, the same Ratio of GRATE Surface, FIRE Surface and FLUE Area is always maintained. Note how Gases Expand at three different points.
'
j
i i j
' , ! : ,:
.i
Smokeless Boiler with the Lowest Water Line
Boiler No.
Steam Rating
Water Rating
20- 5 20- 6
20- 7 20- 8 20- 9
30- 6 30- 7 30- 8 30- 9
30-10 30-11 30*12
40- 8 40- 9 40-10 40-11
40-12 40-13
40-14 40-15 40-16
40-17 40-18 . 40-19
40-20 40-21
40-22 to
40-32
600 800*
1000
1200 1400 1600
2000 2400 2800 3200 3600 4000 4200 4900 5600
6300 7000 7700 8400 9100 9800 10500
11200
11900 12600 13300 14000
700
21000
Add per Section.
1000 1300 1650
2000 2350 2600 3250 3900 4550 5200 5850 6500 6720 7840 8960 10080
11200 12320 13440 14560 15680 16800 17920 19040 20160 21280 22400
1120 33600
Crate Surface Sq. Ft.
2.50 3.33 4.17 5.00 5.84 5.00 6.25 7.50 8.75 10.00 11.25 12.50 10.00 11.66 13.33 15.00 16.66 18.33 20.00 21.66 23.33 25.00 26.66 28.33 30.00 31.66 33.33 1.67 50.00
Flue Area Through
Sections Sq. In.
1 -h*. Steam per Hour
B.t.u. per Hour
42 150 145,500
56 200 194.000
70 250 242.500
84 300 291.000
98 350 339,500
80 400 388.000
100 500 485.000
120 600 582.000
140 700 679,000
160 800 776,000
160 900 873,000
200
1000
970,000
160 1050 1,018,500
185 1225 1,188,250
210 1400 1,358,000
235 1575 1,527,750
260 1750 1,697.500
285 1925 1,867,250
310
2100
2,037,000
335
2275
2.206,750
360
2450
2,376,500
385
2525
2,546.250
410
2800
2,716,000
435
2975
2,885,750
460
3150
3,055,500
485
3325
3,225,250
510
3500
3,395,000
25 175 169,750
760
5250
5,092,500
Height Water
Line
Flow Openings
42' 42' 42' 42' 42' 42' 42' 42' 42' 42' 42' 42' 46' 46' 46' 46' 46'46' 46' 46' 46' 46' 46' 46' 46' 46' 46' _
46'
2-3' 2-3' 2-3' 2-3' 3-3' 2-4' 2-4' 2-4' 2-4' 3-4' 3-4' 3-4' 2-5' 2-5' 2-5' 2-5' 3-~^ 3-5' 3-5' 3-5' 3-5' 4*5' 4-5' 4--5* 4-5' 4-5' 4-5'
6^5'
336
Boilers
Kewanee Boiler Company
Kewanee, Illinois
BRANCHES IN ALL PRINCIPAL CITIES
Steel Heating and Power Boilers, Water Heating Garbage Burners, Tabasco Heaters, Tanks and Radiators
KtWANEt plR&BX
Kewanee Firebox Boilers represent 35 years of
Ron CD *
"
intensive study and effort to make the highest
D1"ILfcR -Brick-eet-for Heating grade equipment for heating buildings. They are
adapted to the burning of any grade of fuel and will
maintain high efficiency when operating to supply the variable demands of a
heating load.
Kewanee Sm?keless 5?iler -Portable-far Heating
The rated capacity is the amount of direct radiation that the boiler will carry with a firing interval of three to four hours depending upon the
. grade of fuel used. No discount in rating is ad
vised as reserve capacity has been allowed to care for the most severe weather
conditions.
Kewanee Boilers are built of steel (riveted) using as a minimum basis the rules of construction adopted by the American Society of Mechanical Engineers, known as the A. 5. M. E. Boiler Code.
* ' Ratings
The rated capacity of Kewanee Boilers, as shown, is the number of square feet
of direct radiation or equivalent which the boiler will carry, if sufficient radiation is installed to heat the building to 70 degrees fahrenheit.
The ratings are based on a standard for steam of 2 lb. pressure at the boiler, and for water on a mean temperature of 180 deg. fahr. as the water leaves the boiler.
337
Kewanee Boiler Company
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Heating Surface...................................................................... *q.ft.
Area of Upper Grate............................................................... sq.ft.
Diameter or Boiler....................................................................in.
Length Boiler Over-all..............................................................ft.in.
:Diameter of Stack.................................................................... in.
Height of Stack.................. _............. .....................................ft.
Diameter of Stack, Two Boiler*...............................................in.
Height of Stack. Two Boiler#...................................................ft.
Size of Steam Opening............................................................. in.
Size of Return.............................
in.
Size of Safety Valve................................................................. in.
C --Rear Space..........
in.
D --Thicknesi W all................................................................in.
E--Length Grate...................................................................in.
J --Width Ash-pit.............................................
in.
F --Thickness Bridge W all....................................................in.
G --Grate to Tube Sheet....................................................... in.
U --Header to Bridge W all....................................................in.
KH
--Height Brickwork............................................................ --Location Steam Supply...................................................
in*
ft.in.
L --Length Over-air............................................................... ft.in.
;M --Height Water-line........................................................... in.
N --Height Side Flue.................. ........................................in.
O --Diameter Breeching Connection.....................................in.
S--Top Flue Space....................................... ..................... in.
V --Length of Arch................................................................ ft.in.
W Width Over-all...........................,.............................. ft. in.
:Req'd at Rear to Draw Tubes............... .......................ft. in.
' Number Common B rick............................................................
. Number Fire Brick..... ..............................................................
Common Brick for Two Boilers................................................
Foundations n o t included.
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Kewanee Boiler Company
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Kewanee Boiler Company
03
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Boilers
Kewanee Boiler Company
Boilers
455 505
900 935
16-2 16-2
18-1 20.1
64 64
20 20
13 13
24 21
105 105 12-6 \2-6
123 123
121 121
109 109
9-10 11-4
77 77
84 90
60 86
43 43
2-3 2-3
66
10 10
100 IfO
54 54
90 100
38 40
84
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" f3t0 60 16-1 16-2 885 425
420 421 422 423 424
17500 1514 36.6 78 17-11 34 60 48 90 74 78
71M
101 115 117 97 , 11-3
" f2t4 60 16-1 14-2 840 385
space is available a t fro n t, it is n o t necessary a t rear, and vice-versa.
Foundations not included.. t ) f space is available a t fro n t, it is not necessary a t rear, and vice-versa.
414 i 415 416 417 418
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Ketoanee Boiler Company
Boilers
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342
Kevoanee Boiler Company
Boilers
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Numberof Boiler........ :............
343
Lebanon Boiler Worlds
Boilers
Lebanon Boiler Works
J. K. PETTY & CO., Inc., Proprietors
1210 Buttonwood Street - Lebanon, Pa.
Sales Offices
Koithan & Pryor, Representatives
507 Harrison Building, PHILADELPHIA
- 39 Cortlandt Street, NEW YORK
Representatives in Other Principal Cities
For Larger Buildings
Lebanon "L-O" Steel Boilers
Built also for high-pressure service up to 400 horsepower.
The standard unit is shipped complete with steel base, grates, bridgewall and refrac
tory combustion arch securely attached to the boiler, ready for operation. The boiler
is skidded on its own base.
.
For Oil Firing the burner is generally located in base at rear, bridgewall is
omitted, and combustion arch on top of furnace water circulating tubes is extended to rear head.
Boiler No.
Steam Radiation Boiler Dimensions
<Sq. Ft.)
Width x Height
Coal Oil Fuel above Floor x Length
LO-15
LO-16 LO-17 LO-I8
LO-19 LO-IIO LO-III
LO-112 LO-113
LO-114 LO-115 LO-II6
LO-117 LO-118 LO-119 LO-120
LO-I2I LO-122
3,200 4.000 4,800 5,600
6.400 7,200 8,000 9,600
11,200 12.800 14,400
16,000 20,000 24,000 28,000
32,000 36,000
40,000
4,000
5,000 6,000 7,000 8,000
9,000 10,000 12,000 14,000 16,000
18,000 20,000 25,000 30,000
35,000 40,000
45,000 50,000
44* x 71* x 6' 44* x 71* x r
50* x 79* x 7' 50* x 79* x 8'
50* x 79* x 8'
56* x 86* x 8' 56* x 86* x 9' 56* x 86' x 10'
62* x 91'x 9' 62'* 91*x 10' 62* x 91*x II'
68'x 97' x 11' 68* x 100*x 12' 68* x 106*x 12' 74* x 109*x 13' 74* x 1l3*x 14' 74* x I17'x 15' 80* x 118*x 14'
For Homes and Small Buildings
Lebanon "Oil-or-Kol" Steel Boilers
Steam, Vapor or Water Heating
344
Steam Radiation Sq. Ft
Boiler Dimensions
Boiler No. Hard Coal
Oil Fuel
Diam. x Hgt.
Sq. Ft.
Sq.Ft.
Inches .
OK-118 OK-121 OK-124
300 400
550
375 18x57 500 21x57 700 24x60
OK-127
750
925 27x63
OK-130
1000
1250
30x63
OK-133
1300
1625
33x66
OK-136
OK-139 OK-142
1650 2050 2500
2050 2550 3125
36x66
39x72 42x72
*Small-doorway sizes. **For Soft Coal the next larger size boiler
is recommended.
Boilers
Molby Boiler Company
Incorporated
41 East 42nd Street, New York
Plant: Lansdale, Pa.
Molby Magazine-Feed Downdraft-Crossdraft Boilers and Tank Heaters with Adjustable Side Grate for Burning No. 1 Buckwheat Anthracite
The Molby will heat home--large apartment house --or commercial building-- having a good chimney, just as successfully and just as easily with low priced small coal as ordinary boilers burn ing the expensive sizes.
The Molbt Boiler is self-coaling and gives a steady, even heat over long periods with
low-priced No. 1 Buckwheat Anthracite. Also burns sized free-burning bituminous with
proper chimney draft. Also coke.. Magazines need re-filling only every 12 hours. Cast iron
sectional construction throughout.
Ratings are based on the assumption that a good grade of No. 1 Buckwheat Anthracite is
to be used and that the chimney is of such area, height and tightnga as to produce the required
draft; also that the boiler,'mains and connections snail be covered with an insulating material.
These ratings, under the same conditions, may be used for sized soft coal which must be
free-burning and non-caking.
'
Should larger sizes of good grades of Anthracite
be used, a given boiler--other conditions being the
same--would burn more coal with eaual efficiency.
Thus, when such larger sizes are regularly used, the
ratings shown are increased. The boiler is built throughout in accordance with
the codes of the American Society of Mechanical Engineer$ and the American Society or Heating 1
and Ventilating Engineers.
Side grate easily adjusted for any size of coal.
A*A NUT STOVE N0.1 BUCKWHEAT ANTHRACITE-'
SIZES, CAPACITIES, DIMENSIONS AND PRICES
STEAM
STEAM AND WATER
WATER
Number
Steam Vapor
25* Series
Water Line | Returns
Steam ! Rating
Length Smoke
Pipe Outlets
1
Chimney j Flue
Return Water Rating
List Price
Size-- Inches
JMc
-C T3
X
*GS .Sa-jg; 68**
<
Number
Water Cipher
List Price
S-4026 $-5026 S-6026
S-7026 S-8026
Adageo 48 2-3 500 $ 407.00 54 41
Addieo 48 2-3 675 492.14 54 41 Admito 48 2-3 850 577.28 54 41 Adzo 48 2-3 1025 662.42 54 41 Adelo 48 2-3 1200 747.56 54 41
35'/, 10 2-3 8x12 1890 42 10 2-3 8x12 2230
481/j 10 2-3 8x12 2580
55 10 2-3 I2I2 2950 6i'/2 to 2-3 12x12 3300
W-4026
W-5026 W-6026 W-7026 W-8026
Doxno
Doseo Dcffo
Doveo L>ocko
2-3 850 $379.74 2-3 1175 461.99
2-3 1400 544.22
2-3 1700 626.46 2-3 2000 708.69
31' Series
S-4031 S-5031
S-6031 S-7031 S-8031 S-903I
S-10031
Buro
Buffo Bullo Buno
Bulbo Buovo Uungo
47* Series
54 2-4 1000 681.45 62/2 61 54 2-4 1350 837.54 62'/, 61 54 2-4 1700 960.99 62>/ 61 54 2-4 2050 1169.58 62'/ 61 54 2-4 2400 1297.29 62'/ 61 54 2-4 1150 1410.81 62l/ 61 54 2-4 3100 1524.33 621/j 61
37V, 14 2-3 8x12 3320 44 14 2-3 12x12 3820
soy, 14 2-3 12x12 4290 561/, 14 3-3 12x16 4690
63'/, 14 3-3 12x16 5100 bW2 14 3-3 16x16 5510
75/, 14 3-3 16x16 5930
W-4031 W-5031 W-6031
W-7031 W-8031
W-9031 W-I003I
Edamo 2-4 1650 658.71 Edgeo 2-4 2250 809.48 Edito 2-4. 7850 923.73 tdicto 2-4 3425 1130.21 hdeno 2-4 4000 1253.57
Educeo 2-4 4575 1363.22
Eduxo 2-4 5150 1472.87
S-5047 S-6047 S-7047
S-8047 S-9047 S-10047 S-11047
S-I2047
S-13047
Calxo
Calfo Caro Carpo Casco
Cadto
Cabo Cando
Camo
67i/, 2-5 2550 1384.82 00 67'/ 2-5 3200 1611.86 80 671/ 3-5 3850 '1838.90 80 67'/ 3-5 4500 2065.94 80 671/ 3-5 5150 2292.98 80 67'/ 3-5 5800 2520.02 80 67>/ 3-5 5450 2775.44 so 67>/ 3-5 7100 3002.48 80 67>/ 3-5 7750 3229.52 80
75'/, 50'/, 75'/ 59 75'/ 67'/2 75'/ 76
75/, M'/j 75/2 93
75/2 101V, 75'/ no
75'/2 118V,
14 14
16 16
18
18 18 18
18
2-4 12x16 5990 2-4 16x16 7150
3-4 16x16 8310 3-4 16x20 9500 3-4 16x20 10650
4-4 20x20 11840 4-4 20x20 13000
4-4 20x24 14150 4-4 20x24 15320
W-5047 W-6047
W-7047 W-8047 W-9047 W-10047
W-11047 W-12047
W-13047
Fluxo Fledo
Hipo
Flowo Flungo Flusho Flinto Flato Fleigo
2-5 4250 1338.38 2-5 5325 1557.68
3-5. 6400 1776.98
3-5 7500 1996.28 3-5 8575 2215.58 3-5 9650 2434.88 3-5 10775 2681.60 3?5- M800 2900.90
3-5 12925 3120.20
Note.--In ordering 26-in. boilers state whether you wish same fitted up with right hand or left hand end to the
chimney. Length includes Smoke Box.
'
Equipment.--Each steam boiler is equipped with a full set steam trimmings (26 in. series, 1 pressure regulator;
31 in. and 47 in. series, 2 pressure regulators.)
.
Water boilers are furnished with two water temperature regulators, except 26 in. series which are equipped
with one. A complete set of firing and cleaning tools, together with instruction books for setting up and operation,
accompany each boiler.
345
Boilers and Radiators
National Radiator Companv
General Offices: JOHNSTOWN, PA.
New York, 47 W. 42nd Street Philadelphia. 121 N. Broad Street Baltimore, 2622 Frisby Street Washington, 2205 Fifth St., N.E.
Johnstown, Pa.
New York
New Rochelle Cleveland
{Richmond, 3032 Norfolk Street Pittsburgh, 1402 Arrott Building Cleveland, 6308 Kinsman Road Cincinnati, Cor. Spring Grove and Elmira Aves. Chicago, 1038 S. Kolmar Ave.
Plants New Castle, Pa.
Trenton, N. J.
Warehouses
Baltimore Cincinnati
Washington Chicago
Richmond '.
Manufacturers
National Smokeless, Novus Upright and Sectional, Acme Round, Radium Gas and Hot Water Supply Boilers, also Aero Radiators.
Three-Column .
Four-Column
Five-Column
Seven-Column
Patents Applied For
AERO RADIATORS
The Aero Radiator was designed by Engineers with more than 30 years experience in radiator manufacture. In the Aero line is represented a real effort, to simplify the multiplicity of radiator patterns and heights.
Large buildings are now warmed with the more modern, efficient, economical and easily controlled vapor and vacuum systems. These necessitate the use of a radiator pattern with top and bottom nipple connection--the type known as a water section. The demand for the straight steam section, with bottom nipple
Legless Radiator
connection only, is consequently negligible.
The Aero Radiator is made in one type only--the top and bottom nipple connected section.
It is tapped top and bottom both ends. The top tappings are plugged and the bottom tappings bushed to size required.
All radiators are vented for both steam and hot water. One vent is plugged. Any Aero Radiator can be used for either steam, hot water or vapor.
Aero Radiators are made in four patterns--Three, Four, Five and Seven Column. A total of 18 heights comprises the entire line.
Roughing-in measurements are standard. All sections measure 2J4 in. from center to center.
The Three-Column pattern is 5)4 in. wide, the Four Column is 6%
in. wide, the Five-Column pattern 8% in. wide and the Seven-Column
pattern 12 in. With these widths and standard roughing-in measure
ments they can be used on any standard specification.
.
Window Radialor
Aero radiators are sold at the same standard sheet price as the old radiator types.
346
National Radiator Company
Boilers and Radiators
Number Sections
Number Grates
Outlets No. and Size iize Smoke 1
Pipe II
Patented
Sectional View
LIST PRICES AND RATING
Size
Steam Water Rating Rating
Grate Area
sq. ft.
Com bustion Charo-
ber Area
Height Water
Line Inches
Height Top
Outlets
Inches
Height Includ
ing Trim-
sq. ft.
""S.
Width Boiler
Inches
Width Length Includ- Includ-
TrinL Smoie-
mings Inches Inches
Size Base Inches
25- 9 25-10 25-11
25-12
2525 2825
3125 3425
4175 9 4675 10 5175 11 5675 12
31- 9
31-10 31-11
31-12 31-13
3625 4050 4475 4900
5325
5975
6675 7375 8075 8775
9
10 11 12 13
36- 9 36-10
36-11 36-12 36-13 36-14
36-15 36-16
5125 8475
5750 9500 6JV5 10,525 7000 11,550 7625 12,575
8250 13,600
8875 14,625
9500 15,650
9
10 11 12 13 14
15 16
48- 9 9200 15,100 48-10 10,325 16,950 48-11 11,450 18,800 48-12 12,575 20,650 48-13 13,700 22,500 48-14 14,625 24,350 48-15 15,950 26,200 48-16 17,075 28,050
9
10 11 12 13 14
15 16
5 6.11 6 7.27 7 8.43 8 9.59
5 8.55 6 10.24 7 11.93 6 13.62 9 15.31
5 11.50 6 13.75 7 16.00 8 18.25 9 20.50 9 20.50 10 22.75 10 22.75
5 18.23 6 21.78 7 25.33 8 28.88 9 32.43 9 32.43 10 35.98 10 35.98
3.48 3.48 3.48 3.48
5.07 5.07 5.07 5.07 5.07
6.75 6.75 6.75 6.75 6.75 9.50 9.50 12.25
10.65 10.65 10.65 10.65 10.65 14.20 14.20 17.75
49 49 49 49
52 52 52 52 52
60% 60% 60% 60% 60% 60% 60% 60%
68 68 68 68 68 68 68 68
57% 57% 57% 57%
61 61 61 61 61
70 70 70 70 70 70 70 70
80 80 80 80 80 80 80 80
SB
65% 65%
71% 71'/* 71% 71'/* 71%
783/, 783/, 783/, 783/, 783/4 783/, 783/, 783/,
89 89 89 89 89 69 69 89
36% 36% 36% 361%
50 50 50 50 50
56 56 56 56 56 56 56 56
67 67 67 67 67 67 67 67
40'/, 403/, 403/, 403/,
54 54 54 54 54
60 60 60 60 60 60 60 60
71 71 71 71 71 71 71 71
745/, 277/6* 603/8 3-4'
81'/, 277/8x675/8 3-4' 88% 27%x74s/, 3-4' 95'/, 27%. 81% 3-4'
12
12 12 12
79% 88 951% 103 1101%
333/** 65% 3-5' 333Ax 74 3-5' 333/4* 81% 3-5' 333/4* 89 3-5' 33>/,. %/, 3-5'
15
15 15 15
15
87>% 413/$* 73% 3-5' 95% 413/$* 817/g 3-5' 104%. 413/$* 90% 3-5' 1123/g 413/$, 985/$ 3-5' 12! 413/6x107 4-5' 1293% 413/6,1153/8 4-5'
1373/4 413/8*1233/4 4-5' 146% 413/8.132% 4-5'
16 16
16 16 16 16. 16
16
1091/*
119% l30i/2
141'/$ 1513/4
1623/6 173 183%
537/6* 89% 3-6' 537/8* 99% 3-6' 537/6*110% 4-6'
537/8*121% 4-6' 537/8*1313/4 5-6' 537/6*1423/6 5-6'
537/8*153 5-6' 53'/,, 163'/, 5-6'
20 20 20
20 20 20
20 20
Sylph-Oil Air Regulator
Patents Applied For
The National Up-Draft Smokeless Boiler will conform to any smoke ordinance*
Burning smoke depends upon the temperature to which the air discharged over the fire is preheated. The National-Preheating Air device heats air to in excess of 1000 deg. It is discharged into the smoke and gases as they pass over the Refractory Bridge wall into the Combustion Chamber.
The National Smokeless Boiler will clear to the No. 1 Smoke Screen in from 10 to 15 seconds and to a clear stack in less than one minute after firing a charge of green coal.
National Smokeless boilers show an average increase of 28 per cent in evaporation on the same fuel charge and consequently are very economical in operation.
The volume of preheated air necessary to burn smoke varies with the state'of com bustion. The air should be gradually decreased and cut off almost completely during a period of about 20 minutes from the time fuel is charged. Unless this is done the preheated air has a tendency to chill rather than increase the gas temperatures and the boiler efficiency and evaporation is decreased;
The Sylph-Oil Regulator operates the Preheating Air Device automatically and positively can be regulated to close the air intake in any time from one half-a minute to one hour after fuel is charged.
347
Newport Boiler Company
CHICAGO
General Offices: 529 S. Franklin Street
Boilers
SAVES HOURS OF TIME AND TONS OF COAL
Heating expenses may be reduced about 50 per cent, by burning No. 1 Buckwheat
coal which contains approximately the same heat value as the larger, more expensive sizes.
Patented Newport features make possible the use of practically all kinds of Fuel
Coal--Coke--Oil and Gas.
This modern heater, highly economical, eliminates the drudgery of frequent attention,
required in the operation of ordinary surface feed boilers, and offer as well unmatched
convenience, uniform heat for long periods without attention, consistently meeting
present day demands.
'
NEWPORT COAL BURNING BOILERS
Boiler Number Steam
S-4 S-5 S-6 S-7 S-6 S-55 S-66 S-77 S-88 S-99
Rating Square
Feet
"Maximum Direct
Radiation Load
Boiler '
Number Water
Rating Square
Feet
"Maximum
Direct Radiation
' Load
Length Overall
STEAM
594 750 907 1063 1219 1375 1668 2000 2313 2625
' 340
430 518 607 696 786
965 1143
1322 1500
W-4
W-5 W-6
W-7 W-6 W-55 W-66 W-77
W-88 W-99
WATER
1000
1250 1500 1750
2000 2282 2782
3313 3813 4313
572 . 714
857
1000 1143 1304 1590
1893 2179 1 2464
30'/.' 36>/,' 42'/.' 49* 55'/.' 44' 50'/.'
62V/ 69*
Width Overall
32' 32' 32' 32' 32' 56' 56' 56' v 56' 56'
Chimney Flue
Size Inches
8x 12 8 x 12 8x 12 12 x 12 12x 12 I2x 12 12x16 12x16 16 x 16 I6x 16
Height Feet
35 35 40 40 45 40 45 45 50 50
O-S-4 O-S-5
O-S-6 O-S-7 O-S-8
O-S-55 O-S-66
O-S-77
O-S-68 O-S-99
NEWPORT OIL BURNING BOILERS
594
750 907
1063 .1219 1375
1686 2000 2313
2625
340
430 518 607
- 696 786 965
1143 1322
1500
O-W-4 O-W-5
O-W-6 O-W-7 O-W-8
O-W-55 O-W-66 O-W-77
O-W-88 O-W-99
1000 1250 1500
1750 2000 2282
2782 3313.
3813 4313
572 714 857
1000 1143
1304 1590 1893 2179
2464
30/,' 36/j'
nw
49'
55'/,' 44'
50'/,' 56/x". 62/,'
69'
32' 32'
32' 32' 32* 56'
56'
56' 56' 56'
8x (2 8x 12
8x12 12 x 12
12 x 12 12x12 12x 16 12* 16
I6x 16 16 x 16
35
35 40 40
45 40
45 45
50 50
The "Maximum Direct Radiation Load" is the maximum actual amount of square feet of cast iron
column radiation or its equivalent that we recommend be attached to. boiler. This amount provides a
safety factor of 75 per cent, being ample for average conditions, to take care of the load imposed by mains,
risers, etc., but does not provide an allowance for the heating of water for domestic use. or any extra load
where attached radiation will condense more than 0.25 (K) pound-of steam, per. square foot per hour.
The water line on all Steam Boilers is
inches.
- '
Height over all Coal Boilers 62 inches--Oil Boilers 48& inches.
348
Boilers and Radiators
Niagara Radiator and Roiler Company
Main Offices
North Tonawanda, N. Y.
.
New York Citt--2051 Grand Central Terminal
Philadelphia--121 North Broad Street
Chicago--1111 East 83rd Street
Cleveland--2036 East 105th Street
Pittsburgh--304 Oliver Building
Niagara Smokeless Boilers
. Made in 31 sizes for Steam or Water.
1600 to 14,250 sq. ft. in Steam
2650 to 23,700 sq. ft. in Water
Niagara Column Radiation
Made in 1-2-3-4-6-Window Seat Pin and Prime Indirect patterns.
Niagara Round Boilers-
Made in 21 sizes for steam or water having TRIANGULAR or FLAT Grates.
300 to 1450 sq. ft. in steam . ` 500 to 2400 sq. ft. in water Also Hot Water Supply Boilers
349
Niagara Wall Radiation 8-7-9 sq.ft, patterns
Boilers
OiLCiTy BoilerWorks
Oil Cit^i/
New York, N. Y., 501 Fifth Ave.
' Detroit, Mich., 715 Donovan Bldg.
Philadelphia. Pa., 1043 Real Estate Trust Bldg.
San Francisco, Calif., 417 Market St.
Pittsburgh, Pa., 1116 House Bldg.
Chicago, III., 19 W. Jackson Blvd.
Atlanta, Ga.. 315 Glenn Bldg.
Los Angeles, Calif.. 1003 Union Trust Bldg.
Baltimore, Mo., Dukehart Bldg.
Winston-Salem, N. C., 236 Liberty St.
.
Indianapolis, Ind., 117 East Michigan St.
Cincinnati. O., S. W. Cor. 3rd and Walnut Sts.
Richmond, Va., American National Bank Bldg.
"Oil City" Direct Draft Boiler
"Oil City" Smokeless Boiler
"OIL CITY" low pressure boilers are
offered to the trade as the last word in "Heating Economy" comprising in one unit all the elements of a modern plant for steam or hot water heating, especially adapted for Schools, Office Buildings, Hotels, Churches, Club Houses, Hospitals or for any purpose where the service of a
universally recognized fire box boiler of high merit is desired.
All parts of the boiler are made ac cessible for cleaning by the use of man holes, handholes, and wash-out plugs.
Ratings--Ratings are very conservative, only such parts of the boiler coming in actual contact with passage of the hot gases, and lying below the zone of normal water level being considered as heating surface.
"OIL CITY" boilers are designed and constructed to meet all requirements of modem engineering as formulated by the American Society of Mechanical Engineers, the boiler laws of the various states and cities, and are backed by 35 years of suc cessful practical experience.
Description--"OIL CITY" boilers are built in smokeless and straight draft types for portable and brick settings, self con tained with all steel construction thor oughly braced, stayed, inspected, and tested for 15 lb. working pressure.
These boilers have large fire boxes thereby insuring ample combustion space in which heat-giving gases and air freely mix before entering tubes.
The arrangement of tubes in relation to shell allows free circulation of water at all times, together with large steam space, insuring dry steam and steady water level.
Equipment--Equipment with all boilers includes, in addition to complete set of shaking grates, all the necessary castings, safety valves, steam gauge, water column, etc., required for a complete installation.
Oil Fired--Where oil is used exclusively we recommend our new Series 9000 Port able Return Tubular Fire Box Oil Burning Boiler. Complete specifications and measurements shown in Circular H-18.
Every "OIL CITY" boiler bears the official stamp of the A. S. M. E. Boiler Code, indicating the pressure at which the boiler may be worked.
At a small increase in cost "OIL CITY" boilers are furnished, braced and stayed, for a safe working pressure of 100 lb. Complete specifications, measurements and weights shown in Catalog H-9.
SPECIFICATIONS AND GENERAL DIMENSIONS ON NEXT PAGE.
350
Oil City Boiler Works
Boilers
Settling Plan and Measurements "Oil City" Heating Boilers
"Oil City" Smokeless
flbtiOE/e areata
007 aoa <509 <5/0 <3// o/o 0/5 <3/4 <3/5 a/6 <3/7 a/a <3/3
07/ <377 373 <374
cmrary - hrrrae OO/LTE PEWETEE
34 Pr TOO JSX 4000 4500 57X0 5500 6000 6500 7JOO 0500 0000 COO <4000 76000 *3050 TOZZ 73700 50X7 JfiPr TOO 5X0 6600 700 OJOO 900 9900 0700 <7400 /4COO J6SX 79X0 007 7600 '9700 5X00 40000 40000
a in 40 40 40 54 54 54 60 60 e& 60 66 66 7E 7Z TO TO 34 34 Pt&fit .9-/ 0-5 //-5 0-// //-u iT-// /7-ii /J-// /5-J <6-J <5-9 <7-9 A6-7 /7// <7-0 0-0 704 Off
Profit j-r 5-9 4-7 J-5 J-5 4-7 4-7 4-6 4-4 4-9 4-9 6-0 5-0 5-9 5-0 6-< *:5 9-/ iff 0 f9 /9 /9 <9 /.9 776 77* 77* 77* 75 73 75 75 73 75 73 73
HE/GHT CPEE OO/LEE
fir 7/ ?i 7/ 76 75 76 <57 07 07 07 90 JO 96 96 97 97 05 03
r Pr&fir 70 70 TO 75 75 75 0-5 i O-J 0-5 o-</ J-// 9-5 95 9-7 9-7 04 04 PrTtfir fit /4 fit /4 fit fit /7 /7 /7 /7 /7 77 /7 /7 /7 /7 // /7
in 6 6 6 6 6 6 7 * 7 7 <3 O a O O <3 0 0
fit 4 4 4 4 4 t 5 5 5 5 6 6 6 6 6 6
fit Or* ChX C.J6 0.47 0.47 0.47
ej.46
efoe O.JO TSrJD /7.54 /7j) <7.60 <7X0 7044 3X64
in 77 77 77 74 74 74 76 76 <35 TO X 57 54 54 56 X 40 47
nr /weech/ag - 7h0 ooeees
air
-7ho oxleej
a&gut J7?xx-cr aorta
/tasvr j7?icx - n*o oolleej
eeobto ope/t eezie pcoej
* JO JO X J4 54 54 JO JO 40 40 44 46 X X 57 57 56 56
A 07 70 TO 77 77 77 74 74 76 76 TO JO 57 57 54 54 X 0
in & 70 03 JV 5/ 5/ J4 J4 56 J6 0 47 46 46 40 40 54 54 fir JO JJ 55 55 55 60 60 60 65 65 65 70 0 0 OO 30 50 OO fir 60 5 65 65 65 TO 0 TO 75 75 75 <30 <30 OO 50 03 VO W in 76 76 76 TO TO <33 57 57 57 57 55 35 57 57 40 0 45 45
"Oil City" Direct Draft Type
uupjbee or oo/lee
307 300 303 3/0 3// 3/7 9/3 3/4 3/3 3/6 3/7 3/a 3/3 970 37/ 377 373 304
cof/pc/tp - jte/eo cpppcrrr - aettee
54 Er 7500 7900 3500 4000 4500 5000 9500 6000 7000 OOOO 9500 f,COO OOOO '5000 <7X0 OOOO. esooo oca -34 Tr 400 4000 5700 6603 7900 dxx) 300 9500 0600 '5700 <500 *6700 T/sao fiOOO 0550) J7CO0 9X00 txa>
oo/lee pewetee
n
fir. 40 40 40 54 54 54 60 60 60 60 66 66 77 77 7<5 TO 04 04
eaL/e leljgth
a Profit 0-7 5-6 -/ 0-0 //-/ <7-/ !Z-5 /J-7 <4-4 <6-7 <5-9 /74 <5-// /7-6 /7/< /9-N 70-/ 77-/
700* 70 CUTLET
plooe
eetueu
C Profit 5-n 4-3 4-0 P-7 4-3 4-< 4-e 4-// 5-0 6-9 6-5 7-7 6-3 6-5 6-0 7-// 7-7 9-7 p fit /3 /5 /3 /9 <3 <5 77* 77* 77* 77* 75 75 73 75 75 75 73 75
plooe 7V aettee lute e
in 7/ 7/ 7/ 76 76 76 07 07 07 07 X X 56 X 97 37. 05 05
HE/GHT CPEE OO/LEE HE/6/fT 7957/rrr
0r
757fir 7-0 7-0 70 7-5 75 7-5 0-5 0-5 0-5 0-5 a-// a-// 5-5 9-5 3-7 3-7 0-/ EH Pt7fit fit /4 /4 /4 /4 /4 /7 /7 /7 /7 /7 /7 /7 /7 -<7 /7 /7 /7
J/ZE OUTLET 3/ZE EETUEU 5/ZE JPX3EE OUTLET
fit 6 6 6 6 6 6 7 7 7 7 o a a O a <3 0 0
0fit 4 4 4 4 4 4 5 5 5 5 6 6 6 6 6 6 6 0
fit 0,56 0.X .x 0*7 0.4T 0.4T 0.46 et.t6 Tf.46 a*6 <5,X (S.X <7,59 <7.5* 7.60 <7*0 <576* <3%64
0/79 OEEECM/YG-CME OLE.
fir 77 77 77 74 79 79 76 76 TO 70 X 57 54 54 56 56 40 47
P/<3 OECEC////YG -TM? OLEJ.
fir JO X X fit .54 34 X X 40 40 44 46 X X 57 57 .56 X
564. JT/7C/C
-CUE OLE.
fit 70 TO TO 77 77 77 79 79 76 76 70 X 57 57 54 34 X 40
P/fiJ. 5T/9CAT . TWO OLEJ. fit TO 70 TO 5/ 37 3/ 34 34 56 J6 40 47 46 46 40 40 54 54
7/e/gut or/rcr-or/E ole
Pr X X 55 55 55 60 60 .60 65 65 65 0 0 0 X X X /OO
HE/GTfT JTfiXX - TMO 0003.
Tr. 60 60 65 65 65 0 0 0 75 75 75 OO X X X <0O 0O /0
EEQP 7Z7 OPES/ EEEE POOEJ fir 76 76 76 03 03 03 57 37 57 57 35 X 57 57 40 40 45 43
351
Boilers
THE WM. H. PAGE BOILER CO.
200 Madison Avenue, NEW YORK
Boston. 123 Beverly Street Philadelphia. 1718 Sansom Street
Cleveland. Rose Building Meadville, Pa.. Factory
Makers of Boilers for m6re than Half a Century
i
Boilers
Commercial , Raring*
Sq. F t. Steam
Page Safe
R ating# 1 Sq. F t. Steam
Size o f Grate,
Inches
1'
Height Over A ll, Inches, Steam W idth Over A ll, Inches, Steam Height Over A ll, Inches, Water . W idth Over AU, Inches, W ater Total Length, Inches Water Line, Inches, Steam Outlets and Inlets, Inches I Size of Smoke 1 Pipe, Inches
. Monarch Smokeless
Monarch Water Tube
Monarch Sectional Steam and Water Boilers
ii
a
6
i *0
zG3
s":
MS
604 850 605 1075 606 1300
607 1525
650 850 1050 1250
22x20 22x263/8
22x32% 22x39'/,
3.06 4.03 5.00 5.98
60%
88
M'/i
39% 39% 39% 39%
52
52
52
52
35 35 35 35
35% 41 2-3 13 41>/, 41 2-3 13 48 41 2-3 13
54'/, 41 2-3 13
504 1600
505 2100 506 2600 507 3100
508 3600 509 4100
1200 1600 2000 2400 2800 3200
28x2434 28x33'/* 28*41%
28x49?/* 28x58% 28x663/8
4.82 6.45 8.07 9.70 11.32 12.96
73 73 73 73 73 73
45% 45% 45% 45% 45% 45%
64% 64% 64%
64% 64% 64>/2
41 41 41 41 41 41
44V, 51 2-5 15
53% 51 2-5 15
61'/, 51 2-5 15
70 51 2-5 15
783/,
51
2-5
15
863% 51 2-5 15
405 3400 406 4200 407 5000 408 5800 409 6600 410 .7400 411 8200 412 9000
2400 3000 3600 4200 4800 5400 6000 6600
40x33% 40x41%
40x49% 40x58% 40x66%
40x75 40x833/8 40*91%
9.20 11.52 13.85 16.18 18.50 20.82 23.13 25.50
81 81 81 81 81 81 81
81
59% 59%
59% 59% 59% 59% 59% 59%
72% 72% 72% 72% 72%
72% 72% 72%
55 55 55 55 55 55 55 55
52 58 2-5 21 603/, 58 2-5 21 68% 58 2-5 21 77% 58 2-5 21 85% 58 2-5 21 93'/, 58 2-5 21 102% 58 3-5 21 "0>/, 58 3-5 21
6-60 6600
4600 60*41% 17.29 82% 85% 74% 81% 643/, 60 2-6 26
7-60 8200
6000 60x49% 20.78 82% 85% 74% 81% 72% 60 2-6 26
8-60 9800
7200 60x58% 24.27 82% 85% 74% 81% 81% 60 2-6 2b
9-60 11400
8400 60*66% 27.76 82% 853/, 74% 81% 89% 60 3-6 26
10-60 13000
9600 60x66% 31.25 82% 853/S 74% 81% 97% 60 3-6 26
11-60 14600 10800 60x66% 34.74 82% 853/, 74% 81% 106% 60 3-6 26
12-60 16200 13-60 17800
12000 13200
60x75 60x75
38.22 82% 85>/, 74% 81V, "4% 60 3-6 26
41.72
82%
853/S
74% 81% 123
60 3-6 26
14-60 19400
14400
60x75
45.20 82% 853/, 74% 81% 131% 60 3-6 26
15-60 21000 15600 60x833/* 48.69 82% 853/S 741/4 81% 139% 60 3-6 26
16-60 22600 16800 60x83% 52.18 82% 85% 74% 81% 148% 60 3-6 26
17-60 24200 16000 60x83% 55.67 82% 85% 741/, 81V, 156% 60 3-6 26
18-60 25800 19200 60x9|3/4 59.16 82% 85>/, 74% 81'/," 1643/, 60 3-6 26
19-60 27400 20400 60x913/4 62.65 82% 85>/, 74*4 81% 173% 60 3-6 26
20-60 29000 21600 60x913/4 66.14 823/4 853/, 741/4 81% 181'/, 60 3-6 26
Commercial Ratings, as given, are derived from tests made in accordance with the American Society op Heating
and Ventilating Engineers* Low-Pressure Boiler Code.
.
. #Page Safe Ratings are conservatively made, derived from careful and exhaustive tests, during yean of service under
every condition--which proved their safety--and are guaranteed, based on fuel of 12,500 B.tu., with chimney flue of pro
portions to provide sufficient draft to properly burn the fuel.
" 352
POINTS Paramount In Choosing Boilers
1--Continuous Service--Any heating plant will break if carelessly operated. Broken sections in Prox Boilers can be plugged off and heat maintained, avoiding dismissal of school or closing of building.
2--Fuel Economy--Short wide firebox design, full three-layer fire travel, very low stack temperature, large self-cleaning flues, conservative ratings, ideal design for perfect combustion with soft coals.
3--Long Service--Safety--Prox Cast Sectional Boilers represent maximum ^permanence.
4-- Quick Dry-Steaming--Low water line, small waterways, quick circula tion, dry steam assured by steam separating header over Prox Boilers.
5-- Repair Economy--Remove any sec tions like tilting book from bookcase. Other boilers must be torn down and expensive covering destroyed.
6-- Installation Economy--Take flow direct from large steam separating header, saving extra cost of additional header construction necessary to get dry steam with other boilers.
PROX BOILERS--World's best for large installations in Schools, Theatres, Apartments, Churches, Hospitals, Hotels, etc.
WRITE FOR LATEST CATALOG
353
Boilers and Radiators
Pierce, Butler & Pierce Mfg. Corp.
General Sales Offices 41 EAST 42nd STREET
NEW YORK, N. Y.
For List of Factories ant} Branches, see Page 549
Cast iron water boilers 100 to 23,450 sq. ft. capacity. Cast iron steam boilers
325 to 14,200 sq. ft. capacity. Firebox heating boilers, capacity steam
radiation 2,500 to 25,000 sq. ft.; capacity water radiation
4,000 to 40,000 sq. ft. Radiators--all types
-
The Pierce-American
Boiler
A 30-year record of proved successful performance
Sizes and Dimensions
No.*
Sec tions
Length
BOILER AND HEADERS
Width Height
Height Water Line on
S. B.
No. and Size.
Outlet*
No. and
Size, Returns
Smoke Pipe DU.
Size of Flue
Chimney Height
CAPACITY SQ. FT.
Steam Water Boilers Boilers
2)4 215
4 5
47 55
4455
216 6 63 45
56'/, 40/4 2-3 2-3 % 10x10 30
600 1000
56'/* 40% 2-3 2-3 'A 10x10 30
800 1325
56'/, 40'/, 2-3 2-3
10x10 35
1000
1650
265 5 55 51 266 6 63 51 267 7 71 51 268 8 79 51
6644/$2 4477/ys,
2-3 2-4
2-3 iiy. 12x12 35 2-4 iiy. 12x16 35
1400 1750
2325 2900
641/2 64'/2
47V, 471/,
22--44
2-4 iiy. 12x16 40 2-4 iiy. 16x16 40
2100 2450
3475 4050
325 326 327
328 329
3210
5 6
7, 8 9
10
55 63
71 79 87
95
59'/, 59>/,
59'/, 591/, 591/,
59'/,
67 67 67
67 67 67
49 49 49
49 49 49
2-4 2-4 14 2-5 2-5 14 2-5 2-5 14 2-5 2-5 14 2-5 2-5 14
2-5 2-5 14
12x16 12x16 16x16 16x16
16x20
20x20
35 40 40
45 50
60
1700 2250 2800
3350 3900
4450
2825 3700
4625 5525
6450
7350
405 406 407 408 409
4010 4011
4012
5 6 7
8 9
10 11
12
55 63 71 79
87 95
103
Ilf
651/, 661/. 66$ 66$ 66$
66/2 661/2 W/j
69'/, 69'/, 69/4 69'/,
69% 69'/, 69'/,
69'/,
51 51
51 51 51
51 51
51
2-4 2-4 15% 16x16 45 2600 4300
2-5 2-5 15'/,. 16x20 45 3250 5375
2-5 2-5 15'/, 16x20 50 3900 6450
2-5 2-5 5'/, 20x20 50 4550 7500
2-5 2-5 15% 20(20 55 5200 8600
2-5 2-5
2-5 2-5
15%
15'/.
20x20 20x20
55 60
5850 9650 6500 10725
2-5 2-5 15'/. 20x24 60 7150 11800
466
467 468
469
4610 4611 4612
4613 4614
6 7 8 9
10
11
12 13 14
68
76 84 92
too
108 116
124 132
79
79 79 79 79
79 79
79 79
82 '55% 2-6 2-6 19% 24x24 65 5400 8925
82 55V, 2-6 2-6 19% 24x24 70 6500 10725
62 55% 2-6 2-6 19% 24x24 75 7600 12550
82 55/4 2-6 2-6 19% 24x28 80 8700 14350
82 553/4 2-6 2-6 19% 24x28 85 9800 16150
82 55>/, 2-6 2-6 19% 28x28 95 10900 18000
82 55% 2-6 2-6 19% 28x28 100 12000 19825
82 82
. 55'/, 55'/,
2-6 2-6
2-6 2-6
19/4 19'/.
28x28 28x32
105
no .
13100 14200
21625 23450
Steam boilers are designated by the letter *'S" before the number, as S-214, S-215, etc. Water boilers are designated by the letter "W," as W-214. W-215, etc.
All measurements are in inches, except where otherwise noted. Special sizes or location of tappings can be furnished at prices shown in discount sheet. Blank grates sections for brick lire wall to reduce size of grate will be supplied without extra charge with boiler if so ordered.
{See page 549, Valve Section)
354
Boilers
PIERCE FIREBOX BOILERS
Built by
Ames Iron Works
Division of
Pierce, Butler & Pierce Manufacturing Corporation OSWEGO, N. Y.
Series 800
: Series 900
For Description, see p. 358. .
'
For Description, see p. 359.
fi -
Series 1000 For Description, see p. 360.
355
Series 000 For Description, see p. 361.
Ames Iron Works
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358
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. :s ...
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359
Safety valves w ill be furnished to conform to the requirements of the state or m unicipality in which boiler is to be operated. *Smoke stacks and smoke connections or breechings are not furnished unless specially ordered and a t extra price. fSize and location o f a ll steam openings shown apply for 15 pounds pressure. This inform ation w ill be given for higher pressures upon request.
Ames Iron Works
360
Boilers
B O ILE R S B U IL T FOR IS POUNDS PRESSURE O N LY . . Safety valves w ill be furnished to conform to the requirements of the state or m unicipality in which boiler is to be operated. "Smoke stacks and smoke connections or- breechings are not furnished unless specially ordered and a t extra price. ' '
Ames Iron Works
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361
. B O ILE R S B U IL T FO R 15 POUNDS PRESSURE O N L Y . Safety valves w ill be furnished to conform to the requirements of the state or m unicipality in which boiler iB to be operated. 'Smoke stacks and smoke connections or breeching are not furnished unless specially ordered and a t extra price.
Boiler Number [ S-Hr. Rating Sq. F t. Steam Crate Area, 1Sq. F t. Height to Top Outlet, In. Height Water line, In. Ashpit, Inside, In .
Number Height to 1 of Outlet, Inches Nominal Di of Grate Inches SizeSmokeInches Height of W aterline Inches [Number an ISize of Out jInches Number an Size of lnle Inches
D irect Rai`
tion Boiler supply at 8* firing perio<
Boilers
Richardson & Boynton Co.
Manufacturers of
"RICHARDSON" "PERFECT" Heating and Cooking Apparatus Since 1837
.
Executive Offices:
260 Fifth Avenue, NEW YORK CITY
Chicago Philadelphia Providence
Boston Rochester Buffalo
Cleveland Albany Detroit
Minneapolis St. Louis Springfield Pittsburgh
RICHARDSON ROUND BOILERS Ratings and Dimensions
Height to Top
Outlets Direct
Boiler No.
8-Hour 8-Hour Rating Rating Sq.Ft. Sq.Ft. Steam Water
Nom. Diam. Crate
In.
Grate
Area Sq.Ft.
Outle t. In.* Height - and Water Inlets
Line No. Steam Water In. and
Rad. Boiler
will Supply
Size Sq. Ft.
1190 300 500 19 1.97 47% 45% 42% 2-2% 200
1191 350 575 19 1.97 51% 49'/, 46'/2 2-2% 235
1192 375 625 19 1.97 55% 53'/, 50'/2 2-2% 250
1221 450 750 22 2.64 53
Ml'/, 48'/. 2-2% 300
1222 500 825 22 2.64 57
M'/, 52'/, 2-2% 335
1223 550 900 22 2.64 61
38'/, 56V, 2-2'/$ 375
1251 625 1025 25 3.41 mv7 52
49'/, 2-3
410
1252 675 1100 25 3.41 58% 56
53'/, 2-3
450
1253 725 1200 25 3.41 62'/, 60
57% 2-3
460
1261 875 1350 28 4.28 55% 53'/* 51
2-3% 600
1282 950 1550 28 4.28 59% 57'/. 55
2-3% 650
1283 1025 1675 28 4.28 63% 61'/. 59
2-3% 700 *
Richardson Round Boiler
RICHARDSON SECTIONAL BOILER Ratings and Dimensions
co V . OS ^
c On
Z <9
255C 1000 1600 4.57 55 48% 27%*35% 2-3% 256C 1250 2000 5.7(1 55 48% 27%x42% 2-3%
257C 1500 2400 6.83 55 48>/, 27%x50 2-3%
258C 1700 2800 7.97 55 481/, 271/2x57'/. 2-3'/2 355C 1950 3125 7.85 63 56 39 i33% 2-4
356C 2400 3850 9.81 63 56 39 *41% 2-4
357C .2850 4575 11.75 63 56 39 x50 3-4
358G 3300 5300 13.70 63 56 39 x58'/4 3-4
359C 3750 6025 15.65 63 56 39 166% 3-4
427C 3500 5600 13.82 66 60 45 x50 7-5
423C -4050 6500 16.11 66 60 45 x58'/4 2-5 479C. 4600 7400 18.40 66 60 45 ,661/2 2-5
4210C 5150 8300 20.69 66 60 45 *74% 3-5
42IIC .5700 9200 22,98 66 60 45 x83 VS
536 6300 10000 18.94 82 70'/, 55 x55 2-6
537 /300 11600 22.68 82 70'/, 55 *65% 2-6.
538 8300 13200 26.40 82 70'/, 55 *76% 3-6
539 9300 14800 30.12 82 70'/2 55 *87% 3-6
5310 10300 16400 33.88 82
55 x98 3-6
362
Richardson End Feed Sectional Steam Boiler
Richardson & Boynton Co.
Boilers
SMOKELESS ROUND BOILERS Ratings and Dimensions Steam
a a
-O JH *o S
;= g
< Sit
ece
tS
S-432 53V7 23 2.89 9 48% 2-3 2-3 320 sqit. 700
S-532 57V4 23 2.89 9 52% 2-3 2-3 350 " 750
S-632 62
23 2.89 9 56% 2-3 2-3 380 * 800
S-462 55'/2 26 3.70 10 40'/, 2-3% 2-3% 450 " 900
S-562 59Vi 26 3.70 10 53% 2-3'/, 2-3% 500 0 1000
S-662 64
26 3.70 10 58
2-3% 2-3% 550 a 1100
S-492 60
29 4.58 10 53% 2-3% 2-3% 630 a 1250
S-592 65V* 29 4.58 10 38% 2-3% 2-3% 700 * 1350
S-692 70% 29 4.58 10 64% 2-3% 2-3% 770 " 1450
Water
W-432 45V4 23 2.89 9
W-532 50
23 2.89 9
W-632 54'/4 23 2.89 9
W-462 47'/g 26 3.70 10
W-562 51 Vs 26 3.70 10
W-662 555/a 26 3.70 10
W-492 50>/2 29 4.58 10
W-592 55% 29 4.58 to
W-692 61% 29 4.58 10
2-3 2-3 2-3
2-3% 2-3'/, 2-3% 2-3% 2-3%
2-3%
2-3 520 sq.ft. 1(50
2-3 570 " 1225
2-3 620
1300
2-3% 725 " 1500
2-3% 800 " 1650
2-3% 875 " 1800
2-3% 1025 * 2050
2-3% 1125 " 2225
2-3% 1225
2400
Richardson Round Smokeless Boiler
Direct radiation boiler will supply, is based on the use of cast-iron radiation in a 70 F. temperature and with the assumption that the Boiler and Piping system is thoroughly covered in the usual manner. For churches, garages, schools, or where pipe coils, wall or indirect radiation is used, the tax on the boiler must be figured on a basis equivalent to cast-iron radiation as above. When coils or indirect water heaters are used in connection with steam and water boilers, for heating water for domestic purposes, additional capacity must be figured at the rate of 1H square feet of direct radiation for a steam boiler; and 2lA square feet of direct radiation for a hot water boiler, for each gallon of water to be
heated per hour.
' Height of chimney for 23" series, 35 feet; 26" series, 40 feet; 29" series, Inside area of chimney flue, 23" series, 96 sq. in.; 26" series. 96 sq.
series, 144 sq. in.
RICHARDSON HOT BLAST SMOKELESS BOILERS End Feed Sectional Steam and Water
Special features of the "Richardson" Hot Blast Smokeless Boilers "C" Series.
They are made in sectional form and can be erected at any time, whether the build ing is new or old. This enables the boiler to be installed with a minimum handling expense.
The natural fire travel and draft eliminate excessive heights in chimneys.
Long smoke travel and no obstruction to the flames, aid combustion to the perfection point and utilise maximum beat from the fueL "Y" Flue Construction equalises the circulation and assures a steady water line.
. Overhanging prime heating'surfaces are at the maximum, producing 'the highest evaporative power.
During the process of the fuel-coking; gases are drawn back into a large chamber in front of the bridgewall, which has two port holes at the top center, making it impossible for gases to accumulate and explode.
The base is made in sections, permitting enlargement of a boiler if ever necessary.
Fire door: Replacing of grates through fire door big enough for man to enter (15x20 inches) means important saving in tune. The size of this door permits even distribution of fuel over the fire.
Made in sizes 1850-16,150 sq. ft. for steam Made in sizes 3000-26,600 sq. ft. for water
363
Boilers and Radiators
Richmond Radiator Company
New York
Boston
Cleveland
Chicago
Philadelphia
Harrisburg
Richmond Radiator Co.
Boilers and Radiators
Richmond Radiator Company
"Richmond" Sectional Boilers
For heavy duty with all grades of Hard or Soft Coal, Coke. Lignite. Natural Gas and Fuel Oils.
"Richmond" Model Sectional
Specially designed for efficient heat surface, cir culation. compactness and accessibility.
18", 22", 30" and 40" grates, 3 to 12 sections. Steam and Hot Water.
Richmond " De Luxe "
Mechanically far in advance of any other Round Boiler. A Code Boiler made with grates 17", 20", 23". 26", 29" in diameter. Steam and Hot Water.
" Richmond" Radiators
An efficient, compact and graceful radiator, designed to give the utmost in heating surface and effective heating. Made in 1, 2. 3. 4 and 6 columns --window indirect and wall patterns. .
Catalogs op Boilers and Radiators Upon Request
364
"Richmond" Smokeless Boilers Burn Coal Smokelessly
Meets the Requirements of the Most Rigid Smoke Ordinances. A 53-inch Boiler, 7 to 16 Sections, Steam and Hot Water.
NEW POLICY OF BOILER RATINGS
All Richmond Boiler ratings are now based upon exact boiler output, that is the exact amount of direct cast iron radiation boilers will carry. In addition to un covered piping--boiler covered. Posi tively eliminates the selection of a 700-800foot boiler when actual radiation is but 450 feet. Complete data on the entire Richmond line will be found in the catalog of new ratings. May be obtained from headquarters or any branch office.
NEW ENGINEERING DATA BOOK--FREE!
Invaluable to every Heating Engineer. Contains reprints of all Official Codes, Data on Chimneys, Boiler and Pipe Cover ings and reports of Richmond Boiler tests and ratings according to existing Codes. Records of tests on file with Heating and Piping Contractors A ssociation. A copy of this helpful book of engineering informa tion sent upon request.
365
Boilers and Radiators
The H. B. Smith Company
Works: Westfield, Mass.
Westfield, Mass.
New York, 10 East 39th Street Cleveland, 1108 Webster Avenue, S.E.
57 Main Street Boston, 640 Main Street, Cambridge Philadelphia, 49th St. and Grays Ave.
Manufacturers of Boilers and Radiators for Steam and Water Heating
i
No. 60 Smith Boiler--Front
No. 60 Smith Boiler--Back 366
V
J
A-
The H. B. Smith Company
Boilers and Radiators
SMITH SMOKELESS BOILERS Nos. 27, 36 , 42, 60
For Anthracite Coal. Oil. Gas, Coke and all Bituminous Coals. When Bituminous Coal contains over 22H% volatile Oxygen Torch should be installed.
With Oxygen Torch
No. Nominal Size of of Fire Pot. Sec- - Inches
tions
Total Length Length
Foun- Rating, Rating, datum. Feet Feet
Boiler Width Length Inches Inches
No. of Sec-
in Boiler
Nominal Size of Fire Pot,
Inches
Width Length
Total Length
Boiler Inches
Length
at Steam Water Foun Rating. Rating, dation, Feet Feet Inches
10 27
U12
27 27
13 27
14 27
15 27
11 12
36 36
t3 36
14 36
15 36
12 . 60
13 60
14 60
15 60
16 17
6600
18 60
19 60
20 60
No. 27
36 77
42 83
48 69
54
6606
19015
107
6628
74
80
86
92
2.700
3,000 3,300
3,600 3.900
4,200
4.450
4,950 5.450
5.950 6.425
6.925
No. 36
42 87 48 93 54 99
60 105
66 m
68
74 80
86
92
4300
4.800 5300 5.800 6,300
7,100 7.925 8.750
9.575 10.400
No. 60
42 110
48 116
54 122
73 79
10.800 17.800
12,000 19.800
85 13,200 21.800
6606 66
128 134
140
91 14.400 23.750 97 15.600 25,750 103 16.800 27.700
72 146 109 18,000 29.700
78 78
152 158
112115
19300 31,700 20.400 33.650
Additional Data Applying to Smokeless Boilers
Boiler No.
27 36 42 60
Width at foundation............ 35' Width ot boiler, steam......... 56' Width of boiler, water......... 59' Height ot boiler.................... 60' Height of water line............. 57'
Oval smoke pipe equivalent to 13'/," round
48/," 72' 76' 83' 59'
)V/z' round
50'
m68/,*
763/,* 60'
72'
98' 98'
6867''
29'/2* round
65
27 27
78
27 27
9 27
W
11
27 27
12 27
12 27
13 27
13 27
14 27
14 . 27
No. 27
24 47 32 1.200 1,975
30 53 38 1.500 2,475
36 42
59 65
44 50
21,.180000
2.975 3,475
48 71 . 56 2,400 3,950
54 60
77 83
6628
2,700 4.450 3.000 4.950
6606 66
89 89 95
74 3300 5.450 74 3,300 5,450 80 3.600 5,950
72 95
66 101 78 101
60 3.600 5,950
86 3.900 6.425 86. 3.900 6,425
No. 36
87
36 36
36 42
63 69
44 2.300 3.800 50 2.800 4,625
190 11 12 12
13
36 36 36 36
36 36
48 54
60
6606 66
75 81
87 93 93 99
56 3,300 5.450
6628
3,800 6,275 4300 7.100
74 4.800 7.925
74 4.800 7.925
80 5300 8.750
13 14 14
.15 15
36 36
6762
99 105
36
36. 36
78 72 84
111015 111
80 5.300 8.750
86 5.800 9.575 86 5.800 9.575 92 6300 10.400
92 6,300 10.400
No. 60
8 60 36 86 49 6.000 9.900
9 60 42 92 55 7.200 11.900
10 60 48 98 61 8,400 13.850
11 60 54 104 67 9,600 15.850
12
13 14
60 60
60
6606
72
110 111262
73 79
1102,,800000
17,800 19,800
85 13,200 21.800
15 60 78 128 91 14,400 23.750
16 60 84 134 97 15,600 25,750
17
60
78t 140
103 16,800 27,700
18
60
84f 146
109 18,000 29,700
19
20
60 60
84f 152 84f 158
115 19200 31.700
121 20,400 33.650
Note--Additional data pertaining to No. 42 boiler, furnished on application.
Supply Drum Tappings* Outside diameter............................ .... ..... 12 in. Tapped for 2-in. lock-nut nipples. Front end tapped 2 in. Rear end tapped one 4 in. and one 2 in.
Tappings on Top No. 60
Number of
4'
Size of Tappings 5' 6'
8'
Sections
Number of Tappings
8
9 - to
11 12
13 14
15 16 17
18 . 19
20
22
2 2 2 2 2 22 2 2 22 2 2
2 2 22
3 3 3 3 3
3
3
i - . , Return Drums*
Steam Boilers
.
Outside diameter.--...............................................8 in. Tapped for 2-in. lock-nut nipples. Front ends tapped...........................................2J4 in. Rear ends tapped.............................................5 in. Undersides tapped-................... -...................1H in.
Fire Tools and Steam Trimmings , Furnished
When boiler is to be used for water wanning, specify on order the size of supply and return pipe tappings. Tappings other than those listed are special. Order must specify size.
367
The H. B. Smith Company
Boilers and Radiators
Mills Water Tube Steam and Water Boilers
Sectional cast iron boilers which are moderate in first cost, low maintenance and
extremely economical in fuel. Sectional view shows large combustion chamber and
vertical waterways of small area. The latter absorb the heat quickly, circulate the
water rapidly and make dry steam. May be fired with anthracite coal, wood, coke
or fuel gas.
'
Size of Boiler
No. 24 No. 34 No. 44 No. 48
Nominal Width Fire Pot Inches
24 34 44 48
No. 44 Mills Boiler--Interior
Commercial Rating--Capacity in Sq. Ft.
' Steam
Water
700 to 2025 2000 to 5200 3600 to 9000
4800 to 12,000
1175 to 3350 3300 to 8575 5950 to 14,850
7925 to 19,600
Max. Allowable Working Pressure
Steam
Water (Open Tank)
Water
(Closed Tank)
15 lb. 15 lb.
13 ib. 15 lb.
301b. 30 Ib.
301b. 60 lb.
15 lb. 15 Ib.
15 lb. 30 lb.
H-B Steam and Water Boilers
H-B Boilers have three waterways be tween sections. They are the only boilers in which ascending and descending cur rents of water are circulated through
separate connections, giving a steadjwwater line and rapid circu lation without back pressure.
Commercial Ratings
17 Hy-Test Boiler
For Hot Water Supply A. S. M. E. Standard Maximum allowable working pressure, 120 lb. Open Tank; 80 lb. Closed Tank.
Diam.
of Fire Pot Inches
Steam
Kating Feet
Water
Rating Feet'
15 250
to to 27 1000
425
to 1650
368
The H. B. Smith Company
Boilers and Radiators
"Princess" Water Radiator
Princess Direct Radiators
For sanitary reasons, radiators with wide spacing should be demanded.
If ordinary radiators are not sanitary
enough for hospitals, they are not sani
tary for the home. To meet hospital
specifications some manufacturers make
special radiators with wide spacing and
charge an increased price.
.
Princess Radiators are the standard radiators of The H. B. Smith Co. and are sold at regular list prices.
Princess Wall Radiators
Suited for all places where direct radiators or pipe coils cannot be used. Espe cially'desirable in locations where floor space is valuable and where wall, column or ceiling space is more available. They possess extreme flexibility of size and arrange ment. Made in two heights, 15 and 22 in. Can be furnished with heating surfaces from 5 sq. ft. up, in multiples of 1x/i sq. ft. Corresponding lengths in 22 in. radiator are from 9 in. up, in multiples of 4 in. (1 in. allowed in over all length for plugs and bushings). In the 15 in. radiator, corresponding lengths are from 13 in. up, in multiples of 6 in. By combinations of the two heights, these radiators can be arranged in tiers, either for horizontal runs or for column work. Hung horizontally, they make excellent ceiling radiators.
mm/ s y
" Princess " Wall Radiator
369
"Princess" Steam Radiator
Boilers
Spencer Heater Company
Williamsport, Pa.
NEW YORK BOSTON PHILADELPHIA BALTIMORE BUFFALO ROCHESTER
DETROIT
SYRACUSE
ALBANY
HARRISBURG
SCRANTON
Builders of Spencer Heaters
SPENCER HEATERS
Give uniform heat over long periods and use small size hard coal with least attention to the fire.
The magazine-feed feature is built into the heater and requires no adjust ment. The magazine holds a supply of coal sufficient for 8 to 12 hours in severe weather or for a proportionately longer period in milder weather.
Spencer Heaters are economical and efficient. Due to the magazine-feed feature of the Spencer Heater it is impracticable to obtain a firing period of less than 8 hours. Therefore ratings of Spencer Heaters are based upon an evaporation of 8 lbs. of water per lb. of coal burned, the rated evaporation having been obtained in actual test using fresh mined No. 1 Buckwheat coal as fuel.
Spencer Heater Company
SPENCER HEATERS are adaptable for residences, apartment houses, churches, schools, public and commercial buildings, theatres, green houses, garages and all other types of buildings heated by low pressure steam, vapor, or hot water.
For over 25 years SPENCER HEATERS have been tried and tested under the most severe climatic conditions. There are thousands of successful installations throughout the entire country.
' Write for illustrated catalog containing complete information.
Boilers
60 Series. Spencer Tubular Healer
100 Series. Spencer Tubular Heater
SPENCER TUBULAR STEAM HEATERS
Heater Number
Rating Sq. Ft. Radia
tion
Fire . Surface Sq. Ft.
Heating Surface Sq. Ft.
Tapping Flow
Tapping Return
Overall Length
Ins.
Overall Width
Ins.
Water
Line Ins.
Draft to Develop Rating
Ins. HgO
Size
Chimney Flue
15 17 19 20 21
- 3-45 S 3-50 3-55 2 3-60 ^ 3-70
3-80 .8 3-90 3 3-105
3-120 8 3-140 " 3-160
2,000 2,500 3,000 3,500 4,000
4.500 5,000 5,500 6,000 7,000
8,000 9,000 10,500 12,000 14,000 16,000
>2.00 13.50 15.00 16.50 18.00
18.05 20.24 22.56 24.83 27.00
30.35 34.70 39.05 43.40 47.75 52.10
282 309 337 365 393
389 429 468 506 547
560 621 683 745 807 869
2-4' 2-4' 2-4' 2-4' 2-4'
2-5' 2-5' 2-5' 2-5' 2-5'
1-8' 1-8' 1-8' 1-8' 1-8' 1-8'
2-2%' 2-5A' 2-2%' 2-2/,' 2-2%'
2-2*4' 2-2%' 2-2*4' 2-2*4' 2-2%'
2-2'/,' 2-2*4' 2-2*4' 2-2/2' 2-2*4' 2-2/2'
721/2 781/. 84%
99<0/%A
99/2 105% 112 1181/4 124/2
98 104/4
110/2 1165/4 123 129/4
621/, 621/ 621/2 62>/i 62'/2
81/4 81/. 8I/4 8I/4 81/.
116/, 116/, 116% 116/, 116% 116'/,
56 56 56v 56 56
59 59 59 59 59
66 66 66 66 66 66
.23 16'xl6'x50' .24 16'xl6'x55' .25 16'xl6'x60' .26 16"xl6'x65' .27 16'x16'x65'
.24 18'x!8'x50' .25 18'xl8'x55' .26 I8'xl8'x60' .27 18'xl8'x65' .28 18'x18'x70'
.27 20'x20'x65' .28 20'x20'x65' .29 22'x22'x65' .30 24'x24'x70/ .32 24'x24'x70/ .34 24'x24'x70/
Heaters No.- 3-45 to 3-160 are furnished with steel jackets and 1)4 in. Rockwool asbestos covering, also pipe header.
Heaters No. 15-21 are furnished with steel jackets only. Chimney Flue sizes are based on a maximum Flue Temperature at Boiler Smoke outlet of 500 deg. fahr;
370
SPENCER SECTIONAL STEAM HEATERS
Heater Number
Rating So. Ft.
Radiation
Fire Surface Sq. Ft.
Tapping Tapping
Flow
Return
Overall Overall Length Width
Ins. ' Ins.
Water
Line Ins.
Draft to
Develop
Rating Ins. H2O
Size Chimney
Flue
1-5-S 1-6-S 1-7-S 1-8-S l-*-S
2-6-S 2-7-S 2-8-S 2-9-S 2-IO-S 2-ll-S
600 750 900 1,050 > 1,200
1,300 1,600 2,000 2,400 2,800 3,200
2.26 2.82 3.38 3.95 4.51
5.64 6.77 7.90 9.03 10.16 11.28
1-4' 1-4' 1-4' 1-4' 1-4'
2-4' 2-4' 2-4' 2-4' 2-4' 2-4'
2-4' 2-4' 2-4' 2-4' 2-4'
2-4' 2-4' . 2-4' 2-4' 2-4' 2-4'
48>/fl 54/, 6oy, 66y, 73/,
685/e 74% 81*4 87/, ' 935/g 99/,
37% 377/8 37/, 377/8 37%
57% 57/, 57% 57/, 573/8 57/,
50'
0.12
10'xl0'x30'
50' 0.13 10'x10'x35'
50'
0.14
IO'xIO'xSS'
50'
0.15
I2'x12'x35'
50*
0.16
!2'x12'x35'
50*
0.17
10'xl0'x35/
50" 0.18 I2'xl2'x35'
50' 0.19 I2'xl2'x35'
50'
0.20
I2'xl2'x35'
50'
0.21
irxl2'x40'
50*
0.21
12'xl2'x40/
SPENCER SECTIONAL WATER HEATERS
1-5-W 1-6-W 1-7-W 1-8-W 1-9-W
2-6-W 2-7-W 2-8-W 2-9-W 2-10-W 2-11-W
1,000 1,250 1,500 1,750 2,000
2,100 2,600 3,200 3,800 4,500 5.100
2.26 2.82 3.38 3.95 4.51
5.64 6.77 7.90 9.03 10.16 11.28
2-4' 2-4' 2-4' 2-4' 2-4'
2-4' 2-4' 2-4' 2-4' 2-4' 2-4*
2-4' 2-4' 2-4' 2-4' 2-4'
2-4' 2-4' 2-4' 2-4' 2-4' 2-4'
481/, 543% 60>/, 66/, 73/,
683/, 74% 81*/* 873/, 93*/g 99'/,
37% 37% 37% 37% 37/,
573/, 573/, 573/8 573/, 573/, 573/,,
0.12 0.13 0.14 0.15 0.16
0.17 0.18 0.19 0.20 0.21 0.21
10'x10'x30' I0'xl0'x35r 10**10*x35' 12'x12'x35' 12'xl2'x35'
1O'xI0'x35' 12'xl2'x35' 12'xl2'x35' 12'x12'x35' 12'x12'x40' 12'x12'x40'
371
Boilers
New York Chicago
The Thatcher Company
Boilers--Furnaces--Ranges
' Since 1850
General Offices
Thatcher Building 39-41 St. Francis Street
Newark, N. J.
Telephone Mulberry 4480
Agencies in all Principal Cities
Thatcher Round Boiler
THATCHER ROUND BOILER
No.
Rating
Sq. Ft. Steam
No.
Rating Sq.Ft. Water
Actual Diam. Crate
Inches
Crate Area
Sq. Ft.
Height to Top Outlet
Steam Water
Height Flow
to and Water Return Line ^nchef* Inches
19-0-S 300 19-OW 500 19 2.04 465/4' 42'/,' 40
19-l-S 350 I9-I-W 575 19 2.04 51'/.' 47-' 44'/,
19-2-S 400 19-2-W 650 19 2.04 55'/,' 51'/,' 49
22-0-S 450 22-OW 750 22 2.64 49>/,' 44'/," 42V,
22-l-S 525 22-1-W 875 22 2.64 54)/," 49)/,' 47
22-2-S 575 22-2-W 950 22 2.64 59'
54" 51%
25-OS 600 25-OW 1000 25 3.41 50'/.' 44'/," 42%
2Sil-S 675 25-l-W 1150 25 3.4! 55'/.' 49Vf 47%
25-2-S 750 25-2-W 1225 25 3.41 toy*1 54'fc 52V,
28-OS 800 ZOOW 1325 28 4.28 51'/,'. 45'/,' 43V.
. 28-1-S 900 28-l-W 1500 28 4.28 56'/,' 50'/,' 48V,
28-2-S 1000 28-2-W 1650 28 4.28 61'/." 55>/." 54
2-3 2-3 2-3
2-3 2-3 2-3 2-4
2-4 2-4 2-4
2-4 2-4
A round steam or hot water boiler. Especially designed to secure the greatest amount of heating surface by thin waterways, heavy corru gations. arms extending in to the fire-pot. and staggered passageways in
the wheel sections.
THATCHER PROGRESS WITH LOW WATER LINE
The Thatcher Progress has such an unusually low water line that it can be used in the very lowest cellars without need of a boiler pit. The fact that either half of a twin boiler may be used alone is another big advantage.
' The scientific construc tion embodies the triple fire travel principle which forces the smoke and hot gases to go three times the length of the boiler before going up the Sue, thus obtaining all their heat units.
Furnished to care for any sized buildings.. and adopted for coal or oil burning, the Progress has proven of value to all heating men.
372
Boilers
The Titusville Iron Works Company
Titusville, Pennsylvania
Manufacturers of Fire Tube Steel Boilers for Power and Heating; Fronts, Grates, Castings, Smoke Stacks, Tanks and Oil Well Boilers; Steam,
Gas, Oil and Gasoline Engines; Pumping Powers and Oil Well Machinery
New York Office........................ 152 West 42nd St. Chicago Office......................... 53 W. Jackson Blvd. Buffalo Office............821-23 Marine Trust Bldg.
Detroit Office............. 833 Washington Blvd. Bldg. Pittsburgh Office...................Farmers Bank Bldg. Washington Office................ 732 Woodward Bldg.
The Organization and Facilities
We manufacture a com
plete line of fire tube steam
boilers to meet all general
heating and power require
ments. We also make a
specialty of boilers built to
architects' and engineers'
specifications.
Our shop is one of the
largest and best equipped
boiler manufacturing plants
in the country. It is provided
with the latest improved
machinery including hydrau
lic and pneumatic riveting
machines, as well as hydraulic
flanging equipment. Engi
neering skill, careful work manship and the best of materials are combined to make
Titusville Open Bottom Locomotive Portable Boiler with Water Front
Titusville Boilers better made boilers for every purpose.
All boilers are made in strict ac
cordance with the latest boiler code of
the American Society of Mechanical
Engineers and can be made, if desired,
to conform to local requirements.
A large supply of material for all
Tico Return Tubular Fire Box Boiler
rza
types of boilers is constantly carried and an adequate stock of completed Ticos and Acme Firebox Boilers is always ready for immediate ship ment.
Thorough inspectionsand tests are constantly made during the construe-
Titusville Perfection Boiler--Built in Sizes 25 H. P. to 200 H. P.from i5lbs.to 150lbs Working Pressure
Titusville Jacketed Tubeless
tion and all workmanship and ma- --fa Heating
terial is guaranteed first class in
every respect. . .
.
In addition to the line of Titus
ville Boilers illustrated herewith
D~omestic H-ot
Water by Direct
Circulation
we manufac
ture pneu
matic' and
storage tanks
of every de
script ion.
D e s c r i p-
tive bulletins
will be sent
Titusville Standard Tubular Boiler and Setting
on request.
Acme Smokeless Boiler--Brick Set Type for Steam and Hot Water Heating
373
Boilers and Radiators
UnitedjStates J^adiatoii (Corporation
GENERAL OFFICES: DETROIT, MICHIGAN Manufacturers of Capitol: Boilers and United States Radiators
Boston, Mass.
Portland, Me.
Springfield, Mass.
Providence. R. I.
New Haven, Conn. Troy, N. Y.
New York, N. Y. Brooklyn. N. Y.
Branch and Sales Offices
Harrison, N. J.
Cincinnati, Ohio
Philadelphia. Pa.
Detroit, Mich.
Baltimore, Md.
Chicago. III.
Buffalo, N. Y.
Milwaukee, Wis.
Rochester, N. Y.
Indianapolis, Ind.
Pittsburgh, Pa.
Louisville. Ky.
Cleveland, Ohio
St. Paul, Minn.
Columbus, Ohio
Kansas City, Mo.
Birmingham, Ala.
St. Louis, Mo. Des Moines, Iowa Omaha. Neb. Denver. Colo. Portland, Ore. Seattle, Wash. San Francisco, Calif.
Assembling Plants located at points indicated by asterisk
Manufacturing Plants Located in Following Cities Corry, Pa.; Detroit, Mich.; Dunkirk, N. Y.; Edwardsville, III.; Geneva, N. Y.; West Newton, Pa.
GUARANTEED HEATING
The problem of boiler ratings has been an acute and perplexing one. Some manu facturers rate their boilers conservatively. Others make extravagant claims. No two determine ratings on the same basis.
Associations of heating engineers and contractors have tried to protect themselves. They have fixed certain standards by which published ratings should be judged. But we find the standards in one city conflicting with those of another.
Boiler ratings consequently have come to mean little. They cannot be used for accurate comparison between different makes of boilers. They are an uncertain measure of the proper size of boiler required for a certain building.
The United States Radiator Corporation has now put an end to all the confusion.
In choosing the correct size of boiler for any building there is one, and only one, consideration: will it properly heat the required number of square feet of radiation?
The net cast iron radiating surface that each type and size of Capitol Boiler will heat adequately has been definitely determined and is officially published herewith.
And we have gone still farther--Capitol capacities are guaranteed in writing. Only the advanced'design, the dependability and mechanical accuracy of Capitol Boilers could make possible such a positive assurance of heating capacity.
When the needed radiating surface is known and contributing factors checked, the selection of the proper Capitol Boiler becomes simple, sure and safe.
GUARANTEE
The United States Radiator Corporation will give with each Capitol Boiler sold, an absolute guarantee in writing that it will properly heat its full published amount of direct cast iron radiation provided only that the boiler is connected to a correctly installed system and that the recognized standard requirements listed herein are followed. Should any Capitol Boiler not meet these conditions, the additional capacity necessary will be supplied without charge by the United States Radiator Corporation.
STANDARD REQUIREMENTS
A guarantee of size of boiler for specified amount of direct cast iron radiation must be based upon certain standard requirements.
Direct Cast Iron Radiation: It is assumed that direct cast iron radiation will emit 240 B.t.u. per hour for steam, and 150 B.t.u. per hour for water, therefore, all radiation must be reduced to this heat emission basis.
The amount of radiation required on this basis shall be computed as outlined in our catalogue, or from methods adopted by either the Heating and Piping Contractors' National A ssociationf or the American Society of Heating and Ventilating Engineers.
Corrections: Under ordinary conditions approximate corrections will reduce the following loads to their equivalent of direct cast iron radiation:
Direct-indirect, multiply by.......................................... 1.25 Indirect, multiply by....................................................... 1.50
374
United States Radiator Corporation
Boilers and Radiators
Blast Coils: Determine condensation in pounds of steam per hour and mul tiply by 4.
Heat Value of Coal in B.t.u. per Lb.
Factor
Heat Value of Coal in
B.t.u. per Lb.
Factor
Heat Value of Coal in
B.t.u. per Lb.
Factor
Domestic Hot Water Supply: Storage tank ca pacity in gallons--for steam multiply by 2; for water multiply by 3.2
Allowances: The boiler
13,000 12,500
12,000 11,500 11,000
1.00 1.07
1.14
1.21 1.29
10,500
10,000 9,500 9,000 8,500
1.37 1.46
1.56 1.67 1.79
8,000 7.500 7,000 6,500
6,000
1.92 2.06
2.21 2.36 2.53
size guaranteed for direct
cast iron radiation includes allowances for heat loss of piping system and peak
load. Where the actual
AMOUNT OF DIRECT CAST IRON RADIATION EACH CAPITOL BOILER IS GUARANTEED TO CARRY
Boiler Size Direct Cast Iron Radiation Boiler Size Direct Cast Iron Radiation
No. Load. Sq. Ft.
No. : Load, Sq. Ft.
surface in square feet of the piping system exceeds 25
Steam | Water
Steam | Water
per cent of the direct cast
Capitol Boilers--Square Type
iron radiation for steam, or 35 per cent for water, addi tional allowances shall be made for the extra surface.
Draft: The boiler shall be attached to a chimney providing sufficient draft to
184 200
185 . 300 186 400 187 500 204 350 205 500 206 625
330 495 660
825 580 825 1030
238 239 240 4106
4107 4108 4109
2100
2400 2500
2000 2500 3000 3500
3465 3960 4125 3300
. 4125 4950 5775
consume with proper com
207
750
1240 -
4110
4000
6600
bustion the required amount
255
750 1240
4111 4500
7425
of fuel per hour.
256
925
1525
WN276
3700
6105
Fuel: The size of boiler
257
1125
1855
WN277
4300
7095
recommended is based upon
258
1300
2145
WN278
4900
8085
the use of a free-burning
C276
800
1320
WN279
5500
9075
coal not smaller than nut
G277
980
1620
WN280
6100
10065
size and having a heat value
G278
1160
1920
WN28I
6700
11055
of at least 13,000 B.t.u.
G279
1350
2220
WN282
7300
12045
When the coal to be used
235
1200
1980
WN283
7900
13035
has a heat value less than
236
1500
2475
WN284
8500
14025
13.000 B.t.u.. the direct 237 1800 2970
cast iron radiation shall be
Capitol Boilers--Smokeless Type
multiplied by the factor corresponding to heat value
of the coal.
627 727 827
1000 1225 1450
1650 2020 2390
1140 4500 7425 1240 4900 8085 1340 5400 8910
Capitol Dependable
927 1027
1675 1900
2760 3135
Smokeless Boilers
1127 2125 3505
750 4700 850 5350
950 - 5850
7755 8825 9655
Smokeless combustion of bituminous coal at the lowest cost is now assured with a new degree of certainty by Capitol Smokeless Boilers.
1227 740 840
940 1040
2350 2500 3000
3500 4050
3875 4125 4950
5775 6680
1050
6500
10725
1150
7000
11550
1250
7650
12620
1350
8150
13450
'
"Smokeless" simply means
._
complete combustion. And all of the carbon which forms stand second to no other boiler. '
smoke cannot be burned without the correct amount of air,
Capitol assembly, testing, and marking insure correct
oxygen.
' installation. No more skill or attention is necessary to
The auxiliary inlets that supply air for completing com stoke them for the smokeless, low-cost consumption of all
bustion in Capitol Smokeless Boilers
bituminous coals including lignite
are not dependent upon the skill,
'
than is required to fire ordinary
guesswork or memory of the fireman.
anthracite-burning boilers. The
Their size for each boiler rating is
definitely determined in the Capitol Testing Laboratory and permanently fixed at the factory. They need no
adjusting. The intensity of the fire itself governs the amount of air drawn in. To further assure ac curacy, every Capitol auxiliary inlet is always an integral part of a single
boiler section and is never placed between two sections where faulty assembly will cause a variance.
This mechanical precision of com bustion which eaves fuel and minimizes smokeless uncertainty is typical of every detail in the pro
gressive design and careful construc tion of Capitol Smokeless Boilers.
simple coking method of firing is all
that is needed (pushing a portion of
the incandescent coals back and
putting the green fuel in front).
The main air supply is admitted
under the grates and through the
fuel bed. After passing through four
inches of live coals the oxygen in the
air becomes exhausted. Additional
air is taken from the ashpit, and
drawn up through carefully propor
tioned and permanently fixed pas
sages in the front'of the boiler which
open at a point fust above the
fuel bed.
.
As the heated air and volatile
gases, distilled from the fuel, rush
toward the back they,_are deflected
downward by a Curtain section.
Capitol Smokeless Boilers--50" Series
No. 1160 Capitol Sraokdets Boiler
Then, as they pass under, they are again charged with preheated air
from another inlet in the Curtain.
For economy of fuel, ease of opera
~ _ In boilers of eleven sections or larger,
tion anddependable beat in buildings requiring 4700 to 8150 a bridgewall (which is designed for a fire-brick lining)
square feet with steam heat or. 7755 to 13,450 square feet retards their progress and in smaller sizes they meet the
with hot water, Capitol Series 50-inch Smokeless Boilers back wall. The fresh oxygen and heated volatile gases are
375
United States Radiator Corporation
Boilers and Radiators
forced to thoroughly mix and1-complete combustion is
secured.
''
Twice more, three times in all, the gases are forced to
travel through dues the full length of the boiler in constant
contact with the largest possible heating surface, giving
up to the water the maximum number of neat units Before
passing out of the boiler.
_
-
When the fire is banked at night, ti(e deep fuel bed slowly
cokes the coal forming an incandescent bed that ignites
RADIATOR LOADS AND DIMENSIONS
Boiler No. Height of Water Line, Inches Grate Area Sq. Ft. Coal Ca pacity, Cu. Ft. Outlets and Inlets
Direct Cast Iron Radiator
Loads, Sq. Ft.
Steam Water
750
850
950 1050
1150 1250
1350
4700
5350 5850 6500
7000 7650
8150
7755
8825 9655 10725 11550
12620 13450
66
66 66 66
66 66
66
Min. Chimney Sizes
mM " .
-- V
x
18.29 29.67 VS' 55 24x24 21.33 34.68 4-5' 60 24x24 21.33 34.68 4-5' 65 24x28 24.37 39.69 5-5' 70 24x28 24.37 39.69 6-5' 80 28x28 2V.41 44.71 6-5' 90 28x32 27.41 44.71 6-5' 95 32x32
*See Guaranteed Heating.
Height including trimmings 92 indies; width 82 inches
Specify if back or top outlet smoke hood is required.
the fresh charge in the morning and enables the boiler to
reach its full capacity, easily and quickly.
The efficiency of the SO-inch series of Capitol Smokeless
Boilers is shown strikingly by the typical performance curve
below. The chart is based on many individual tests and
the ratings are fixed conservatively. Notice the high volatile
coal used for these tests.
*
PERFORMANCE CURVE No. I ISO CAPITOL BOILER
Capitol Smokeless Boilers--40" Series
The Capitol Testing Laboratory has gone even farther
than designing the most efficient smokeless boilers known.
The 40-inch series has a 49-inch water line. No lower
water line is necessary for any room with a ceiling high
enough to allow men to work.
Not only fuel is saved; building costs are cut. No pit
is needed. Construction savings done, particularly where
water in the basement must be guarded against and where
foundations must be cut in rock, frequently pay for the
entire heating plant. For large installations in such locations
a tandem of 40-inch Capitol Boilers is often used in pref
erence to a single boiler of larger sice.
Important as this exclusive advantage is, however, it
is secondary to the remarkable economy that results from
the efficient operation of the Capitol 40-inch series.
' With no pit required and no base section on/this boiler,
installation is simplified. Any bituminous coal or lignite
may. be used successfully; burned economically and-amoke-
lessly by any ordinary fireman. ` '.
Auxiliary air is admitted just above the fuel bed through
passageways cast across the entire width' of the front
boiler section. The sise of the air. passages are correctly
proportioned by the Capitol. Testing Laboratory and need
ho adjusting. The greater portion of the air is taken from
the ashpit The remainder, enters the passageways through
openings in the clinker door. The amount of dr drawn
No. 1140 Capitol Smokeless Boiler
in is automatically regulated to the rate of combustion in the exact amounts required.
This pre-heated air with its original oxygen sweeps across the fuel bed until it reaches a waUr-containing Curtain cast in a section near the back, which forces it to mingle
with the gases as they pass beneath it. Then they hit the lower, solid portion of a water-filled
bridgewall (which requires no fire-brick), mix completely.
RADIATOR LOADS AND DIMENSIONS
Boiler No. : Height of Water Line. Inches 1Crate Area
Sq. F t
| Outlets Height Feet Dimen sions Inches
Direct Cast Iron Radiator Loads. Sq. Ft.
Steam Water
740 2500 4125 49 840 3000 4950 49 940 3500 5775 49 1040 4050 6680 49 1140 4500 7425 49 1240 4900 8085 49 1340 5400 6910 49
Min. Chim ney Sizes 3
o*
S3-ai
8.15 10.40 2-5' 50 I8x 18 10.31 13.30 2-5* 55 18x20 10.31 13.30 2-5* 60 20x20 12.47 16.30 3-5' 65 20x24 14.63 19.25 3-5' 70 24x24 14.63 19.25 V5- 70 24x28 16.79 22.20 V5' 75 24x28
See Guaranteed Heating. Height including trimmings 71 inches; width 75 inches. Equipped with combination top and back outlet smoke-
hood.
and every smoke-producing particle is turned into heat
before the gases pass through two openings in the upper
portion of the bridgewall Back to the front of the boiler they must go, through
two bottom flues and then return through two top flues, heating water every inch of the way, before they pass out of the boiler.
Without the foregoing facts the performance chart shown below might be bard to believe. Any fair test will
substantiate this curve of efficiency that has no equal in
the smokeless boiler field.
PERFORMANCE CURVE No. 1140 CAPITOL BOILER
United States Radiator Corporation
Boilers and Radiators
Capitol Smokeless Boilers--27" Series
Smokeless boilers are as desirable for large residences and small apartments as they are for largo1 commercial buildings, since smoke is a particular nuisance around homes. In addition, smokeless operation means greatest fuel economy in small installations as well as large. .
To meet this large and growing demand; the Capitol 27-inch series Smokeless Boiler has been designed.
Capitol ease of operation and mechanical certainty of proper auxiliary air supply, important in the larger sixes, become a necessity in a small installation which has not an attendant who devotes as much time to its care.
Any fireman can shovel soft coal into .a 27-inch scries Boiler and operate it smokelessly. No special skill or atten tion is required.
Auxiliary air is admitted through fixed openings in the fire door which never need adjusting. Together with the volatile gases it sweeps toward the back. They meet an inverted bridgewall or curtain. Are deflected downward. As they pass under, they receive an additional supply of oxygen from a slot in the curtain. Then, hitting the rear wall, the oxygen mixes thoroughly with the gases and com bustion is completed in the back of the fire box.
All the smoke is burned before the gases enter the flues. Twice more they travel the full length of the boiler, getting the utmost heating value out of every pound of coal
Boiler No. Height of Water Line, Inches Grate Area i Sq. Ft. Coal Ca pacity, Cu. Ft. Height Feet Dimen sions Inches
RADIATOR LOADS AND DIMENSIONS
Direct Cast
Iron Radiator Loads, Sq. Ft.
Min.Chim ney Sizes
Steam Water
3 o
627 727
827 927 1027 1127
1227
1000 1225
1450 1675 1900 2125
2350
1650 45'/, 5.32 7.93 2-4' 40 12x12 2020 45'X 6.55 9.75 2-4' 40 12 x 12 2390 45'4 7.78 11.37 3-4' 45 12x12 2760 45'h 9.01 13.09 3-4' 45 12x16 3135 45'/, 10.24 14.81 3-4' 45 12 x 16 3505 45'/? 11.47 16.53 3-4' 50 12x16
3875 4% 12.70 18.25 4-4' 50 12 x 16
See Guaranteed Heating. Height including trimmings 68% 1-: width 50% in. Specify if back or top outlet smoke hood is required.
Banking the fire is as simple as stoking it When the main drafts are closed, the green coal cokes slowly in the deep fire box. An incandescent bed is formed that quickly ignites the fresh fuel shoveled in the next morning and swiftly floods the house or apartment with grateful warmth.
Every detail in the Capitol 27-inch series Smokeless Boiler is likewise designed for easy and reliable operation. Even the flue doors are extra large, a convenience in keeping the flues clean, although Capitol smokeless combustion minimises the soot, the heat losses it causes, and the task of cleaning it out.
The high heating efficiency of Capitol 27-inch series Smokeless Boilers over a remarkably wide range of operating capacities, is clearly shown in the authoritative performance curve given below.
PERFORMANCE CURVE No. 1127 CAPITOL BOILER
No. 827 Capitol Smokeless Boiler
CAPITOL FIVE COLUMN RADIATORS
Surface
Hj 37'
32'
26' 23'
20*
c-fj Height Height Height Height Height
5 sq. ft. 4.3 sq. ft.
2.9 sq.ft, 2.5 sq.ft,
per Sec. per Sec. per Sec. per Sec. per Sec.
25
3 7'/, 4 10
5 l2'/2 6 15
ft7 17V, 20 9 22V2 10 75 11 271/2 17 30 13 32t/2 14 35
15 57V, 16 40
17 421/j 18 45 19 47>/2
20 50 21 52V2 72 55 23 57V, 24 60 25 62>/2
10 15 20 25
30 35 40 45
50 55 60 65
70 75 80 85 90 95
100 105 110 its
120 125
8.6
12.9 17.2 21.5 25.8
30.1 34.4 38.7 43.0
47.3 51.6 55.9
60.2
64.5 68.8 73.1 77.4 81.7
86.0 90.3 94.6 98.9 103.2 107.5
6.6
10.2 13.6 17.0 20.4 23.8
27.2 30.6 34.0 37.4
40.8 44.2 47.6
51.0 54.4
57.8 61.2 64.6
68.0 71.4
74.8 78.2
81.6 85.0
5.8 8.7
11.6 14.5
17.4 20.3 23.2 26.1
29.0 31.9
34.8 37.7 40.6
43.5 46.4 49.3 52.2
55.1 58.0 60.9 63.8 66.7 69.6
72.5
5.0 7.5 10.0 . 12.5 15.0
17.5 20.0 22.5 25.0
27.5 30.0
32.5 35.0 37.5 40.0
42.5 45.0 47.5 50.0
52.5 55.0
57.5 60.0 62.5
Allow % inch, ^ each bushing in estima ting length ofradiators.
Each section is 8% inches wide. Width of legs, 8% inches.
. Above Radiators tapped 1% inches at top and bottom.
Distance from floor to center of lower tap ping, 4% inches.
Distance from floor to center of upper tap ping: .
37' Height ,, 35%'
32' Height.__30%'
26' Height..... 24%' 23' Height__ 21%' 20* Height__ 18%'
377
Boilers
Universal Smokeless Boiler Company
100% WATER TUBE, SELF-CLEANING BOILERS
Factory and Main Office
-
- RAVENNA, OHIO
Steam Boiler Number Steam Rating Water Boiler Number j Water Rating Grate Area Square Feet
Grate Length Inches No. Sections Approximate Boiler Length , Inches Height Chim ney Sea Level-- Square Feet ,
Guarantee On installations under 5000 ft steam, we guarantee our boilers to provide sufficient steam to take care of 50 per cent of their rated capacity shown below. On installations over 5000 ft. steam 60 per cent of the rated capacity. This guarantee is based on using bituminous highjvolatile coal similar to " Pittsburgh Vein" nin-of-mine. Four-hour firing period. Our SMOKELESS BOILERS comply with the law and are guaranteed to pass the smoke ordinance of all cities, using bituminous coaL The smokeless feature is fool-proof. Expert or careful firing not necessary.
Double Grate Down-drajt "Smokeless"(Patented)
CAST IRON SECTIONAL BOILERS
100 Per Cent Water Tube Construction
36' SERIES--DOUBLE-GRATE, DOWN-DRAFT. "SMOKELESS"
Water-line 48 in. if base of boiler is set in a pit 13 in. deep. Width overall 49 in. Height overall 73 in. Returns 4-236 in.
S-32 S-42
S-43 S-53 S-54 S-64
S-65 S-74
S-75 S-84 S-85
S-95 S-96 S-97 S-106
S-107 S-108
S-117 S-118 S-119
S-1110
3800 4500 5200
5700 6400
7100 7800
8150 8500 8850 9200 9750
10150 10500 11000 11250
12100 12250 12650 13000
15000
W-32 W-42 W-43 W-53 W-54
W-64 W-65 W-74
W-75 W-84 W-85
W-95 W-96
W-97 W-106 W-107
W-108 W-117 W-II8 W-II9
W-1110
6080 7200
8320 9120 10240
11360 12480
13040 13600 14160
14720 15700 16240 16800'
17600 18000 19360 19600
20240 20800
24000
9.75 13.0 13.0
16.26 16.26
19.5 19.5 22.74
22.74 26.0 26.0 29.26 29.26 29.26 32.52 32.52 32.52
36.0 36.0 36.0 36.0
19 24 24 30
30 36 36 42 42 4ft 48
54 54 54 .60 60 60 66
66 66 66
7 8
9 10
11 12 13 13 14 14 15
16 17 18
18 19 20 20 21
22 23
d
1
111
8 OJS
1 Tcnfes?e
45 7 15
51 2 15 57 2 15 64 3 16
70 3 16 77 3 16 85 3 16 85 4 17 92 4 17
92 4 18 99 4 18 105 5 19
Ml 5 19 117 5 19
120 5 20
127 5 20 134 5 20 140 6 21 147 6 21. 153 6 21
160 6 21
45 45
45 50
50 . 50 50 55 55
60 60 65
65 65 70 70 70 75 75
75 75
Single-Grate, Low Water Line (Patented)
"Smoke-Preventing'*
Equipped with hot blast oxidising tuyeres, and high temperature cement baffle section.
24" SINGLE-GRATE, UP-DRAFT. "SMOKE-PREVENTING"
Water-line 47 in.
Width overall 36 in.
Height overall 57 in.___________
Steam Boiler No. Steam Rating : Total No. of Sections Water Boiler No. | Water Rating
S-531
S-541 S--551
S-552 S-553 S-562
S-572 S-573
S-582 S-592 S-593
2160
2880 3600
3900 4200
4320 5040
5400 5760
6460 6830
6 W-531 3460 7 W-541 4600 8 W-551 5760 9 W-552 6240 10 W-553 6720 10 W-562 6900 II W-572 8000 12 W-573 8600 12 W-582 9200 13 W-592 10360 14 W-593 10920
24' SERIES--DOUBLE-GRATE, DOWN-DRAFT. "SMOKELESS"
Water-line 57 in. Height overall 67 in. Outlets 4 io. Width 36 in. Returns 2 in.
S-432 S-433 S-443
C AAA
S-454 S-455 S-465 S-466 S-476 S-477
1650
1800 2200 2400 2700
3000 3250 3450 3800
4000
W-432 W-433
W-443 W-444 W-454 W-455 W-465
W-466 W-476 W-477
2640 2580 3620
3840 4320 4800 5200 5520
6080 6400
5.0
5.0 6.60 6.66 8.32 8.32
10.0 10.0 11.16
11.18
15 15
20 20 25 25
30 30 35 35
7 8 9 10 11
12 13 14 15 16
35
40 45 50 60 65 70 75
80 85
12 40 12 40
15 45 15 45 16 45
16 45 16 45
18 45 18 5018 50
36' SINGLE-GRATE, UP-DRAFT. "SMOKEPREVENTING" Water-line 48 in. Width overall 49 in. Height 60 in._________
Steam Boiler No.
Steam Rating
Total No. Sections
Water Boiler No. '
Water Rating
S-331 S-332
S-342 S-343
S-352 S-353 S-354
S-362 S-363
S-364 S-373 S-374
S-375 S-383
S-384 S-385 S-394
S-395 S-3%
S-397
4000
4675 5350 6000 6650
7100 7550 8000 8450
6900 9350
9800 10200 10650
11100 11550 12000
12450 12900
13350
6 W-331
6400
7 W-332
7500
8 W-342
8560
9
W-343
. 9600
9 W-352 10640
10 W-353 11360
II W-354 12080
10 W-362 12800
10 W-363 13520
12 W-364
14240
12 W-373 14960
13 W-374 15680
14 W-375 16320
13 W-383 17040
14 W-384 17760
15 W-385 18480
15 . W-394
19200
16- W-395
19920
17 W-396 20640
18 W-397 21260 s
378
Universal Smokeless Boiler Co.
Boilers
Universal Cast Iron Sectional Gas Boilers
For Natural or Manufactured Gas
With Special Circulating Section and Metallic Jacket lined with Super-Firefelt
Patented
Universal Gas Boiler with Metallic Jacket. The front Panel is easily removable for cleaning.
Boiler Steam Number List
Approximate
Number Rating Sections Price Shipping Weight
31 TS 41 TS
51 TS 61 TS
32 TS 42 TS
52 TS 62 TS
72 TS 33 TS 43 TS 53 TS
63 TS 73 TS
34 T S 44 TS
. 54TS 64 T S 74 TS 35 TS
45 TS 55 TS
65TS ' 75 TS
36 TS 46 TS
56 TS 66 T S
76 TS
380 480 660 840
1020 1200 1380 1560
1740 1920 2100
2280 2460 2640 2820 3000
3180 3360 3540 3720
3900 4080 4260 4440
4620 4800 4980 5160
5340
3 $208.00 4 255.00 5 312.00 6 367.00 7 421.00 8 460.00
9 512.00 10 564.00 M 615.00 12 665.00 13 714.00 14 762.00 15 809.00 16 863.00 17 909.00 18 962.00 19 1006.00 20 1059.00
21 1102.00 22 1154.00 23 1196.00 24 1248.00 25 1288.00 26 1339.00 27 1379.00 28 1429.00 29 1467.00 30 1518.00 31 1554.00
735
1137 1300 1475 1629 1789
1954 2116 2281 2445
2606 2767 2928 3094 . 3227 3319
3582 3741 3938 4095 4257
4431 4604
4769 4932
5100 5263
5433 5668
.
Steam Bon^ns--^Height to water-line 29 in.' Height to top flue opening 38 in.
If METALLIC JACKET is not wanted, deduct from the net, $13.50 for a 3-Section Boiler and $1.25 net for each addi tional section over three
STEAM OR VAPOR BOILERS
Outlets, 2-3'. Fifteen-section boilers and over have one extra 136' outlet for every 10 sections. Returns, 2-3'. Trimmings -- Safety valve, steam gauge, water glass com plete with try-cock, automatic gas control valve, automatic steam pressure regulator, metal bellows, type; pilot, complete with lava tip and cut-off valve.
WATER BOILERS
Outlets, 2-3'. Returns, ,2-3'. Trimmings --Thermometer, altitude gauge, automatic gas control valve, pilot.
With Plain Section and Metallic Jacket lined with Super-Firefelt
Number
Steam Water'. Number Rating Rating Sections
List Price Water -
List: Approx. Price Shipping Steam Weight
31 PS and P W 41 P S and P W 51 PS and PW
61 PS and PW 32 P S and P W 42 P S and P W 52 P S and P W
62 P S and P W 72 P S and P W 33 P S and P W 43 P S and P W
53 P S and P W
63 P S and P W 73 P S and P W 34 P S and P W
44 P S and P W 54 P S and P W 64 P S and P W
74 P S and P W 35 P S and P W 45 P S and P W
55 P S and P W 65 P S and P W 75 P S and P W 36 P S and P W
46 P S and P W 56 P S and P W 66 P S and P W
76 P S and P W
300 400 550 700
850 1000
1150 1300 1450
1600 1750
1900 2050
2200 2350 2500
2650 2800
2950 3100
3250 3400 3550
3700 3950
4100 4250 4400
4550
480 665 905 1145
1385 1625
1865 2105 2345 2585
2825 3065 3305
3545 3785 4025
4265 4505
4745 4985 5225
5465 5705 5945
6185 6425
6665 9605
7i4r
3 $146.00 $188.00 715 4 194.00 227.00 1017 5 241.00 275.00 1150
6 288.00 322.00 1293
7 332.00 369.00 1419
8 363.00 399.00 1549
9 406.00 445.00 1684 10 450.00 488.00 1616 11 492.00 533.00 1951
12 534.00 575.00 2065
13 575.00 617.00 2216 14 616.00 658.00 2347
15 654.00 698.00 2478
16 700.00 744.00 2614
17 737.00 784.00 2717
18 782.00 828.00 2879
19 819.00 867.00 3012
20 863.00 911.00 3141 21 899.00 949.00 3278
22 943.00 993.00 3405 23 977.00 1029.00 3537 24 1021.00 1073.00 3681 25 1054.00 1108.00 3824 26 1098.00 1151.00- 3959
27 1130.00 1185.00 4092
28 1173.00 1228.00 4231
29 . 1204.00 1261.00 4363
30 1246.00 1304.00 4503 31 1276.00 1335.00 4708
Steam Boilers--Height to top flue opening 38 in. Height to water-line 26 in. Water Boilers--Height to top flue opening 38 in.
379
Boilers
Utica Heater Company
UTICA, New York
365 E. Illinois St. Chicago, III.
628 Union Building Cleveland, O.
1843 Grand Central Term'I New York, N. Y.
Representatives In Principal Jobbing Centers
Utica-Imperial SUPER-SMOKELESS Boilers
Burn Soft Coal Smokelessly--Use Any Available Fuel
Patented January 10, 1982.
Utica-Imperial SUPER-SMOKELESS Boiler
Cut-away View, Showing Primary and Secondary Combustion Chambers and Air Inlets
SUPER-SMOKELESS BOILERS--
Are designed to operate smokelessly when burning soft coal. They utilize any avail able fuel, burning either hard coal, soft coal, lignite, coke, fuel oil or gas with ex ceptional efficiency and decided economy.
ELIMINATION OF SMOKE--
Is attained by consuming the smoke and soot within the boiler. This complete combustion is due to the admission of highly heated air through water-jacketed inlets, in the baffle wall at the rear of the fire box. The admixture of oxygen at this point instantly converts the heavy gases into incandescent flames of unusual heat ing capacity. The smoke and soot are actually used as fuel and clean chimney and flues are maintained at all times.
SUPER-SMOKELESS Boilers comply with the most rigid smoke ordinances and are recommended by foremost heating engineers and leading architects for impor tant buildings.
CONSTRUCTION--
SUPER-SMOKELESS Boilers have a single grate and are of sectional cast iron construction. Cast iron is highly resistantto corrosion and preferable to steel where low pressure permits using it. The sectional construction permits easy handling in shipment as well as installation in com pleted buildings.
The baffle wall is a specially designed water section of the boiler. It has a series of water-jacketed air inlets above the firebed and is covered on the side facing the fire by high-test plastic firebrick.
OPERATION--
SUPER-SMOKELESS Boilers are ex tremely simple to operate. No special skill or high priced help is required. Long firing periods are the rule and little care or attention is required for successful, smoke less operation.
380
Utica Healer Company
Boilers
Capacities and Dimensions of Utica-Imperial SUPER-SMOKELESS Boilers
Number - Steam
Steam Ratings. Sq. Ft..
High Output
High Efficiency
Number Water
Water Ratings. Sq. Ft.
High Output
High Efficiency
Grate Area
Sq. Ft.
Length of Sections Inches
Length of
Sections and Smoke Box
Inches
S-245 S-246 S-247 S-248 S-249
S-335 S-336 S-337 S-338 S-339 S-3310
S-405 S-406 S-407 S-408 S-409 S-4010 S--4011 S--4012 S-4013 S--4014 S--4015 S--4016 S--4017 S--4018 S--4019 S-4020 S--4021 S-4022 S-4023 S-4024
1600 2075 2550 3025 3500
3000 3750 4500 5250 6000 6750
4125 5250 6375 7500 8625 9750 10875 12000 12700 13500 14250 15000 15750 16375 17000 17600 18150 18650 19100 19500
1200 1500 1800 2100 2400
2000 2500. 3000 3500 4000 4700
2750 3500 4250 5000 5750 6500 7250 8000 8750 9500 10250 11000 11750 12500 13250 14000 14750 15500 16250 17000
W-245 W-246 W-247 W-248 W-249
W-335 W-336 W-337 W-338 W-339 W-3310
W-405 W-406 W-407 W-408 W-409 W-4010 W-40II W-4012 W-4013 W-4014 W-4015 W-4016 W-4017 W-4018 W-4019 W-4020 W-4021 W-4022 W-4023 W-4024
2560 3320 4080 4840 5600
4800 6000 7200 8400 9600 10800
6600 8400 10200 12000 13800 15600 17400 19200 20320 21600 22800 24000 25200 26200 27200 28160 29040 29840 30560 31200
1920 2400 2880 3360 3840
3200 4000 4800 5600 6400 7520
4400 5600 6800 8000 9200 10400 11600 12800 14000 15200 16400 17600 18800 20000 21200 22400 23600 24800 26000 27200
5.00 6.25 7.50 8.75 10.00
7.32 9.10 10.87 12.65 14.42 . 16.20
9.68 12.03 14.38 16.73 19.08 21.43 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77 23.77
37% 45% 533/4 62
70%
37%
45% 533/4 62 70%
78%
37% 45% 53% 62 70%. 78% 863/4 95 103%
Hl% 1193/4
128 136% 144% 1523%
161 169% 177% 1853/4
194
48% 56% 63%
71% 79%
49% 57% 66 72% 80% 89
49% 57% 65% 74 82% 90% 97 105%
113% 121%
130 138% 146% 154% 163 171% 179% 187% 196 204%
Capacities and Dimensions of Utica-Duplex SUPER-SMOKELESS Boilers
Number Steam
Steam Ratings. Sq. Ft.
High Output
High Efficiency
Number Water
Water Ratings, Sq Ft.
High Output
High Efficiency
Grate Area Sq. Ft.
Length of Sections Inches
Length of Sections and
Smoke Box Inches
S-827 S-828 S-829 S-8210 S-8211 S--8212 S--8213 S-8214 S--8215 S-8216 S-8217 S-8218
12750 15000 17250 19500 21750 24000 25400 27000 28500 30000 31500 32750
8500 10000 11500 13000 14500 16000 17500 19000 20500 22000 23500 25000
W-827 W-828 W-829 W-8210 W-82II W-82I2 W-8213 W-8214 W-8215 W-8216 W-8217 W-8218
20400 24000 27600 31200 34800 38400 40640 43200 45600 48000 50400 52400
13600 16000 18400 20800 23200 25600 28000 30400 32800 35200 37600 40000
28.76 28.76 33.46 33.46 38.16 38.16 42.86 42.86 42.86 47.54 47.54 47.54
53% 62
70% 78% 86% 95 103% 111% 119% 128 136% 144%
70% 79
87% 95% 103% 112 120% 128% 136% 145 153% 161%
Height of water line: 24 series. 45H inches; 33 series, 53 inches; 40 series, 57 inches; 82 series, 57 inches.
Equipment Shipped with Boilers
All Super-Smokeless Boilers are provided with equipment of the best type. Steam Boilers are equipped with Water Column with gauge glass and compression cocks; Retard Steam Gauge with Bourdon brass tube spring, Non-Glare Dial, syphon and cock; All-brass Pop Safety Valve, A. S. M. E. Standard; and Automatic All-metal Damper Regulator suitable for low pressure. Every boiler is furnished with a complete set of firing tools, consisting of shaker handle, hook, hoe, slice bar and flue brush with handle. Duplex Steam Boilers are equipped with Steam Header, Return Yoke, and Equalizer fitted with Hartford Connection which may be used or not, as desired.
381
Boilers
Weil-M'Lain S CIENTIF1C COMBUSTION
BOILERS
WEIL-McLAIN COMPANY-Michigan City, Ind.- Chicago, 111.
The Weil-McLain ROUND TYPE BOILER with its COR
RUGATED FUEL-SAVING HEATING SURFACES and its long "back and forth" fire travel embraces the newest and
best conceptions of heating engineers. Other points of merit in the Weil-McLain Round Type
Boiler are: fire-pot and crown sheet cast separately to permit easier handling; large fire door; handy front clean-out doors in every section and triangular type grates which cut and
shake out all ordinary clinkers.
STEAM
- Size Boiler
Rating Sq. Ft.
WATER
Size Boiler
Rating Sq. Ft.
Actual Diam. Grate and
Fire. Pot Inches (Both
Steam and Hot Water)
5-S-17 5-S-19 5-S-22 5-S-25 5-S-28 5-S-31
6-S-17 6-S-19 6-S-22 6-S-2S 6-S-28 6-S-31
395 480 660 865 1065 1350
410 500 695 915 1130 142S
5-W-17 5-W-19 5-W-22 5-W-25 5-W-28 5-W-31
6-W-17 6-W-19 6-W-22 6-W-25 6-W-28 6-W-31
650 795 1090 1430 1760 2225
675 825 1145 1510 1865 2350
17 19 22 25 28 31
17 19 22 25 28 31
NOTE: Table is not complete; these boilers are also made four section.
The Weil-McLain SECTIONAL or SQUARE TYPE BOILER . like the Round Type has corrugated heating surfaces directly above
the fire, has a long "back and forth" fire travel--features that add greatly to the efficiency and economy of this boiler.
Kamber
22-W-5 22-W-6 22-W-7 25-W-5 25-W-6 25-W-7 25-W-8 28-W-5 28-W-6 28-W-7 28-W-8 36-W-5 36-W-6 36-W-7 36-W-8 36-W-9
WATER
Water Rating
$n. Ft
1500 1825 2150 1825 2225 2650 3050 2700 3275 3850 4425 3850 4725 5600 6475 7350
Total Grate Length Area
Inches to. Ft
51 4.88 58 5.96 65 7.03 51 5.70 58 6.90 6S 8.10 72 9.30 63 7.97 72 9.72
81 11.47 90 13.22
66 10.25 75 12.50 84 14.75 93 17.00 102 19.25
Number
22-S-5 22-S-6 22-S-7 25-S-5 25-S-6 25-S-7 25-S-8 28-S-5 28-S-6 28-S-7 28-S-8 36-S-5 36-S-6 36-S-7 36-S-8 36-S-9
STEAM
Steam Rating to. Ft
900 1100 1300 1100 1350 1600 1850 1650
2000 2350 2700
2350 2875 3400
3925 4450
Total Length Inches
51 58
65 51 58 65 72 63 72 81 90 66 75 84
93 102
Water Line laches
46 46 46 51 SI 51 51 55 55 55 55 58 58 58 58 58
Grate Area So. Ft (Steam andWater)
4.88 5.96 7.03 5.70 6.90 8.10 9.30 7.97 9.72 11.47 13.22 10.25 12.50
14.75 17.00 19.25
NOTE: Table is not complete; this type boiler is also made in a 48* size.
382
Boiler Feeders
McDonnell & Miller
General Offices: Wrigley Building
CHICAGO
A\saa \S
"Doing One Thing Well''
Eastern Warehouse Stock
Bush Terminal, N. Y.
PRODUCTS: Duplex Water Feeders Duplex Switches
McDonnell & miller duplex WATER FEEDERS
McDonnell & miller duplex
switch
The McDonnell & Miller Duplex Water Feeder is a simple and positive means of controlling the water line in low-pressure steam boilers, automatically supplying make-up water as necessary, and protecting the boiler against flooding by disposing of any excess condensate that may be returned from the system.
It is completely self-contained. Steam and water equalizing connections as well as supply and overflow connections, are all made in the head so that floats and valves may be exposed for .inspection without breaking a single pipe connection.
May be applied to all steam heating systems whose pressure does not exceed 15 pounds and are suitable for city water pressures up to 115 pounds. Weight, packed for shipment, 50 pounds.
The McDonnell & Miller Duplex Switch is a combination Low Water Cut-off and Pressurestat for oil fired boilers.
When the boiler water line falls to the bot tom of the gauge glass the switch cuts out the oil burner motor and cuts it in again when there is at least one inch of water in the glass.
The pressurestat may be adjusted for any cut-out pressure from 9 ounces to 10 pounds 6 ounces and the difference be tween cut-out and cut-in pressures may be varied at will from 7 ounces to 5 pounds 6 ounces. '
The switch movement is-springless being operated on the weight-and-lever prin ciple. It is permanent and accurate in its adjustment and may be easily- adjusted without tools. .
The Duplex Switch is easily installed in the gauge column in less than an hour. Weight, packed for shipment, 25 pounds.
383
Boiler Liquid
NO RAD RUST CORP.
Manufacturers
Dept. A 1
Lancaster, Pa.
JOHN G. KELLY
' Exclusive Distributors
210 East 45th Street New York City
BOILER AND HEATING SYSTEM CLEANSER
WJ. BOILER AND HEATING SYSTEM CLEANSER s when heated actually vaporizes and therefore can circulate through the entire system--the pipes, radiators, valves, and traps, BESIDES the boiler. It so thoroughly cleans the entire system of oil, grease, core-sand, rust, and scale, that it will, PERMANENTLY cure priming, surging, and sluggishness. It is also a wonderful tonic for old systems as a cure for slow-steaming.
A Harmless Liquid
containing neither acid nor poison. It will not bake or harden in the system. It contains no sediment to clog up the system.
Very Simple To Apply
being poured into the boiler through the safety valve opening. Then get up a pressure; W. J. vaporizes and cleanses. After sufficient time has elapsed the mucky water is drawn from the bottom draw-off cock and you still have enough of the liquid left in the boiler to prevent rust and scale from forming for a year. ' .
GUARANTEED to cleanse the system thoroughly and
increase its heating efficiency.
.
384
No Rad Rust Corp.
Boiler Liquid
Successful as evidenced by the
following testimonials
PAUL R. ALLEN, New York Architect, says:
"The two dead radiators, to which I called
Mr. Howett's particular attention, are
now apparently 100 per cent efficient, a
fact undoubtedly due to the peculiar rust
and grease eliminating properties of
your product.
'
"My entire plant has been greatly bene fited and water now drawn from the bottom of the boiler is quite clear and free from all grease, scum, sediment, etc.
"I am convinced that this method is the correct one and the only sure means of securing a thoroughly clean plant. I will not hesitate to recommend its use, with the utmost confidence in its success."
H. W. REIS, Vice-President
of W. A. Russell & Co., says:
"At the time of putting in the W. J. 16, the builder of my home assured me that the heating system had been thoroughly cleaned out and `blown' off within the last year and that he was sure there was no oil, rust, grease, etc., in the system.
"The results obtained from W. J. 16 were truly remarkable--not only did I draw off more than a quart of thick brown oily substance, but I was able to get up steam very readily and thereby eliminate the discomforture that we had been encountering during the entire winter. I also noted after the system was thoroughly cleansed that there was considerable saving in fuel in addition to having a steady uniform heat.
"I have recommended W. J. 16 to a number of my neighbors who have ob tained the same gratifying results, and in conclusion, beg to state that it is impos sible to determine the real merit and economy of W. J. 16, until you have actually used it."
VAPOR ENGINEERING CO., says:
"In another case, a residence at 156 Bast 78th Street, New York City, we found though the boiler had been blown down, in the usual manner, that the owners complained that they could not obtain
- heat in all the radiators without an exces sive fire at the boiler. We put one gallon of W. J. Boiler and Heating System in the Veco Governor which permitted its free entrance into the boiler and on the follow ing day we took out of the boiler at least two quarts of oil, sample of which we have here at the .office. After taking the oil from the boiler 2-ounce pressure was
' raised on the boiler in about three minutes time and every radiator in the building was heated all the way through. Since
that, the owner has called this office and advised that the plant had been improved 100 per cent. We shall be glad to furnish the name of this job, or any of the others that we have tested, should anyone be interested.
"We are convinced that your preparation will save both the owner and the heating contractor quite a little time and money and for that reason are going to include it in all of our future specifications."
C. A. DUNHAM CO., says:
"We used the cleanser according to your instructions, and are pleased to report that it was very effective in cleaning the
' dirt out of the system.
"Thanking you very much for sending us this cleanser, and assuring you that we will tell everyone who is having boiler trouble about it, we are"
H. A. YATES ENGINEERING CO., Inc., says:
"On the one job which we used this cleanser, it worked out very well indeed, cleaning the system thoroughly, steadying the water line which formerly had been jumping, and decreasing the time which it formerly took to raise pressure on the system.
"We like it so well that in the future on our blow down jobs, of which we have forty or fifty a year, we intend to use it ex clusively."
RUSH, LEE & RUSH, St. Louis Architects and Engineers, say:
"We have used your W. J. Boiler and Heating System Cleanser in our building and find it to be very effective in cleansing the water in the boiler in fact consider it superior in every respect. ` '
A. S. GRANT, Sales Manager of ABENDROTH BROS., says:
"I put this liquid in the heater in my house and it certainly took out the oil and dirt from the heating system, and showed a vast improvement by getting up steam more quickly. One evening after arriving home, my wife advised me that the steam gauge showed ten lbs. pressure early in the evening and wanted to know if the safety valve was in working order as she became quite frightened. I asked her why she allowed the steam to come so high and she said that since I used the cleanser, it was* hard to keep down the steam.
"I certainly recommend this compound for any new or old job in both steam or vapor."
Boiler Liquid
The Vinco Company, Inc.
75 Vesey Street, NEW YORK CITY
Vinco treatment for "breaking in" new or remodeled steam and rapor heating systems
Telephone--Cortlandt 1995
Cable Address--Vincomp, New York
Vinco (Latin "I conquer") is a simple, safe, sure cleanser --a necessary corrective which establishes and maintains free, easy circulation, uniform heat distribution and high fuel economy.
Vinco stops foaming, prim ing, surging, sluggish steaming, clicking of pipes, incomplete circulation and poor radiation by removing oil, grease, scale and dirt from the internal surfaces.
Vinco does not temporarily disguise or blanket the foaming, but permanently removes causes as well as effects, and does this completely, without blowing down under steam, without harm to any part and at a cost of about one cent per sq. ft. of radiation for the Vinco compound.
Using Vinco for initial ``breaking in" gives the system a clean bill of health from the start by assuring positively that the internal surfaces are and will remain clean, and later is a protection against the crack ing of boiler sections that often results from priming and slugs of cold returns. Treat ment with Vinco quickly develops the best performance permitted by the design and avoids the shaken confidence and com plaints which often result in disputes and withheld final payments. Vinco also saves the heating contractor many non productive hours, by doing its work thoroughly without "come backs."
Specification
Cleaning the System: Upon completion of the installation, the contractor shall clean the system by the Vinco Method to remove all oil, grease, rust and dirt from the boiler, using *. . . lb. of Vinco, in exact accordance with manufacturer's directions.
This compound must remain in the boiler for 36 actual steaming hours, which corresponds to six or seven days average operation. At the end of this period, boiler must be thoroughly drained and flushed before refilling with clean water.
4201 to 4600 square feet of radiation 28 "
4601 *' 5000 " .....................
30 "
above 5000 square feet use an additional pound of
Vinco each additional 300 square feet of radiation.
All radiation should be taken at actual rating.
Adding a little Vinco each heating
season keeps all internal surfaces con
stantly clean.
.
Vinco Results are Guaranteed
Vinco is guaranteed to meet every claim and to contain no potash, lye, soda, oil, acid or other harmful ingredients. Results must be satisfactory or purchase price will be refunded.
Patents are pending upon the product, the process of manufacture and methods of application. The use of any unlawful imitation will be subject to prosecution. For safety and full benefits, specify by name and see that the material comes
from 3-lb., 5-lb., or 10-lb. litho graphed cans bearing name and registered trademark as shown.
Price SI.50 per lb. with liberal discount to the trade. .
In writing specification, insert in this space number of pounds of Vinco to be used in accordance with the following schedule:
Write for Literature
386
Boiler Liquid
Factories: Boston and Toronto
"X" Liquid is a
collodial solution
which repairs leaks
quickly and per
manently in high
and low pressure
boilers and hot
water heating
systems below the
"X" Liquid can be Poured thru a cloth. Therefore it cannot clog. It is harmless to all
metals, rubber and leather
water line without shutting down. Just pour "X" in. "X" Liquid ci'rcu-
lates freely with the water in the system,
trickling out through the leaks, becoming
a solid by contact with the air and heat,
and contracts and expands with the metal. "X" Liquid seals cracked and porous
castings, leaky bolt heads, split nipples,
leaking joints and all leaks inside the system which otherwise would be impos
sible to get at.
"X" Liquid is in practically world-wide
use, it being also used to repair leaking automobile and aeroplane radiators, cylin ders and water jackets. "X" is ussd to repair leaks in all places where hot water is confined.
"X" Liquid has been used for years by the Standard Oil, General Electric, American Tel. & Tel., etc., and by the U. S. Government on ALL aeroplane endurance flights from the Trans-Atlantic Flight in 1922 to the MacMillan Arctic Expedition in 1925.
"X" Liquid increases boiler efficiency because it prevents rust and the deposits of lime and silica which quickly coat the inside of pipes and boilers, reducing heat conductivity. Boilers can be kept per manently free from corrosion by the occa sional addition of "X" Liquid to the water.
An "X" repair is a permanent repair and will with stand over 600 lb. pressure.
"X" BOILER LIQUID
Sizes and Prices
Carried by all Jobbers of Steamfitters Supplies. Sold on a money back guarantee.
Quart Cans........... -....................... $6.00 Each Half Gallon Cans....'......$10.00 Each
OILER LIQUID
REPAIRS LEAKS IN HIGHS LOW. PRESSURE BOILERS AND HOT WATER
387
Burners, Oil
The American Nokol Co.
215 North Michigan Ave., CHICAGO, ILL.
Facts about
THE NEW r . silent
Automatic OilHeating forHomes
Fully automatic oil heat--for residences and other buildings--large or small
General Description.--Nokol was the first automatic oil burner practical for heating homes--perfected 9 years ago. It provides fully automatic heat--tem peratures with maximum variation of 2 deg., thermostat control. Atomization is by combination of Venturi and nozzle --suction provided by blower fan, motor driven. Combustion is . also markedly efficient (see below).
Combustion.--Since oil can only burn completely in high temperature zones, Nokol has a combustion chamber inde pendent of furnace or boiler. By this means necessary temperatures for com plete, clean combustion almost instantly reached--and maintained.
Cost.--In more than 29,000 homes--for periods up to 9 years--Nokol heating costs
have been found no higher than for hard-
coal; usually less. The lowest-cost, fully
automatic oil heat known.
Efficiency.--Orsat tests show an aver age of .12 per cent carbon dioxide in flue gas^-almost'instantaneously after start ing, and during whole period of Nokol operation. This indicates combustion efficiency of at least 85 per cent.
Ignition.--Nokol has either gas or re markably efficient electric ignition--the latter for use where gas is not available. The gas "pilot" light is constantly ready for operation. Expanded momentarily as combustion begins and ends--to avoid puffing out.
Noise.--The new Silent Nokol--by simple, effective softening of flame-- cuts noise to the vanishing point.
Safety.--Nokol was the first domestic
oil burner listed as standard by The
Underwriters' Laboratories; approved by
all leading safety boards. Equipped with
double safety controls--positive in char
acter.
:
Sizes.--Any furnace or boiler may be fitted with Nokol, which is one of the few automatic oil burners made in adequate range of sizes.
Typical Nokol Installation, heating 14-room house. Chicago, III.
Sent Upon Request A concise file of data on Nokol--cover ing every question of installation and operation--sent upon request. It is in convenient form for reference and filing.
388
Burners, Oil
Automatic Burner Corporation
312 North May Street - - CHICAGO, ILL.
How ABC Heats Your thermostat, placed in one of your living rooms, is set at 70 deg. The temperature in your home drops to 68 deg.--automatically ABC starts. The lowering of the oil in the burner reservoir drops the float, unseating the three check balls. ( As the oil flows in from the wall float, which holds one pint of oil. the lowering of the float in its ' container automatically starts the pump. The pump draws oil from an underground tank. When enough oil has been admitted into .the reservoir the dependable three balls set, stopping
the automatic pump and checking the flow of oil. Observe this: At no time do you have more than one quart of oil in your basement.
The armature shaft by centrifugal force draws the oil through a taper hole up to the atomizing cup. Air is taken in--always the proper amountthrough holes in the bottom of the cup.
The oil and air. thoroughly mixed and broken up. are thrown into the boiler, noiselessly, as a fine atomized, instantly inflammable mist. Ignited by the pilot light, the mist of oil burns with a clean, soft flame of circular form.
' Twelve Reasons Why ABC Appeals to Engineers
1. Converts coal boiler into oil burn
ing boiler: ABC is designed so that
it retains the natural functions of a
coal heating boiler. All boilers were
designed to burn coal--and not to
absorb heat traveling at a high veloc
ity. The ABC horizontal circular
flame heats from the grate on the
water legs. Result: quick heat; low
stack temperature; saving in oil.
2: Oil burned in suspension: This is
the first law of efficient oil burning.
3. Longer boiler life: Burners with a
concentrated flame in time destroy a
boiler. The ABC circular flame,
evenly applied all around the boiler,
adds to its life.
4. No carbon or soot: Engineers know
what an immense advantage this is.
5. No fan or blower : Heat is not forced
up the chimney and wasted.
6. Dess oil required: Unique means of
atomization assures complete combus
tion. Every particle of oil is burned.
The heat rises slowly and is maxi
mumly absorbed, by the boiler.
7. Simple: The life and amount of
service of a piece of machinery is in
ratio to the number of moving parts.
ABC has only one moving part sub
ject to wear. It is simple. It has no
complicated or delicate adjustments.
8. Burns low-priced oils: 32-36 grav
ity oil is recommended.
9. Odorless: An ABC heated home is
odorless.
10. No unsightly parts outside of
boiler: The burner is entirely enclosed
in the boiler out of the way. .
11. Automatic: Heat when you want it
--as you want it.
.
12. Quiet: The importance of quietness
in a domestic oil burner cannot be
overestimated. ABC is really quiet.
Full Information will be Sent You Gladly
No.
Maximum Steam Radiation
Max. Hot Water Radiation
Approximate Floor Space Required
Shipping Weight
Price
Type E
3000
4500
Enclosed in Boiler
110 l.
$600 to $1,000
aBc oil burner no noise-- no carbon 389
Burners, Oil
Ballard Oil Equipment Co.
Oil Burning Engineers and Contractors
NEW YORK
WASHINGTON
PHILADELPHIA
NEWARK.
And Agencies Throughout the United States
The Ballard Oil Equipment
Company offers a complete line
of oil burning equipment for indus
trial and domestic installation. Its
organization centers about its
engineering service and its long
experience in the field. To the
architect, heating engineer and
contractor this service is available
in the form of expert engineering
advice and the sale and installation
of equipment which is perfectly
adapted to the requirements of the
individual job.
.
Installation of Ballard Type H Rotary Mechanical Burners in two 150-H. P. Simplex Boilers
Ballard equipment includes: high pressuremechanical burners, steam atomizing burners, the . Ballard Type H rotary low pressure mechanical burner for fuel of 12-16 degrees Baume, the Ballard Type H rotary low pressure mechanical burner and pump unit combined for fuel of 24 degrees Baume , and higher, the Ballard Type A automatic domestic and semi-industrial system, and automatic residence systems. Descriptive literature sent upon request.
Ballard Type A, Automatic Oil Burning
System Installed in Healing Boiler and
Hot Water Healer
'
Ballard Service
Recognized the World Over
Ballard Type H Combined Burner and Pump Unit 390
Burners, Oil
Factory Branch Offices:
San Francisco Sacramento Philadelphia
S. T. JOHNSON GO
----------OIL BURNERS---------Trade Mark Registered
Distributors and Dealers
Throughout the United States and in Foreign
Countries
Main Office and Factory: 940-950 Arlington Avenue
Oakland, California
Twenty-one Years of Specialization in Oil Burning Equipment
Products
steam radiation; 5 to 40 horsepower. Can
A full line of oil burning equipment, with a type and size for every heating and power purpose.
Rotary Oil Burners, manual or full automatic control. Five sizes--600 to 20,000 sq. ft. steam radia tion. Success fully used in all kinds -of boilers, using fuel oil from 14 to 34 deg. Baume. Effi
be'safely operated with gravity oil supply. Recommended only for small, boilers.
Steam Fuel Oil Pumping Equip ment.--Consists of duplex steam-driven oil pumps, mounted in duplicate upon
cast-iron drip pan over heat er, with legs. Also furnished
with one
pump. Equip ment ranges from 20 to
cient built-in
2,000 horse
oil pump,
drawing from
Rotary Oil Burner--Manual or A iitomatic Control
power. Rec ommended for
underground tank. Listed as standard by large installations..
Underwriters' Laboratories, an organiza tion established and maintained by the National Board of Fire Underwriters.
Fuel-Oil Pumps.--Electric motordriven oil pump--a simple device to pump any grade fuel oil or distillate-from
Low Pressure Air Burners and underground oil supply tank and to
Equipment.--For any kind of oil. Un usual efficiency, economy, simplicity. Designed to vaporize heavy crude fuel oil
maintain pressure on oil-supply .piping to one or more Whirlwind Burners.
with air pressure one to five pounds per
Long life and dependability characterize
square inch. S. T. Johnson Co. equipment. Best
Especially rec materials and precision methods of manu
ommended for large installa tions.
facture. Correct design based upon proven engineering principles, developed during twenty-one years of successful manufac
Whirlwind Burners.--Easi
turing. Special literature furnished on request.
ly adapted to
any furnace, boiler or oven.
. & Hr ^ i 3 to
Two styles and
Steam Fuel-Oil Pumping Equipment
six sizes--500 to 4,000 sq. ft.
Steam Atomizing Burner
34--726
391
Burners, Oil
Winslow Boiler & Engineering Go.
Builders of Oil Burners
Factory
NEW YORK Show Room: 46 E. 41st St.
CHICAGO 208 S. La Salle St.
GALESBURG Illinois
he winslow industrial
TBURNER bums efficiently all fuel
oils from 14 Mexican Crude up. The motor blower unit may be located
at any convenient point near the boilers and connected to the burner assembly, in front of the boilers, by oil and air piping of correctly proportioned sizes.
The motor blower unit has a high grade gear pump that pulls the oil from the stor-
Sliding Type
The burner as shown is standard and all barrel assemblies from the T-10 to the T-70 are interchangeable on the same head, giving extreme flexi bility of equipment.
age tank and delivers it at from 7 lbs. to 10 lbs. pressure to the burners. At the same time the blower is supplying the re quired air at low pressure, measured in ounces, to effect a thorough atomization of the oil. This unit is complete with a strainer, pressure gauge, check valve and 011 relief valve.
Single motor blower units handlea variety of burner assemblies and where dual units are twinned the capacities are not only doubled but the plant is insured against any shut down. There are several sizes of motor blower units and also of burners.
In specifying burners determine whether the boilers are to carry an overload.. Ordi narily, steel boilers can be provided with burners rated at the boiler rating unless overloads are contemplated. On the other hand, cast iron boilers can usually be pro vided with burners rated at about 70 per cent of the boiler rating. This is due to the different methods of rating steel and cast iron boilers.
392
Winslow Boiler & Engineering Co.
Burners, Oil
Wherever possible specify two smaller burner nozzles even though one larger one will do the work, so as to assure an easier control of fuel consumption. In nearly all boilers, two burners, by giving a wider flame distribution, reduce excess air, as suring better combustion. At the same time by utilizing more of the heating sur face, the efficiency is still further increased. Where loads are apt to be variable the double burner nozzle is ideal.
where it is whirled off at tremendous speed, mixing with the air from the barrel and entering the boiler perfectly atomized. ' The cut to the left shows the balanced rotating cup and revolving turbine wheel. Two sets of ball bearings between these units insure low frictional resistance and high speeds.
The cut to the right above-shows. the method of attaining atomization, The oil travels down the central tube and impinges onto the concave-convex rotating disc. It whirls centrifugall'y to the edge of the disc and strikes the heel of the revolv ing cup in a thin film. It then travels along the inner wall of the cup to the rim
Auoniuu
uun
The following partial list of WINSLOW BURNER assemblages will be of assist ance in determining correct sizes for a large scope of work. The ratings in column five are based on 100 square feet of steam radi ation per horse power and represent the total load the burners can handle.
WINSLOW BLOWER AND BURNER CAPACITY
Motor Blower Unit
Size and Number , Maximum Steam
Motor
Oil Pump -
of Burners .
Radiation
Horsepower Gallons per Minute
Air Outlet
B-60 B-60 B-60 B-60 B-60
B-90 B-90 B-90 B-90
B-120 B-120 B-120 B-120
B-180 B-180 B-180 B-180
B-300 B-300 B-300 B-300
B-500 B-500
1 T-10 2 T-10 l T-30 2 T-30 1 T-40
3 T-10 3 T-30 2 T-30 2 T-40
4 T-10 3 T-30 2 T-40 1 T-70
5 T-10 4 T-30 3 T-40 2 T-70
8 T-10 6 T-30 5 T-40 4 T-70
1 T-250 2 T-250
3,500 5,000 . 5,000 7,500 6,500
9,500 11,000 10,000 12,000
11,000 14,000 16,000 10,000
14,000 20,000 22.000 22,000
20,000 24,000 30,000 34,000
25,000 50,000
3/4
y. %
1Ii''A/2
%
y. i'A
iI''A/i
1/2
vA
V/i I vs
I'A i'A
2 2 2 2 2
2 2 2 2
2 \/i 2 l Vi
2 Wi 2 I'A
2 2 2
2
3
3
2Vi
33
2/i
3 3 - *A
53
ZA
53
53 53 53
3 3
3 3
5 31/? 5 5 - 5.
In addition to the WINSLOW INDUSTRIAL
burner described here the Winslow Boiler &
Engineering Company manufactures a complete
line of fully automatic, residential and apartment
house burners.
.
The gas and the electric ignition KLEEN-
HEET burners, with the vacuum oil feed elimina
ting the usual basement auxiliary tank, are built
in a total of nine .sizes and are thus suitable for a
great range of work.
The Junior KLEEN-HEET buraersT without
the vacuum feed but completely automatic in
operation, are in two sizes. The No. 10 is rated at
ong thousand feet hot water and is suitable foi* the
average home. The No. 6 is especially-adapted to
Arcolas and small domestic water heaters. .
Inquiries to the INDUSTRIAL DIVISION of the WINSLOW BOILER AND ENGINEERING COMPANY, 208 South La Salle Street, Cl * ` , Illinois, will be promptly answered.
Cabinets, Heat
TRANE HEAT CABINETS (See Trane Heating Specialties on pages 530 and 531. Also Trane Pumps on pages 474 and 475.)
The Trane Company
Let Cvos&g* Wis.
BRANCH OFFICES
.
New York, Chicago, Boston, Cincinnati, Newark, Philadelphia, Buffalo, Cleveland, Detroit, Seattle, Los Angeles, Albany,
Minneapolis, Salt Like City, Greensboro, N. C., Zanesville, Ohio, Tampa,-Fla.', Baltimore, Md., Des Moines, Iowa, New Haven, Conn., Sheboygan, Wis., Kansas City, Mo.; England: 22-23 Clerkenwell Close, London, E. C. 1. Canada:
The Trane Co., 21-23 River St., Toronto, 2; Thomas Robertson & Co.; 134 Craig St., West, Montreal, F. S. Murdoch, 310 Brcadalbane, Winnipeg; A. B. Madden, 48 Sparks St., Ottawa. Japan: Mitsubishi Shoji Kaisha, Ltd., Tokyo.
China: C. J. Doughty <k Co., 8-9-10 Brenan Road, Shanghai.
The Trane Systems of Vapor and Vacuum Heating, Patented Heating Specialties, Trane Heat Cabinets, and Trane Automatic.Electric Pumps,.
For All Purposes
The Trane Heat Cabinet is essentially a heating element en closed in a cabinet that acts as a chimney.
The heating element or Heater, as shown by the illustration on the next page, occupies a compara tively small space in the bottom of the cabinet.
It is designed in such a way that unless air is passing over it, the Heater gives off very little heat. But when air around the Heater is allowed to circulate, heat is given off very rapidly.
HEAT CABINET FEATURES
Trane Heat Cabinets can be used wherever an ordinary cast-iron radiator can be used--and in many places where it can't.
Economy of Fuel.--Heat Cabinets save fuel.
Light Weight.--One radiator weighs as much as five Heat
Cabinets. In other words, enough Heat Cabinets to heat an ordinary house do not weigh any more than about two radiators. Think what this means in freight saving.
Low Cost.--A Heat Cabinet, although its heat unit is constructed of brass and copper,
does not cost as much as a radiator and shield. .
.
Small Space.--Heat Cabinets use much less space than enclosed radiators.
Beauty.--Heat Cabinets are furniture, and can be finished to match any surroundings.
Concealed When Desired,--Heat Cabinets can be built into the walls, so nothing is visible except the heat outlet.
Temperature Control.--Heat Cabinets give to all present forms of radiator heating. INCLUDING hot water systems, the feature of temperature control at each heat outlet--exact, and instantaneous.
Quick Heat.--The heating of all present types of radiator systems is much faster with
the use of Heat Cabinets--especially hot water systems, where heating is accelerated
300 per cent to 400 per cent.
.
Permanence.--Heat Cabinets are solid and rigid, with no joints or seams--as per manent as the piping.
394
The Trane Company
Cabinets, Heat
1. Cabinet made of strongly reinforced
the concealed or recessed type
sheet metal, painted with one priming
cabinets, the damper arrangement is
coat. Can be used this way, or re
included in a grille.
.
finished as desired to match any sur roundings.
.2 The heat outlet. Grille not necessary,
and not furnished as standard equip ment, but can be added if desired for .
7. The Heater of a Trane Heat Cabinet.
. This unit is made up of copper sheets
fastened by a patented process to a
U-pipe, through which the steam or
hot water passes.
,
artistic reasons.
8. Copper sheets in heater are at nearly
3. All heat from Cabinet is thrown to the front, thus keeping walls clean, and leaving top of cabinet free for the
the same temperature as the U-piper giving a large area of heating-surface ' in a very small space;
placing of ornaments, etc., without 9. Air entering at bottom of Heat
decreasing the efficiency of the ,
Cabinet, passing over the heated
Cabinet.
copper sheets and up through the
4. Cabinets furnished with or without tops, as desired, thus enabling owner or architect to keep the Heat Cabinets
outlet, gains great velocity and there fore heats the room rapidly.
10. Heating unit is rigidly constructed,
in harmony with woodwork and fur
and is built to last forever, It is not
nishings of the room. Tops furnished
fastened to the Cabinet. Cabinet can
by us are made of metal.
be removed at any time.
5. Heat control damper. By. simply regulating the position of this damper, perfect control of heat is secured on all types of modern heating systems, including hot water and one-pipe steam.
6. Heat control knob. This knob is placed on the ends of the cabinets where visibly cabinets are used. On
11. Different capacities in heating units are secured by varying the length of the unit. Capacity also increases with increased height of the Cabinets.
12. Inlet and outlet are at sarrie^ end of heating unit. Exact connections at this_point vary with different types of heating systems, but heating units are always the same.
395
Cabinets, Heat
The Herman Nelson Corporation
Moline, Illinois
Belfast, Mb. Boston New Haven New Yoke Crrr Stracuss
BRANCH SALES AND SERVICE OFFICES
Philadelphia
SCBANTON Pittsburgh Grand Rapids Detroit
Chicago ' Cleveland Columbus
-
Toledo Indianapolis
Des Moines Milwaukee
Minneapolis St. Louis San Francisco
Emporia
Omaha Kansas Cm Denver Salt Lake Cm
Spokane Portland Seattle Vancouver Toronto
PRODUCT--Herman Nelson Invisible Radiator.
The Herman Nelson Invisible Radia tor is so designed as to be completely con cealed and truly invisible in any standard wall or partition as is shown in the accom panying illustration.
The Radiator itself is a single unit consisting of a special cast aluminum core acting as a steam container and a plurality of copper plates mounted on the core and acting as heating surface. The heat in the steam is transferred to the inner surface of the core, diffused through the metal and delivered from the outer surface of the copper plates to the surrounding air. Built of indestructible materials without joints, it will not wear out, rust, leak or burst.
88" high designed for use on blank wall where higher outlet is desired. Units can also be arranged for any special height of outlet above the minimum on special order at additional cost.
Various units are obtainable ranging in capacities of from 16 to 84 sq. ft. of direct radiation equivalent.
The Herman Nelson Invisible Radia tor may be used with any type of steam, vacuum or vapor heating systems.
A beautifully illustrated catalogue to gether with complete technical data will be furnished you on request to our main office at Moline, Illinois.
The Herman Nelson Invisible Radia tor is furnished as a complete unit. The Radiator being enclosed in a substantial steel cabinet having a cold air inlet opening at the base and a hot air outlet grille with damper at the top. The com plete unit is designed to be placed in a wall or partition, covered with metal lath and plastered so that nothing will show but a neat opening at the bottom and the outlet grille at the top.
The installation of The Herman
Nelson Invisible Radiator involves no
radical change in plan. The complete
unit is made 3%" deep to correspond with
usual framing materials. The only pre
paration necessary is to provide pockets
in the walls of the proper width and height
to receive the unit. In masonry walls,
however, bucks or some other suitable
means should be provided for securing
wire lath.
.
The Herman Nelson Invisible Radia tor is made in four sizes governed by the length of Radiator and designated nomin ally as 20", 30", 40" and 50". Also, each length of Radiator is regularly enclosed in two standard heights of cabinets, one of minimum height 20%" designed to fit under the average window, and the other
(See also page 419, Unit Heater Section.)
396
Control Equipment
ABSOLUTE<?^05> CORPORATION
ELKHART, INDIANA
Originators of Non-Deteriorating Mercury Switches
The CON-TAC-TOR Mercury'Switch has made the Automatic High Voltage Control possible. Switching Motors without a Relay was unknown before the Mercury Switch was used for this purpose. Now thousands of fractional H. P. Motors are switched on all types of service
without relays and are controlled on either Temperature or Pressure changes as desired.
A few CON-TAC-TOR Controls are listed below.
No. 64
Thermoswitch for Room Temperature Control-- Mounted on Wall and Switches ]/i H. P. Motor without a relay.
BOILER CONTROLS
A complete line--Safety Controls for Oil Burners. Primary Controls for Forced Draft Coal Installations.
No. 33 Pressureswitch for Steam No. 42 Vaporswitch for Vapor Systems. No. 56 Aquaswitch for Hot Water. No. 68 Furnaceswitch for Hot Air. No. 59 Bipass Gas Valve for Pilot Light. No. 80 Shutoff Oil Valve for Oil Line.
No. 98
Safety Controls for OIL BURNERS
Thermal Safety and Con trol on the Ignition with one moving part.
397
No. 48c
Draft Gages
Lewis M. Ellison
214 West Kinzie Street
CHICAGO, ILL.
Ellison Draft Gages --The famous Ellison
Inclined Tube Gage,
the recognized stand
ard of accuracy, was designed and intro
duced in 1896 by Lewis
M. Ellison. Water in glass tubes having a variable movement, an oil of constant response for the indicating liquid was adopted--permanency of calibration established. Today there is an Ellison draft gage for every draft from the small domestic furnace to the super-power boiler, for traveling engineers and for technical institutions.
The gages have sliding scales for setting zero, re quiring no refilling for several years. The stationary gages are black finished, of heavy construction, with white enameled scales, readings visible across the boiler room.
Bulletin of complete line on request
Single-Tube Inclined: This gage is for small boilers and furnaces, and for power boilers with operating draft not over the scale range of )4 inch. It is equipped with seal for 400 feet chimney height,
natural draft.
Single-Tube Inclined: This gage, for power boilers, is made in 1, 1%, 8. 8, 4, 5. 6, 7)4 inches scale range, suction or pressure.
Air Filter Gage: This gage indicates the differential
in hand air cleaning fillers, piped from the inlet and outlet sides, complete with connections and casing inserts. Pointer is set for the highest permissible in crease in differential for properly filtering the air-- the most satisfactory and efficient filter gage known.
Compound Inclined: This gage reads furnace draft to left, flue draft or differential to right of zero.
Open Type Inclined: For laboratories and lechnicalinstitutions, 1,1)4, 8,8,5 inches range. Suspen
sion plate relieves the gagefrom mounting strains, level adjusted with left suspension. Furnished with and without portable attachments. While metal scale. .
Combination Inclined: By turning the handle of
the cock, this gage reads furnace draft, flue draft or
differential, 1,1)4
range.
Portable Inclined: This gage was designed for traveling engineers, light end compact, 8 inches scale range. Furnished with attachments in pressed aluminum carrying case for one or two gages. Half-inch gage set ideal for healing engineers.
398
Lewis M. Ellison
Draft Gages
Two-Tube Inclined: By means of the differential system, this gage reads 1 to 1)4 inch furnace draft and differential simultaneously; flue and furnace drafts when cock is closed. Without differential system, 1 to 7)4 inches range.
Three-Tube Inclined: This gage is furnished with or without differential systems, with scales 1 to 1)4 inch range of like readings ora combination of readings from 1 to 7)4 inches scale range.
Four-Tube Inclined: This gage reads suction or pressure. 1 to 1)4 inches of like readings or a combi nation of readings from 1 to 7)4 inches.
Multi-Tube Vertical: This gage is for the duct and zone pressures of forced draft traveling grate stokers. It is made in 3, 4, 5, 6, 7, 8, 9, 10, 11, 12 tubes, in 7 and 10 inch scale range, with white enameled sliding scale, requiring no refilling for several years. By means of an equalizer all chambers are filled in one filling. Furnished with panel or for gage board, complete with back connection fittings. Printed paper scales are furnished for marking the load curves, Firing Guide, inserted over the metal scale by simply removing the cover..
Single-Tube Vertical:
made in four sizes, 4, 7, 12, 20 inches scale rangefor suction, pres sure or differential, for gage board and with and without panel. Like the stationary
inclined gages, the scale is white enameled, readings visible across the boiler room. With the slid ing scale feature, the gage requires no re filling for several years. The efficient pressure range is carried be tween pointers, set by removing the cover.
This gage is
399
Drying Equipment
1800 Foster Avenue
Air Conditioning, Varnish Drying, High Temperature Baking, Heat Treating and Heating Equipment.
HILE the designing,
Wmanufacture and in stallation of drying systems is an essential part of our business, we should
first be considered as engi neers--specialists in problems involving drying, high tem perature baking, processing, ventilating and air condi tioning.
The accompanying photo graphs illustrate two types of Drying Systems, Inc., high temperature equipment which deliver air at tem peratures ranging from 250 deg. to 700 deg. fahr. An air washer, or Automatic Filter, is usually installed in connec tion with these heaters. This equipment, built in unit sections, is ex ceptionally economical, as well as entirely safe. It is being successfully applied for drying and baking decorative finishes in many diversified industries and for the
The Lawrence Heater
processing of a number of different materials.
We manufacture an Induced Draft Heater, in which the working air is mixed with the products of combustion. This
equipment is particularly adaptable for drying articles which are finished with a preservative coating, and for the drying of such materials as abrasives, insulating pro ducts and foundry cores.
Practically every drying or heating installation presents new conditions and different engineering problems. . Our staff of experienced engineers, specialists in Air Condition ing, is available to analyze your individual requirements --without obligation. We invite correspondence and requests for literature cover ing any particular problem.
400
Drying Systems, Inc.
Drying Equipment
The utilization of waste
heat is a highly developed practice offering many op portunities for scientific waste heat equipment. Some un usual and very satisfactory installations of this equip ment have been made in a number of different indus tries, practically eliminating hitherto material operating costs. Wherever hot, effluent gases are available, great economies can be effected by conserving this heat. In many cases such heat can be used advantageously for dry ing, baking and space heating, since the effluent gasesare not mixed with the delivered air.
Typical Installation cf Automatic Air Con ditioning Equipment in Modern Bakery
AIR CONDITIONING
By arrangement with the American Blower Company, manufacturers of Sirocco
Equipment, and through the acquisition of a staff of specialists in this work, we are prepared to offer Air Conditioning Service in all its branches. Special installations for paper mills, bakeries, candy factories, public and manufacturing buildings have been conspicuously successful. Bulletins and information covering this subject will be forwarded on request. A consultation with our air conditioning specialists places you under no obligation.
The Phoenix Constant-Effect and the National Rotary Air Filters are advanced types of viscous film filters applic able for any service wherein clean air is required. These filters are automatic and comprise four important exclusive fea tures, namely:
Unvarying Cleaning Efficiency Constant Resistance Self Cleaning Minimum Operating Cost
Both Air Filters are built in sizes which are readily adaptable to any requirements --they are furnished in units, which range incapacity from 2,000 to 50,000 c.f.m. For larger air capacities, filters of multiple units can-be-furnished. Bulletins covering this [ij subject thoroughly and illustrating sizes and installations, will be sent upon request.
401
Expansion Joints
Established 1841
E. B. Badger & Sons Co.
Manufacturers of Expansion Joints for High and Low Pressure
OFFICE AND WORKS 63-75 Pitts Street, BOSTON, MASS.
SALES OFFICE 101 Park Avenue, NEW YORK
Badger Self-Equalizing Expansion Joints
The Badger Self-Equalizing Expansion Joints are made from special seamless copper tubing, fitted with cast iron or steel rings to control the expansion and provide equal distribution over each corrugation.
The joint is made in Standard and Extra Heavy patterns, and unless otherwise specified will be furnished with standard flanges for pressure up to 125 pounds and extra heavy flanges for all pressures from 125 pounds to 200 pounds.
Monel metal sleeves can be furnished fitting inside of the corrugations, for use with super-heated steam and other high temperature fluids.
f
Expansion Joints
Fig. i
Fig. 2
This type of Joint is furnished in 4 in. and 5 in. sizes, with four and eight cor rugations to take 1 in. and 2 in. of ex pansion. For smaller sizes, we furnish a 4-in. joint with companion flanges, bolts and gaskets, tapped for the size required.
This type of joint is made in sizes from 6 in. to 20 in; in clusive, with two, three, four or five corrugations, 2}4 in. deep, each corrugation taking J4 in. of expansion.
Specifications on Badger Expansion Joints Fig. 1
Size Inches
4 5
FOUR-CORRUGATION
.
Inches
Finished Weight Pounds
Price Each
12& 65 $76.00 I2& 78 82.00
EIGHT-CORRUGATION
Face to Face Inches
Finished Weight Pounds
Price Each
I9K 95 $102.00 \9% 110 110.00
Add to List Prices for Extra Heavy Flanges
$4.60 5.35
For sixes up to 3H in. inclusive, add $4.00 net to price of 4-in. joint for American Standard 125 pound companion flanges, bolts and gaskets; and $5.00 net for Extra Heavy American Standard flanges, bolts and
gaskets, tapped to size required. Fig. 2
Two Corrugation
Size Inches F/F Fin. wt Price
Inches Pound Each
Three Corrugation . Four Corrugation
F/F Fin. wt. Price F/F Fin. wt. Price Inches Pounds Each Inches Pounds EaUi
Five Corrugation
F/F Fin. wt. Price Inches Pounds Each
Add to List Prices for
Ex. Hy. Flanges
6 12V, 146 $126.00 16
200 $155.00 19
236 $187.00 22V, 285 $216.00 $ 7.43
8 12VV 187 156.00 16
250 188.00 19
293 211.00 22V, 345 243.00 13.25
10 12A 258 182.00 16
325 219.00 19
395 254.00 22V, 465 291.00 17.05
12 13
338 222.00 m 410 262.00 19V, 493 300.00 23
570 340.00 21.63
14 vi'/i 404 252.00 17
490 296.00 20
576 337.00 21V, 660 381.00 24.55
16 13Vi 476 285.00 17
570 334.00 20
672 382.00 21V, 765 431.00 34.15
18 14
546 320.00 Wi 645 374.00 21
760 428.00 24
861 483.00 53.84
20 15
669 388.00 18'/z 765 450.00 21'/* .911 511.00 24% 1010 573.00 56.48
Sizes larger than 20 in. can be furnished on special order. 402
"MOGUL" DOUBLE-END-GUIDED, TYPE F. L. J. (FLANGED) EXPANSION JOINTS
Built in all pipe sizes from l'A" to 6' diameters, for extremely high or low pressures
and temperatures, for saturated steam, superheated steam, hot or cold water, oil or
gas and other fluids.
, , ,. , , ,
,,
They are Double-End-Guided, have extremely deep packing chambers and unusually
long packing-gland take up. They have built-in Traverse Stops and large graphite
lubricating chamber. They may be packed while the line is hot and in an expanded
condition. Write for Bulletin with complete description and dimensions.
"MOGUL" DOUBLE-END-GUIDED, TYPE R. S. J. (RISER) EXPANSION
JOINTS
Built with screwed ends, in all pipe sizes from 54" to 4" pipe diameters. Write for Bulletin and dimensions.
403
Fans and Ventilating Equipment
American Blower Company
General Offices: Detroit
Branches and Sales Offices
City and Address
Telephone
Atlanta, Ga., Bona Allen BldgWalnut 5643
Baltimore. Md.. American Bldg........ ............. Calvert 3743
Birmingham. Ala., American Trust Bldg...__ :._Main 1278
Boston, Mass., 10 High St________________ Liberty 8347
Buffalo. N. Y,, White Bldg___ -__ ________ Seneca 2668
Charlotte, N. C., Piedmont Bldg...
___________ 1254
Chicago. III., 140 S. Dearborn St._____Central 1631-1632 Cincinnati, Ohio, Keith Bldg Main 1934
Cleveland, Ohio, Swetland Bldg____ .Superior 1066-2198
Columbus. Ohio, First Nat'l Bank Bldg., Main 3443 (Bell)
Dallas, Texas, Mercantile Bank Bldg.X-5518 ' Davenport, Iowa, Kahl Bldg.________--Davenport 2458
Denver. Colo.. 1228 California St...... ..... _Main 3155 Detroit. Mich., 2539 Woodward Ave...Cadillac 8880-8881
El Paso, Texas, P. 0. Box 240Main 2739
Grand Rapids, Mich., Shepard B!dg._Main 367 (Bell)
51122 (Citizens) Indianapolis, Ind., Continental Bank Bldg.___ Main 4545 Kansas Crrr, Mo., Mutual Bldg.....Victor 5965
Louisville, Kt., 428 South Fifth St.. Main 1881,City 1223
City and Address
Telephone
Los Angeles, Cal., Detwiler Bldg................. TUcker 9440
VAndike4838 Milwaukee, Wis., Majestic Bldg......................Grant 1986
Minneapolis, Minn., 808 La SalJe Ave.............. Main 0034
New Orleans, La., 344 Camp St.... ..........
Mpin 5977
Newark, N. J., 79 Ogden St................ Branch Brook 3612
New York, N. Y., 50 Church St................. Cortlandt 1010
Omaha, Neb., Peters Trust Bldg................... ATlantic 6S48 Philadelphia, Pa., 112 S. 16th St.
Rittenhousc 6393-94 (Bell)
PrrrsBURGH Pa., Oliver Bldg..... ................... Atlantic 1820
Portland, Ore., 1002 Pacific Bldg..............Broadway 7866
Rochester, N. Y., Cutler Bldg.... .................. --.Main 4590
Salt Lake Citt, Utah. Dooly Bldg., Wasatch 1680-1681
San Francisco, Cal., Rialto Bldg...............'...Kearney 2325 Seattle, Wash., Leaiy Bldg.............................Eliott 0713
Schenectadt, N. Y.. 147 Jay St......... Schenectady 7622-W
St. Louis, Mo., Boatmen's Bank Bldg............... Main 2395
Stbacuse, N. Y., 1611 E. Genesee St___ __ Warren 8054-J
Tacoma, Wash., 1127 St. Paul Ave....... ............,,Main 3150
Tampa. Fla.. 206 South Franklin................................ -3453
"Sirocco" Fans and Blowers for heating, ventilating, cooling, drying and mechanical draft.
-"Sirocco" Utility Blower--a compact.
- ^durable ventilator for installation with ducts.
"Sirocco" Air Washer -- for puri fying and humidifying air for dehumidifying and cooling.
"ABC" Air Wash ing and Cooling
Fan--an automatic, highly effective and durable unit that provides for puri fication, humidifica tion and cooling.
Venturafin Unit Heater-- one small unit is equal to 500 feet of direct
radiation-- occupies only one-fourth the space and has only one-tenth the weight.
"Ventura" Disc Fan for operation under free air delivery conditions -- a complete ven tilation system in itself.
Descriptive Catalogues sent upon request. 404
-i*
Fans and Ventilating Equipment
Buffalo Forge Company
Associated With
Carrier Air Conditioning Company of America
Buffalo, N. Y.
BRANCHES
New York. N. Y., 39-41 Cortlandt St.
.Washington. D.C., 418 Washington Loan & Trust Bldg.
Philadelphia. Pa.. 1302 Land Title Bldg.
St. Louis, Mo., 515 Chemical Bldg.
Boston, Mass.. 10 Milk St.
Cincinnati, O., 604 Mercantile Library Bldg.
Cleveland. O.. 368 Rockefeller Bldg.
Minneapolis, Minn., 430 Oak Grove St.
Pittsburgh. Pa., 927 Union Arcade
Denver, Colo.. 1718 California St.
Detroit. Mich., 2051 W. Lafayette Blvd.
Los Angbles, Calif., 220 Black Bldg.
Chicago, III.. 562 W. Wash. Blvd.
. Indianapolis. Ind., 725 Continental Bank Bldg.
Atlanta, Ga., Candler Bldg.
San Francisco, Calif., 307 Flatiron Bldg.
Wash., 905 Olympic Way
CANADIAN BRANCH Canadian Blower and Forge Co., Kitchener, Ontario
CARRIER AIR WASHERS
One-piece eliminators and scrubbers that are easily assembled in a few minutes and give greatest cleaning effect known. Spray nozzles prevented from clogging by tank-width screen. Original efficiency is maintained indefinitely by a few min utes flushing out each week.
Power Blowers and Exhausters have cast iron housings and are for belt or direct motor drive.
Mill Exhausters. Standard and slow speed, high efficiency, and single or double exhausters are furnished for handling refuse or dust. For belted or direct drive.
Carrier A ir Washer with Side Plate Removed. Note Spray in Operation
Buffalo Niagara Conoidal Fans handle large quantities of air at high efficiency under big overloads in industrial plants. Low speed and great capacity well suited to belt drive.
Buffalo Beezo Propeller Fans are very useful for remov ing steam, odors or foul air in shops, millsand factories. Belted or direct motor driven types.
Buffalo Stoker Fans have highest efficiency at normal load where it counts most, utmost proven reliability, and high speed for direct connection to turbine or motors. They completely pro tect motors.
Buffalo Duplex Conoidal Fans, shown below, maintain even pressure and good efficiency over a greater range of air demand than is possible with any other construction. Best adapted to schools, public build ings, offices, etc. Moderate speed for direct connec tion to motor.
Send for Catalogue
Buffalo Products
Conoidal Multiblade Fans Carrier Air Washers
Pipe Coil Heaters..
Ventilating Sets Disc Fans Humidifiers
Generator Coolers Gas Scrubbers * -- Stoker Fans Induced Draft Fans Planing Mill Exhaust Fans
405
Dust Collectors Pressure Blowers ' Drying Apparatus
Spray Nozzles Forge Shop Equipment
Fans and Ventilating Equipment
Clarage Fan Company
Kalamazoo, Michigan
Boston, Mass. New York City, N. Y.
Detroit, Mich. Chicago, III.
f
Denver, Colo. Los Angeles, Calif.
Springfield, Mass. Cincinnati. Ohio
Philadelphia. Pa.
Minneapolis. MjnW.
Omaha, Nebr.
Houston. Texas
Pittsburgh, Pa. Charlotte. N. C.
Cleveland. Ohio
Birmingham. Ala.
St. Louis. Mo.
. South Bend. Ind.
Huntington, W. Va. Buffalo, N. Y. New Orleans, La.
Consult Telephone Directory for Street Address of any of above Branch Offices
Products--Heating and Ventilating Fans and Allied Apparatus, Multiblade Fans, Air Washers, Exhaust Fans. Pressure Blowers. Mechanical Draft
Equipment, Heaters. Vertical Steam Engines.
New Type HV Fan--Tested in accordance with
the Standard Test Code, prepared by National
Association of Fan Manufacturers and American
Society of Heating and Ventilating Engineers,
Clarage New HV Multiblade Fan, shows 77 per cent
maximum efficiency. Average multiblade fans show
approximately 63 percent maximum efficiency. This
higher efficiency allows saving of 15 to 20 per cent
in power requirement to drive. Lower power require
ment often allows use of smaller motor or engine,
saving 10 to 15 per cent. Often HV Fan one size
smaller will meet specifications, saving 15 to 20 per
cent in first cost of fan equipment.
'
Built in complete range of sizes for heating and ventilating schools, offices, theatres, churches, factories, etc. Capacities from 500 to 236,000
Clarage Type V Washer cleansing and humidi fying air in large hotel.
Clarage HV MulHblade Fan installed for schoolhovse ventilation.
C. F. M. Constructed to a quality standard for con tinuous duty at low upkeep. Furnished with "bab bitted, self-aligning, ring-oiling bearings, having special felt washer feature which keeps oil in and dirt out. Can be motor, engine or turbine drivenby belt or direct connected.
Improved Type V Washer--Spray nozzles so perfected that dense mist screen is obtained at lower pump pressures, effecting marked saving in horse power for operating pump. Spray nozzles cannot clog. New construction of eliminator plates greatly simplifies erection. Suitable for all types of washed air installations. Performance fully guar anteed. Range of sizes to cover every requirement.
Cooperative Service--Our engineers have compiled elaborate data on every Clarage product. This data will prove valuable in selecting the most practical and efficient equipment. We will gladly cooperate in every way possible. Write for Clarage literature or ask to have a Clarage Engineer call.
CLARAGE TYPE HV FAN CAPACITIES
1200' OUTLET VELOCITY
1800' OUTLET VELOCITY
Size
of Fan
Volume of Air
W S. P-
!'S. P.
Volume of Air
*S. P.
PS. P.
V/2*S.P.
V S. P.
C. F. M. R. B. R. B. P.M. H.P. P. M. H. P.
C. F. M. R. B. R. B. R. B. R. B. P.M. H P. P.M. H. P. P. M. H. P. P.M. RP.i
1 Vi 1J/4 2
2'A
?by/z
2,322 3,156
4,128 5,220
6,444 9,288 12,660
16,524 20,880
25,800
402 .31
345 .43 301 .56 267 .70 242 .86 201 1.24 170 1.80 149 2.35
132 2.96 119 3.65
549 .55 471 .74 411 .97 364 1.22 330 1.51 275 2.17 236 2.90 206 3.79
183 4.79
165 5.92
3,482 4,734 6,192 7,830
9,666 13,932
18,990 24,786 31,320
38,700
480 .68 412 .93 360 1.21 319 1.53 289 1.88
241 2.7! 199 3.70 175 4.83 155 6.09 139 7.54
579 .97
497 1.32
433 1.73 384 2.18 348 2.69 290 3.88 244 5.07
214 6.62 189 8.35 171 10.3
683 1.30 585 1.77
512 2.31 453 2.92 410 3.61 341 5.20 286 6.77 250 8.82 222 II.I 200 13.8
1.65 2.24 2.93
3.70 4.58 6.59
8.70 11.4 14.4
17.8
Range of Sizes include No. K to No. 9 inclusive-
406
Fans and Ventilating Equipment
Ilg Electric Ventilating Company
General Offices and Works:
2880 N. Crawford Avenue
CHICAGO, ILL.
NEW YORK 13 Park Row
PHILADELPHIA 325 Commercial Trust Bldg.
BALTIMORE Hearst Tower Bldg.
ST. LOUIS
_,
1421 Syndicate Trust Bldg.
CLEVELAND 1314 Schofield Bldg.
PITTSBURGH 1024 Bessemer Bldg.
MINNEAPOLIS 442 Builders Exchange Bldg.
CINCINNATI 405 Union Central Bldg.
.
DETROIT 204 Owen Bldg.
BOSTON 136 Federal St.
INDIANAPOLIS 905 National City Bank Bldg.
ROCHESTER 941 Granite Bldg.
.
Ilg Universal Blowers--Direct Connected and Belted--no bearings in inlet. Ball-bearing, grease lubricated motors. Sizes 10 in. to 100 in.
Jlgair Unit Heaters with Patented Ad justable Deflector. For floor type or ceiling type. Lowest power consumP' lion--easily connected to outside air.
Hg Self-Coded Motor Propeller Fans, all sizes for any current or voltage, kept in stock lg in. to 72 in.
CATALOGS
Complete Catalog, 200 Pages Condensed Catalog, 48 Pages
BULLETINS
Unit Heaters
.
Garage Heating
*
Fog Reduction and Steam Removal
Restaurant Ventilation
Residence Ventilation
"
Store and Office Ventilation
.Power Roof Ventilators
Farm Ventilation Fans and Blowers for Railroads
Industrial Ventilation
Ilg Fans Everywhere
407
.
Fans and Ventilating Equipment
The New York Blower Company
2254 S. Halsted Street, CHICAGO ILL. SALES OFFICES IN PRINCIPAL CITIES
Fans--Blowers--Unit Heaters--Air Washers--Fan Furnaces--Ventilators
TYPE ME Fans for heating and ventilat ing public buildings, schools, theatres, factories, mines, etc. Fans for mechanical draft, conveying systems, foundries, gas plants, stokers. Pulley driven or motor driven disc and propeller fans of wide range. Write for bulletin 100 giving complete data.
PEERLESS AIR WASHERS for public
and industrial buildings. Cooling systems
for theatres, auditoriums, churches, de
partment stores, etc. Humidifiers and
de-humidifiers for special processes and
drying, as paper, textiles, tobacco, glue,
leather and wood.
*
COMET UNIT HEATERS for economi cal heating and ventilating where steam is used. Write for bulletin No. 85 describing these compact units and how efficiently they heat garages, factories, foundries, offices, etc.
THERMAIR FAN FURNACE equipped with Heavy Duty Disc fan occupies a floor space of six feet square. Delivers over 600,000 B.t.u. per hour and will heat any building with 10,000 square feet floor area. Easy to install as no duct work is needed. Bulletin No. 90 gives complete data.
SPECIAL DESCRIPTIVE BULLETINS OF EACH PRODUCT WILL BE GLADLY SENT.
408
Fans and Ventilating Equipment
Atlanta, Ga. Boston, Mass.
Buffalo. N. Y. Camden, N. J.
Chicago. 111. Cincinnati. O.
Cleveland, O. Dallas, Tex. Denver, Colo. Detroit, Mich. Hartford. Conn.
Indianapolis, Ind. Kansas City, Mo.
B. F. Sturtevant Co.
Hyde Park, Boston, Mass.
PLANTS LOCATED IN
Camden. N. J.
Htdb Park, Mass.
Sturtevant. Wis. Galt, Ont.
Framingham, Mass. Berkelbt, Cali?.
Los Angeles, Cal. Minneapolis, Minn.
Montreal, P. Q. New York. N. Y. Pittsburgh. Pa.
Portland, Ore. Rochester, N. Y. St. Loui9, Mo.
Salt Lake City. Utah San Francisco. Cal.
Seattle, Wash. Toronto, Ont. Washington, D. C. '
STURTEVANT PRODUCTS
The wide application of Sturtevant Products can hardly be discussed here; so for the convenience of the architect, engineer and contractor the publications listed below have been prepared to aid in the selection of proper equipment for industrial, public, and private buildings of all types and sizes. We will gladly send you any of these publications on request.
ENGINEERING SERVICE
Each office, address shown above, maintains a force of trained engineers who are always ready to analyze the conditions of any prospective installation and make recommendations for suitable equipment. We hope you will avail yourself of their services.
CATALOGS
Heating and Ventilating Equipment
No. 227 Heating and Ventilating Layouts. 271 Multivane Fans. 283 Autoforce Ventilators. 290 Silentvane Fans. 297 Air Washers. 306 Hot Blast Heaters 322 Coal Burning Blowers. 323 Unit Heaters, Industrial. 328 Propeller Fans. 329 Unit Ventilators, Schoolhouses. 332 Ventilating Sets. 337'Monogram Fans.
1270 Motors. "
Power Plant Equipment
No. 239 Steam Engines. 255 Generating Sets. 271 Multivane Fans 275 Gear Transmissions. 301 Cindervane Fans. 311 Steam Turbines. 330 Turbovane Fans. 331 Air Economizers. 334 Lead Coated Steel Tube Econo mizers.
1270 Motors. Turbo-Undergrate Blower Speci fications.
Collecting and Conveying Equipment
No. 291 Pneumatic Collecting and Con veying Systems.
302 Steel Plate Planing Mill Ex hausters.
303 Reversible Planing Mill Fans. 291 Dust Collectors. 337 Monogram Exhausters. 1270 Motors.
Drying Equipment
No. 299 Drying Systems. 314 Moist Air Dry Kilns. 316 Industrial Dryers.
1270 Motors.
Blower Equipment
No. 257 Steel Pressure Blowers. 1266 Big Midget Blowers.
Vacuum Cleaning Equipment
No. 320 Stationary Vacuum Cleaners. 324 Heavy Duty Vacuum Cleaners. Household Vacuum Cleaners.
409
i
Fans and Ventilating Equipment
L. J. Wing Mfg. Go.
Branch Offices in Principal Cities
663 Hudson St., NEW YORK Phone: Chelsea 0027-0030
Factory: NEWARK., N. J.
Manufacturers of Wing Featherweight Unit Heaters, Wing Turbine and Motor Driven Blowers, Wing-Scruplex Fans and Exhausters
WING FEATHERWEIGHT UNIT HEATERS
The Wing Featherweight Unit Heater, expressly designed for overhead
installation, makes available for any industrial building a heating system that
leaves all floor and'wall space absolutely unobstructed. The success of this
system has been proven by the satisfactory operation of several hundred units
in industrial buildings of every kind and description.
The installation of Wing Featherweight Unit Heaters is extremely simple,
due to their light weight and small dimensions. For instance, a unit equal in
heating effect to 12,000 sq. ft. of direct radiation, weighs only 332 pounds.
A few advantages attending the installation of Wing Featherweight Unit
Heaters may be briefly summarized as follows:
.
The heated air from the units, located at or near the ceiling or roof, is
delivered directly downward toward the floor, heating the working level first.
Chilled areas, caused by opening of doors, are almost instantly brought back
to normal temperature by this downward method of heating.
' Since the air recirculated by the heaters is taken from the upper spaces and
delivered to the lower levels, it is evident that an active circulation of air from
the ceiling to the floor is continuously maintained and that, therefore, excessive
heat is not allowed to accumulate in the upper spaces, as is the case with any
system of heating that allows the heat to rise to the ceiling immediately, as it
does in the case of direct radiation.
..
The steam and return lines are carried entirely overhead, eliminating costly
pipe trenches which are necessary when radiation is placed at or near the floor.
All vertical type heaters are furnished with ball bearing motors that do not
require attention more than once a heating season.
METHODS OF INSTALLATION
The cuts show three different methods of installation, the units in each case being located well above the head line, out of the way. The third illustration shows the high ceiling type heater installed thirty feet from the floor above a traveling crane. The column of heated air leaves the heater with sufficient velocity to strike the floor with considerable force from this point, but by. the aid of adjustable diffusers the column is divided and directed so that no objec- . tionable velocity is felt at the head line. The best and most economical installation of Wing Featherweight Unit Heaters is when they are placed
close to the roof or ceiling.
Low Ceiling Type High Ceiling Type
zmqEnd 6
.HZK ZEES a `I ^ n
|
Condensed Table of Engineering Data
Unit "AxA" B Size in. in.
c
in.
D in.
Air ci.m.
Motor hp.
Temperature Room Leaving
B.t.u. per Hr.-
Available
Approx.
Shipping Weight
Lbs.
13-4-12 19% 25 75
6 1150 % 60 110 69.500 185
17-3-12 22% 27% 27% 6 1950 H 60 110 96,900 212
22-3-12 27% 27% 27% 6 3200 H 60 112 162,000 270
22-4-12 27% 77% 27*/, 6 2800 M 22-5-12 27% 27% 27% 6 2600 M
60 60
122 169,000 133 180,000
280 288
25-4-12 32% 28V, 28V, 7 4800 Vf 60
122 289,500
320
25-5-12 32% 28% 28V, 7 4500 'A 60 133 311,400 332
30-4-85 40% 37% 37% 8 6900 l
60 122 416,000 360
30-5-85 40% 37% 37V, 8 6500 1
36-4-85 46% w 39% 8 9600 2
60 133 450,000 365 60 122 579,000 504
36-5-85 46% 39'/, 39% 8 9000 2
60 133 623,000 528
Space does not permit complete table for other room temperatures but this data will be gladly furnished on application.
410
Medium Ceiling Type Horizontal Type
L. J. Wing Mfg. Co.
Fans and Ventilating Equipment
[etAWM*Gcuisa*fioCjOoNoTidAmCCiTQnWwMTisnoMfmcmomrupwmoiercxtJl
WING-SCRUPLEX EXHAUSTERS
Wing Scruplex Exhausters consist of the highly
efficient "screw propeller" fan and cased in appro
priate manner with a motor on the outside where it
is clean, cool and easy of access. They are used in
duct work where the resistance is low and being de signed in the form of an elbow fit snugly in any
iI
WinQ-Serwplex Exhauster
line. The accompanying diagrams show the methods of installation.
Proper SelectiorTof Exhausters--Where par ticularly quiet operation is de
sired, as in offices, residences,
hospital wards, churches theatres, etc., use lowest
speeds in all sizes. For toilet
rooms, laboratories, motion
picture booths, stock-rooms, etc., use any speed in sizes 1
and2;lowand mediumspeeds
"Wing-Scruplex " Exhausters
in all other sizes. In indus trial plants, hotel
and restaurant
Size
Inlet Sq. In. Outlet Round,
jj -ce.
Free Air
Cu. f. m.
Hp.
.15 in.
Cu. f. m.
Hp.
.25 in.
Cu. f. m.
Hp.
.40 in.
Cu. f. m.
Hp.
.50 in.
Cu. (. m.
HP.
kitchens, enginerooms, workshops, etc., use any speeds.
1-A 2-A 2-B
3-S 3-A 3-C
1ft 10% 1750 13% 14H 1150 13% I43< 1750 16% 17% 850 W/. 17% 1150
16V, i7y, 1750
850 0.052 1440 0.060
2050 0.195
2130 0.090 2700 0.180
4000 0.600
630 0.054 330 0.060 950 0.069 395 0.090 1895 0.208 1695 0.216 1155 0.248 1250 0.110 2150 0.195 1550 0.221
3720 0.635 3510 0.655 3150 0.700
750 0.285 2810 0.720
The accompanying table gives perform
ances at static presures up to M in. Com plete table up to 1 in. static on request.
4-S ?1 21% 850 2850 0.100 2200 0.125 1610 0.150
4-A 21 21V, 1150 3575 0.170 3150 0.200 2775 0.220 1950 0.245 1550 0.280
4-C 21 2iy, 1750 5400 0.540 5160 0.600 4990 0.650 4670 0.710 4440 0.750
5-A 25 25 1150 5200 0.330 4720 0.380 4250 0.440 won 0.530 2610 0.600
5-B 25 25 1/50 8000 1.330 7740 1.360 7540 1.400 7175 1.480 6900 1.540
6-A 30 30 600 5500 0.210 3725 0.250 2375 0.330
6-B 30 30 850 7400 0.550 6280 0.600 5450 0.740 4000 6.830 3400 0.960
6-C 30 30 1150 10250 1.500 9520 1.550 8950 1.570 8000 1.620 7340 1.760
WING-SCRUPLEX FANS
Wing Scruplex Fans are built in the following sizes: 10 in., 13 in., 17 in., 22 in., 25 in., 30 in., 36 in., 42 in., 54 in., and 60 in. Capacities from 950 C. F. M. to 33,000 C. F. M. Up to 25 in. diameter, propellers are made of cast aluminum alloy while the larger sizes are of pressed steel.
Wing-Scruplex Fan
WING TYPE E M MOTOR DRIVEN BLOWER
Wing motor-driven Blowers are installed in heating boilers so that
low cost Buckwheat coal can be burned with great savings in fuel bills
and with better heating results. They are also used in industrial
plants where motor drive is preferred to turbine drive.
The'Wing E M Blower is a simple compact unit of motor, fan, and
casing, of the same general design as the Wing Turbine Blower, the
first individual forced draft fan blower ever built Where Wing units
cannot be set directly into the brick base of the boiler, they are equipped
with feet or base and mounted to the floor with the discharge connected
to the ashpit by a short sheet metal duct.
Motors are fully enclosed and
Ask for Bulletin 36
dustproof. Because of this feature
they stand up for years in the dusty
atmosphere of boiler rooms without
repair. Another feature of prime im
portance is variable speed control;
this permits of regulation without the
use of dampers and saves power.
Wing Blowers are cutting down
fuel bills in hundreds of schools,
apartment houses, lofts, hotels,
churches and institutions throughout "
the country. Booklet 36 describes
Wing motor-driven units.
Information on Wing turbine-
TyPe E M Blower
driven units in Bulletin 77.
Typical installation in a New York, apartment house where the use ofBuckwheat coal in place of domestic sizes is satring the owner a large part of his previous fuel bill. In the right foreground is shown an E M Blower connecting directly into the rear end of a cast-iron hot water boiler; the E M Blower in the background serves the two steam heating boilers. Note how com pact this installation is--a characteristic of Wing E M Blower layouts.
411
Foundations, Cor\
Cork Foundation Company
315 Fifth Avenue, New York
NOISE is a great detriment to work. It hinders and annoys. Elimi nation of vibration and the noise made by the whir of fans and motors is possible by the use of "ABSORBO" beneath the base of the apparatus--as shown in the illustration.
"ABSORBO" is made of prepared strips of natural cork \]/2 in. thick, set in rigid steel frames, with lateral braces wherever required. In the process of preparation the cork is impregnated with creosote to render it impervious to oil and water and to preserve its natural oil and moisture.
.
In most installations where "ABSORBO" is used, it is placed under the timber frame of the machine. In foundations for engines, com pressors, turbines and large pumping units, it has been advantageous to place it under the concrete base, with a layer on the sides of the con crete foundation to eliminate the horizontal vibrations. Specifications for its installation and test data on its effectiveness in absorbing vibrations and eliminating noise will be gladly furnished.
412
Foundations, Cor
The Korfund Company
231 EAST 42nd STREET
Boston Philadelphia Pittsburgh Cleveland Columbus
ABSORBS
VIBRATIONS
New York, N. Y.
Cincinnati
.
St. Louis
Chicago
Detroit
. Ottawa, Can.
KORFUND
FOR THE ISOLATION OF NOISE
AND VIBRATION
The essential qualities of a good isolating material are: permanent and sufficient elasticity; structural strength to sustain load; durability and indestructibility; water, oil, acid and insect-proof.
These requirements make artificially, pre-compressed materials such as special felts, layers of woven materials, com pressed cork, etc., unsuitable as they must be pre-compressed to such a density that their elasticity is made illusory. The isolating effect or the materials themselves will be destroyed through the action of oil and water.
Pure natural cork, and by that is meant the cork as it is taken from the bark of the Cork Oak, possesses the necessary qualities of the ideal isolating material to a greater degree than any other material.
Experience extending over many years has proved that natural cork is indestruc tible, impervious to water and acids if properly treated, and possesses such high resilience that it is considered the best isolator for all kinds of machinery.
' Korfund pads are made up in the following way:
The strips or blocks of natural cork, specially selected for this purpose, are care fully cut to size and bound together with an iron frame which is not quite as thick vertically as the cork. No artificial binder is used for the reason that such binder hardens and destroys the resilient, shock absorbing and sound-deadening effect of the cork, or is liable to be dissolved through the action of oil and alkalis.
The frames of all Korfund plates are
made of heavy steel, reinforced by internal longitudinal and lateral struts. This con struction is substantial and strong and gives adequate support to the cork strips.
The cork used for Korfund pads is treated by a special process to preserve the normal degree of moisture which is so vital to it. Korfund pads thus treated will not decompose or decay.
With larger pumps, compressors and other machinery, especially if they are of the reciprocating type, Korfund must be arranged under the foundation block proper. Then the weight of the foundation block will help to steady the machine and the foundation bolts will not have to pass through the cork pads. Proper side isola tion has to be provided where necessary. With smaller pumps and compressors of the centrifugal type, also with fans, the machinery may be placed direct on Korfund. In such a case timber or a steel plate has to be placed on Korfund before mounting the machinery in order to equally distribute the weight of the ma chine all over the surface of the cork.
Korfund pads are made up in any size and thickness required. We carry, a large stock of many different sizes for immediate delivery. No fitting, cutting and conse quent waste of material will result on the job. They can be installed by unskilled help.
Many thousands of installations of Korfund for all kinds of machinery are in use all over the world. They-are silent witnesses of its ability to absorb noise and vibration.
We are consulting engineers specializing in the isolation of noise and vibration. Our advice is at the disposal of our cus tomers. Write for catalogue "H".
'
413
Furnaces, Warm Air
Langenberg Manufacturing Co.
4549 No. Euclid Ave. :: ST. LOUIS, MO.
Dealers in all parts of the United States
A QUALITY COMBINATION
A g^gMTgAcMg FURNACE;
Twin Sirocco Fan with S K F
Bearings; New Design Casing. All
assembled into the
.
UNIT HEATER
FUELS-- Any coal, coke or oil.
Operates by fan or gravity. No byrpass dampers necessary.
Churches, schools, stores, audi toriums, small factories, residences and garages where these plants have been installed and now operate successfully are our best references.
We design and install our own systems anywhere in the United States or Canada.
DATA ON
UNIT HEATER
No. Diam. Diam. Diam. Depth Area Diam. Height Height Height of Unit of Casing Drum Fire Pot Fire Pot of Crate of Rad. of Rad. of Drum Overall With Fan Units Inches Inches Inches Inches Sq. In. Inches Inches Inches One-Way Outlet
Diam. Smoke
Pipe Inches
U-453 U-513 U-573 U-661 U-66I-H
Area of Outlet In Sq. In.
45 22 20 15 283 10 51 26 23 15 380 11 57 29 26 15 490 13 .66 32 29 19 616 16
66 32 29 19 616 18
Size at Feed Door Openings
Inches
Cu. Ft. Air
per Minute Fan
Cu. Ft. Air
per Minute Gravity Ap proximately
R.P.M. of
Fan
35 35 38 41 58
Diam. of Fan Inches
58 8'
9
59
8' .
9
62 8'-9* 10
69 9'-6' 10
97 12'
10
H. P. Required
Approximate B.t.u.
Shipping Guaranteed
Weight at 9 lb. per
Including
sq. ft.
Motor Lb. (See Note)
452 616 707
1018 1018
12x13'/z
\2x\y/2
12xI3'/2 12x13'/2 12x13V4
3500
3900
4400 5900 7000
1400 1570 1750
2400
2600
365 18 390 18 314 21
238 24 275 24
A
Vi V,
%. 1
1350 1550
1850
2150 2250
180.576 252,396
314.640 383.040 406,980
Note:--When burning Illinois Coal producing about 12,000 B.t.u. as ordinarily burned. Other fuel will give different rating. . Unless otherwise specified, furnace will be rated on 9 lb. of coal per sq. ft. of grate when estimated.
414
Grates
Neemes Foundry, Inc.
Established 1874 Branches in 20 Cities
TROY, N. Y.
PRODUCTS:
Neemes Improved Shaking and Dump
ing Grates; Superior Dumping Grates;
Hand-operated Stokers.
Also all types of Stationary Grates.
NEEMES GRATES: Suitable for Burning All Kinds of
Fuel: Neemes Improved Shaking and Dumping Grates and Straight Dumping Grates . are built to fit rectangular and circular furnaces of internally and exter nally fired boilers and can be installed without alteration of brickwork.
Grates are suitable for all sizes and grades of anthracite and bituminous coal, slack, lignite, tan bark and admixtures of coal and sawdust.
No screws or bolts are used in grate proper, thus removal and replacement of parts is greatly facilitated.
Neemes Superior Dumping Grate
Adapted for Use with Forced Draft: Both the Neemes Improved Shaking and Dumping Grate and the Neemes Superior Dumping Grate are exceptionally well adapted for use with forced draft. . SERVICE RECORD OF NEEMES GRATES:
Neemes grates have been performing satisfactory service for the past 25 years and have been installed in boilers repre-. senting over 250,000 hp. NEEMES HAND-OPERATED STOKER:
The Neemes Stoker, operates at 15degree pitch which obviates the necessity of a deep ashpit. The coal is fifed onto the dead plate and coking bars at the front of the stoker only, and the large angle to which the stoker bars are raised during
Neemes Improved Shaking and Dumping Grate
Dominant Features of Neemes Grates: Patented lock box holds shakers in place' and prevents their being forced up into the fire and burned, yet does not interfere with ready removal of shakers.
Fire shaken and dumped with very little effort. Dead air spaces reduced to a minimum. No special setting required, as grates rest on usual bearing bars or dead plate lip. All. castings spaced to allow ample side and end play, preventing warp ing and buckling.
Clinkers cut and crushed in center of concave surface of teeth and not on the point--no broken teeth result. Clinkers cut and ashes shaken out without breaking up fuel bed or loss of unburned fuel; periodical slicing of fires is not necessary.
Grates do not clog with ashes, as air slots are widened out below the surface, permitting any ash small enough to pass top space to fall into pit.
.
Neemes Hand-operated Stoker
is kept at a uniform depth, and at the same time proper progress of the fuel is assured without mere churning. The dump plate is shaped to prevent avalanching of the fuel during dumping and to assure being completely covered with fuel after dumping. Side bars are anchored in place at the forward end only and rest in recesses at the_rear end, so as to provide for free expansion.
Bulletins and additional data on Neemes Grates and Stokers will be sent on request.
Heaters, Air
rf
Home Office 1490 S. Vandeventer Avenue, St. Louis, Mo. Eastern' Office 1013 Flatiron Bldg., New York, N. Y.
Baltimore.. Boston........... Buffalo........ Chicago......... Cleveland.. Detroit.........
...2 E. Lexington Street .............. 723 Little Bldg. ______702 Morgan Bldg. ........... 1703 Fisher Bldg. .........612 Marshall Bldg. ........... 308 Scherer Bldg.
Washington.--...................
Indianapolis........................... ......... 621 Illinois Bldg. Kansas City................. .................. .412 Mutual Bldg.
Philadelphia...................... 1011 Pennsylvania Bldg. Pittsburgh.......................... :......................715 Magee Bldg. Seattle.................................929 Dexter Horton Bldg.
Spokane. ..........................................409 First Avenue .714 Evans Bldg.
Sales Offices in Principal Cities
Factories at ST. LOUIS, MO. and ELIZABETH, N. J.
Sole and exclusive manufacturers of Skinner Bros. Steam Coil Heater, Skinner Bros. Direct Fired Heater, Skinner Bros. Lightweight Copper Heater, Skinner Bros.
Revolving Siphon Ventilator, Skinner Bros. Slow Speed Low Power Dust Collect ing System, Skinner Bros. Patent Fan Blast Dryer Outfit, and exhaust heads, blow piping, -slow speed fans, buffing and emery wheel systems, machine guards.
SKINNER BROS. STEAM COIL HEATER
Recommended for heating, ventilating, air
conditioning industrial buildings, regardless of
size, whether of permanent or temporary con
struction, sawtooth or monitor, single or
multistory. In paper and pulp mills, dye-
houses, packing plants,, laundries, dairies and
buildings in which steam vapor, condensation
and drippage are troublesome, Skinner Bros.
Steam Coil Heaters are installed to eliminate
these conditions.. Installations in thousands of
buildings throughout the country demonstrate
their versatility and ability to heat automobile
factories, furniture factories, garages and repair
shops, railway shops, foundries, shoe factories,
stone and marble works, flour mills, textile
mills, warehouses.
Skinner Bros. Steam Coil Heaters are built
in ten standard sizes and three models deliver
ing from 75,000 to 4,630,000 B.t.u. per hour,
and ranging in floor space occupied from
2 x 2 ft. to 7 x 7 ft. However, they are con
structed in sizes and dimensions to flt the
requirements they are called upon to All in
capacity and space occupied. For use where
floor space is at great premium we supply an inverted type for overhead suspension.
Outlet hoods are designed to accomodate the conditions found in the buildings, one,
two, three way, round or rectangular, being supplied.
Skinner Bros. Steam Coil Heaters function equally well with either live or exhaust
steam, and high or low pressure may be used. The coils of. every heater are tested with
150 lbs. of hydraulic pressure before leaving the factory. Whatever power is available
may be used to propel the fans.
The performance of the heaters is guaranteed when they are installed as directed by
our engineers.
.
In figuring the approximate capacities of the heaters engineers may be guided by the
following for general purposes:
.
For each square foot of floor space occupied by the heater the power consumption for
driving the fan is 1/12 H. P., and the air handled will be 400 to 450 C. F. M. with an
output of 30,000 B.t.u., when steam pressure on the coils is five pounds and ingoing
air at 60 deg.
416
Skinner Brothers Manufacturing Company, Inc.
Heaters, Air
Heater Designation
DIMENSIONS AND CAPACITIES Skinner Bros. Two-Fan Four-Inlet Steam Coil Heaters
Height*
Floor Space Covered
H. P. Motor
R. P. M.
C. F. M.
B.t.u per Hour, Air Entering at 0^ F.
5 lbs. Steam
100 lbs. Steam
y y/r
/ Vi 490 1,850 125,000
\1
635 2,450 159,000
206,000 265,000
120Bf
6' 2'/2'
V 4"x2' 4" r /,
490 635
1,850 2,450
142,000 185,500
30 y i'/i
/i l2
490 4,500 352,400 620 5,600 460,000
236,500 309,000 589,000 770,000
30B 6' 6'/j'
/1 l2
490 4,500 429,009 620 5.800 544,000
716,000 910,000
6' \'/l
(1 21 Vi
544 600
5,200 6,000
612,500 668,000
935,000 1,020,000
t oy2"
4' 4"x4' 4* f1 22'/2
600 .730
6,000 7,000
736,000 803,000
1,125,000 1,230,000
f2
525
8,300
995,940
1,538,000
......... . f 3
600
10,000
1,166,300
1,825,000
400
12,000
1,453.000
2,222.800
... ....65
\}
5 4
\6 /( 170Vz
450
14,400
1,727,000
2,560,400
420
14,000
1,695,000
2,610,000
450
17,000
2,015,000
2,987,000
460 26,000 . 2,780,000 4,400,000
500
28,500
2,960,000
4,630,000
Not including outlet which is made to fit requirements. fMade in 1 fan, 2 inlet style only.
SKINNER BROS. DIRECT FIRED HEATERS
Designed for use in buildings in which steam is not available. A heater that burns bituminous or anthracite coal, coke. wood, gas or oil. It is the pioneer of its type and not only has proved performance in factories, mills, shops, garages and industrial buildings of all kinds, but has been widely recommended by contractors for preventing the freezing of concrete, plaster and other materials during winter construction.
Skinner Bros. Direct Fired Heaters are built in three sizes, delivering from 50.000 to 150,000 B.t.u.
SKINNER BROS. REVOLVING SIPHON VENTILATORS
A roof ventilator designed to embrace the last word in efficiency and at the same time be so simple in
construction that the possibilities of getting out of order are entirely eliminated. Skinner Bros. Revolving
Siphon Ventilators, therefore, have shown themselves to require no attention whatsoever, once they are
installed.
-.
Operation: The slightest movement of air exerting pressure on the vane at the top moves the ventilator
head to a position in which the open face is at right angles with the direction of the wind. In this position
the air passes through the immovable shutter or louvres putting into operation the siphon principle which
causes the foul air or fumes in the room below to be siphoned up the stack and out through the face of the
ventilator.
Rain falling directly downward runs off the top. largest cities in the United States. The wind
and when the rain or snow is blown in a slanting velocities used are those reported by the U. S.
direction the face of the ventilator is automatically Weather Bureau. Therefore, these figures are
turned from the windward. Bali bearings and a accurate for normal weather conditions in various
hardened steel pivot bearing minimize all possible parts of the country.
friction. A counter-balanced damper in the stack
closes the ventilator when desired. Stocked in
galvanized iron in 26 standard sizes, and made of
Size
Gauge
Cu. Ft. per Hr.
sheet copper on order.
The following table is based upon the capacities of Skinner Bros. Revolving Siphon Ventilators operating in the average wind velocity of the ten
10
12 14 16
24 24
24 22
29,040 41,400 56,460 73,920
16 22 20 22
'93.240 115,200
22 22 . 139,380
24 22
165,840
26 20
194,400
28 20
225,720
30 20 259,200
32 20
294,840
34 20 332,880
36 20 ` 373,200
38 20 415,800
40 20 460,800
42 18 507,960
44 18 557,520
46 18 609,360
48 18 660,000
50 18 720,000
52 18 778,800
54- 18
839,760
56 16 903,000
58 16 968,760
60 16 1,036.800
Skinner Bros. Revolving Siphon Ventilator
417
NI
Heaters, Unit
Modine Manufacturing Co.
Manufacturers of TherModine System of Heat Distribution
Racine, Wis.
Branches In All Principal Cities
Products
TherModine Copper Tubular Radi ating Units for Steam, Vapor and Hot Water Heat Distribution.
TherModine Heat Cabinets. Modine Unit Heaters for Industrial Heating.
What TherModine Is
TherModine is the development of tubu lar .copper automobile radiators to the distribution of heat for steam, vapor and hot water heating systems for buildings. The manufacturers are among the largest firms in the automobile radiator business, guaranteeing entire responsibility both for product, statements and deliveries.
TherModine Heating Sections
TherModine heating sections are built of pure 30 gauge copper tubes, crossed and
reinforced by fins of the same metal, six
to the inch, forming many small air pas sages. Tubes are expanded into brass
heater plates secured to cast bronze headers.
Material and workmanship are guar
anteed to be of the very best. Sections
will withstand 50 lb. steam working pres
sure and 100 lb. water pressure. Copper
and brass will last indefinitely, except
where sulphurous and kindred acids occur
which is very rare.
.
TherModine heating sections are guar
anteed against failure for 5 years, except when they are used where large quantities
exist of acids or alkalines which have strong affinities for copper.
Influence on Design--Architects recog nize the almost revolutionary changes in design made possible by TherModine and the elimination of the bulky cast iron radiators. As heated air leaves the Ther Modine upper grille horizontally there is none of the smudging of walls as over cast iron radiators.
Small room design where door clear ances are so great a factor and furniture layout has been influenced by the presence of cast iron radiators, gain as much as 20 per cent in available floor area when Ther Modine is built into walls or partitions.
In the Wall Application--TherModine may be placed in a 4-in. partition wall. Architects are reporting many ingenious applications of TherModine behind builtin book cases, china cabinets, etc.
Heat Control
Every TherModine Stack or Cabinet has a tight fitting damper to control the heat. Dampers can be controlled by hand or by standard automatic temperature con trol systems. Hand valves are not needed.
Roughing-in Dimensions
'
Allow )4 in. over-all dimensions for
recesses. Sections are 4 in. longer over-all
than tube length. Center to center' of
tappings is length of tubes plus 2)4 in.
HEATING CAPACITIES B.t.u. per inch of length of tubes
Cabinet*
Wall Stacks
Standard heating sections have tube lengths from 12 to 36 in. in even inches. Tube lengths divisible by 6 will be carried in stock. Sections are made in three widths: 12 T, 16 T, 20 T, which are 5)4, 7 and 8% in. wide, respectively.
Advantages of TherModine Over Cast Iron Radiators
Weight--TherModine weighs but 5 per cent of equal capacity cast iron radiators.
Over-all
Over-all
He^ht I2T I6T 20 T He^|ht 12T 16 T 20T
14*
180 240 295
20*
210 275 240
20*
220 m 363
30*
755 340 425
26*
260 345 450
40*
300 390 490
32*
m 385 480
50*
330 445 S55
38*
315 420 323
60*
365 490 605
44*
340 433 365
70*
400 530 660
80* 430 575 720
Above ratings based oh steam at 212 F. . B.t.u. transfer based on 160 water equals one-half above.
418
Heaters, Unit
The Herman Nelson Corporation
Moline, Illinois
Beuast, Me.
Boston New Haven
`
New York Cite
Syracuse
BRANCH SALES AND SERVICE STATIONS
Philadelphia Scranton Pittsburgh
Grand Rapids Detroit
Cleveland Columbus Toledo Indianapolis Chicago
Des Moines Milwaukee Minneapolis St. Louis San Francisco
Emporia Omaha Kansas City Denver
Salt Lake City
Spokane Portland Seattle Vancouver Toronto
Product: Univent System of Ventilation.
Univent: The Univent, which is electrically operated draws fresh air through the wall or window, cleans it, warms it to a comfortable temperature and diffuses this fresh air to every nook and corner of the room.
There are four UNIVENT models: "S," "S-D," "R" and "0.M .
Each of these models are made in various sizes and capacities to meet most problems in ventilation.
Cabinet: All models are 38 in. high. Model "S" and "S-D" 12)4 in. deep, model "R" and "O" are 18)4 in- deep. The width of the various models vary according to their capacity.
The Univent cabinet is built of high grade furniture steel, properly re-inforced to insure utmost rigidity and durability.
The light front panel is easily removed making all parts accessible for cleaning and inspection. The cabinet is regularly finished with olive green lacquer.
Open View of UNIVENT Illustrating
A--Copper radiator without a single joint, absolutely leak-proof.
B--Air filter easily removable for cleaning. C--Cone type fan specially insulated for quiet ' operation.
Radiator: The radiator is made of pure copper plates securely and tightly pressed to core of special silumin metal. Silumin metal is non-corrosive. This is a leak proof, high capacity, last-forever radiator, with low temperature surface.
It heats air from 40 deg. below zero to 70 deg. or thru any equivalent range when the Univent is in operation.
Univent Fan and Motor: A single aluminum low speed fan is used. No housing is necessary for this fan.
All models of Univent can be equipped with direct or 60 cycle alternating current motors, and are recommended in the following order: Direct-current, poly phase; alternating current, single-phase alternating current. "
Filter: Filters for removing dirt, dust, soot and sand from the air can be installed in the Univent if desired. No nuts, bolts or screws are necessary for installation.
Automatic Temperature Control: Any well known system of temperature control may be used with the Univent System.
Capacities: Four sizes of each model with capacities varying from 500 to 1500 cu. ft. of air per minute can be furnished.
Service Stations--Information: Rep resentatives and Service men are located in each of the cities listed above.
Catalogs containing complete engineer ing data can be furnished on request to our main office at Moline, Illinois.
419
Heaters, Unit
John J. Nesbitt, Inc.
- Established 1894
Manufacturers of
The Universal Unit Ventilation System
Executive Office and Factory: State Road and Rhawn St., Holmesburg Junction, Philadelphia, Pa.
Branch Office NEW YORK CITY John J. Nesbitt, Inc., 405 Lexington Avenue
: '
Sold by American Blower Company, Detroit, Mich., through following branch offices
Atlanta. Ga., Allen Building.
Baltimore, Md,, American Building
Birmingham. Ala., ' American Trust Building
Boston, Mass., 10 High Street
Buffalo. N. Y., White Building
Charlotte, N. C;, Piedmont Building
Chicago, III..
140 S. Dearborn Street
Cincinnati. Ohio, Keith Building
*
Cleveland. Ohio, Swetiand Building
Columbus. Ohio, . First National Bank Building
Dallas, Texas, Mercantile Bank Building
Davenport. Iowa, Kahl Building
Denver. Colo.. 228 California Street
Detroit. Mich.. 2539 Woodward Avenue
El Paso, Texas, Border National Bank Building
Grand Rapids, Mich., Shepard Building
'
Indianapolis, Ind., Continental Bank' Building
Kansas City. Mo., Mutual Building
.
Louisville. Ky., 428 S. Fifth Street
.
Los Angeles, Calif., Detwiler Building
Milwaukee, Wis.. Majestic Building .
Minneapolis. Minn., 800-6 La Salle Avenue
New Orleans, La., 521 Baronne Street
.
New York City, N. Y., 50 Church Street
Omaha, Neb., Peters Trust Building
Philadelphia. Pa., Otis Building
Pittsburgh, Pa.. Oliver Building
Portland, Ore.. Spaulding Building
Rochester, N. Y.. Cutler Building
Salt Lale City, Utah, Dooly Building
San Francisco. Calif., Rialto Building '
Seattle, Wash., Leary Building
Schenectady, N. Y.,
147 Jay Street
.
.
St. Louts. Mo., .
Boatman's Bank Building *
Syracuse,' N. Y., '
1611 E. Gennesee Street .
Tacoma, Wash.,
,
.
1127 St. Paul Avenue
' . .
Canadian Sirocco, Ltd.
Montreal, 144 Inspector Street
`
Calgary, 605 W. Second Street
*
Winnipeg,
'
567 Banning Street .
Vancouver, 612 Standard Bank Building
Windsor, McDougalland Banwell Streets
Products Manufacturers of the UNIVERSAL com bined heating and ventilating Units. (Port able Unit ventilators), also UNIVERSAL air filters.
THE UNIVERSAL UNIT
The Standard by Which AU Other Makes
' are Measured
'
Trade Mark Reg. U. S. Pat. 0f}ice
Universal Unit System of Heating and Ventilating
A mechanical system of ventilation for sup plying fresh warm air directly from outdoors
for use wherever good ventilation is required and particularly suitable for school house ventilation.
420
John J. Nesbitt, Inc.'______________________________________________________
Heaters, Unit
Universal Combined Heating and Ventilating Units The cabinet of the UNIVERSAL UNIT is constructed of No. 14 gage cold rolled, stretched leveled, pickled and oiled first quality furniture stock steel. All parts of the UNIVERSAL UNIT are finished in olive green, sprayed and baked to a smooth hard finish.
Fans UNIVERSAL Fans are of the multi-blade low speed double inlet type, designed to operate at 800 r.p.m., plus or minus 5 per cent. The fans are rigidly constructed of aluminum with special care given to balance. Fans are mounted on double extended ends of the motor shaft.
Motor . Motor of UNIVERSAL UNIT can be supplied for quiet operation on any character of current. The use of a motor generator set is no longer necessary with this system.
Three-Point Lead Mounting
The motor and fan, assembly of the UNIVERSAL UNIT is mounted
in the cabinet on three steel ball points. These points rest on lead liners,
supported by angles from the side of the casing. This three-point lead
mounting has made possible the use of alternating current motors with
a permanent and rigid supporting device.
Universal Unit Radiator
Standard UNIVERSAL UNITS are provided with 106.25 sq. ft. of
prime surface, extruded copper tube radiation. The radiator weighs ,
only 61 pounds complete. This radiator
is composed of a plurality of individual,
thin walled, seamless copper tubes the
ends of which are hexagonal and assem
bled resemble a true honey-comb in
appearance. The steam is free to flow
between the tubes in both a vertical and
horizontal direction. The air flows
through the tubes, so that the tubes
are entirely surrounded by steam on one
side and swept by air on the other side,
which means 100 per cent prime surface.
Temperature Control Damper
The UNIVERSAL UNIT is. provided
Vertical section, end removed, UNIVERSAL UNIT, Series No. 14-3643. Fresh air intake through wall
box and grille near bottom of Unit. This Unit can
be recessed to depth of 4 in. as shown, recess must be 60 in. long by 86 in. high, or can be recessed t in. in 45 in. tang recess 36 in. high. .Standard practice places the Unit flush with the inside wall.
with a temperature control damper, which can be manually or thermostatic ally operated to regulate the temperature of air from Unit.
421
John J. Nesbitt, Inc.
Healers, Unit
Full'Area of Radiator
UNIVERSAL UNIT Series No. I4-S64A one piece front and by-pat*division plates removed, thawing radiator and motor fan assembly in place. Entire operation of removing and replacing front and by-pass requires less than three minutes
Inlet and Recirculating Damper Each UNIVERSAL UNIT is arranged so that air can be brought from outdoors, warm, if desired, and circulated in the room, or can be recirculated and reheated within the room, as desired. This is accom plished by means of a circular roll damper of aluminum. This damper can be manually controlled at the cabinet, or pneumatically controlled from some remote point.
Universal Air Filters The use of air filters is especially recommended for buildings located in congested manufacturing districts, or where the air is heavily laden with dustpr soot. UNIVERSAL air filters are of the adhesive impinge ment type, designed to fit in the fresh air intake of the UNIVERSAL UNIT. In this location the velocity of air over the entire surface of the filter is uniform with the result that an equal amount of work is imposed throughout its entire area. Combined with this ideal location is a set arrangement, which provides ease and simplicity of removal and replacement, when cleaning is necessary.
Catalog and Engineers' Data Book A copy of our "Catalog and Engineers' Data Book," containing com plete engineering data, specifications, etc. on UNIVERSAL UNIT Ventilation System, will be furnished upon request to our executive office.
' 422
John J. Nesbitt, Inc.__________________
Heaters, Unit
TABLE OF CAPACITIES final Temperatures and Condensations
2 lbs. Gauge
1500 Cu. Ft. of Air per Minute or 90.000 Cu. Ft. of Air per Hour--Universal Unit Sene# No. 14-3643-15 and 18-3643-15
1200 Cu. Ft. of Air per Minute or 72,000 Cu. Ft. of Air per Hour--Universal Unit Series
No. 14-3643-12 and 18-3643-12
Temp Entering
Air Deg- F.
-10 0 10 20 30 40 50 60 70
Final
Temp, of Air
British.
Thermal Units
Sq. Feet
Surface in Radiator
Condensa
tion per So. Ft; in Rad.
Total (Con densation
in Radiator
. .
Final
Temp. of Air
.British Sq. Feet Condensa Total Con Thermal Surface ; tion per Sq. densation
Units in'Radiator Ft. in Rad. in Radiator
100.31 106.63 112.65 119.28
125.63 131.93 138.23 144.43 150.83
2I0M5 201955
192777
183600 175440 166252
157075 148915 139737
106.25
106.25 106.25 106.25 106.25
106.25 106.25
106.25 106.25
2.06 1.98 1.89 1.80 1.72 1.63
' 1.54 . 1.46 1.37
218.87 210.37 200.81 191.25 182.75 173.18 163.62
155.12 145.56
103.1 109.4 115.73 122.04 128.35 134.67 140.97
147.37 153.67
175440 168297
161155 154012. 145852 138720 131577
123417 116275
106.25
106.25 106.25 106.25 106.25 106.25 106.25
106.25 106.25
1.72
1.65 1.58 1.51 1.43 1.36 1.29
1.21 1.14
182.75 175.31 167.87 160.43 151.93 144.50 137.06
128.56 121.12
Current Conturned
A. C. 146 Watts
D.C. 143 Watts ' A. C. 118 Watts
D. C. 102 Watts
900 Cu. Ft. of Air per Minute or 54,000 Cu. Ft. of
Air per Hour--Universal Unit Series
No. 14-3643-9 end 18-3643-9
600 Cu. Ft. of Air per Minute or 36.000 Cu. Ft. of . Air per. Hour--Universal Unit Senes
No. 14-3643-6 and 18-3643-6
Temp. Entering
Air Deg. F.
--Zio
0 10 20 30 40 50
Final Temp, of Air
British Sq. Feet Condensa Total Con Thermal Surface tion per So. densation
Units in Radiator Ft. in Rad- in Radiator
112.96 119.3 125.64
131.98 138.28 144.68 150.98
139737 133612 128515 122400 116275 110(60 105052
106.25 106.25
106.25 106.25
106.25 106.25 106.26
1.37
1.31 1.26 1.20 1.14 1.08 1.03
145.56
139.18 133.87
127.5 121.12 114.75 109.43
Final Temp,
British Thermal
Sq. Feet Surface
Condensa Total Con tion per Sq. densation
of Air' Units in Radiator Ft. in Rad. in Radiator
123.18 130.6 137.02 143.42 149.79
156.29
103017 98937
93840 89760 85680 83635
106.25 106.25 106.25
106.25 106:25 106.25
1.01
0.97 0.92 0.88 0.84 0.82
107.31 103.06
97.75 93.50 89.25
87.12
Current Con sumed
Watts Hour
A. C. 90 Watts
D. C. 90 Watts
A. C. 80 Watt.
D. C. 83 Watts
When a fine adjustment is desired for obtaining either a smaller or larger volume of air than a given
set of fans discharge from a given line voltage, air volume regulators will be furnished.
The air volume regulators consist of curved plates, which may be readily, adjusted to further open or
*!-><= fetn Hicfhiirve ninn
'
'
ROUGHING-IN DIMENSIONS
423
Heaters, Unit
York Heating and Ventilating Cprp.
1502 Locust Street :: PHILADELPHIA
Unit Heaters--Unit Fans--Rotary Ventilators--Stationary Ventilators--Cyclone Dust Collectors--Damper Quadrants--Blast Gates--Drying Trays--Radiator Brackets--Sheet Metal Work and Light Structural Iron Fabrication.
YORK "WELDED COIL" UNIT HEATER
SPECIAL FEATURES
The coils are welded entirely, therefore there are no
joints to leak.
The coils are guaranteed for operation up to 200 lbs.
steam pressure and are tested to 1000 Ibe. hydrostatic
pressure.
All eight sizes of York Units are designed for standard
motors operating at standard speeds.
,
Direct connection to motors by flexible couplings is
supplied at less cost titan belt or chain drive.
Full housed centrifugal fans of the double inlet type
give the high outlet velocity so essential to positive dis
tribution.
Self-aligning, dust-proof ball bearings are standard for
fan shaft mounting.
Units are narrow in width, permitting unobtrusive placing
in tiie shop.
Operates equally well on vacuum, low or high pressure
steam.
,_
.
Unit will beat and ventilate simultaneously, if desired.
Base of the unit ts open on all four rides, hence air ts
drawn from the floor, where it is naturally coldest. This
simplifies connection to outride air when same is desired,
for it can easily be made by a rectangular duct from any
one side.
.
Rigid discipline in manufacturing assures unfailing and
economical operation from units so carefully designed.
OPERATION
Air enters the unit at the base from all four sides, passes
upward around the welded pipe coils, through the fan and
ts then distributed by the outlets in any direction desired.
Unit may be automatically controlled by a thermostatic
switch.
.
OPERATING ECONOMIES
It is not necessary to run York Unit Heaters con
tinuously to obtain an appreciable amount of beat, as is the case with horizontal unit heaters or a blower system. In the morning the units can be run for a short tune to
bring the room up to the proper temperature and to start the air in circulation. The power can then be shut off and the circulation thus started will continue (although at a
slower rate).
Capacities and Dimensions
Sq. Ft. Heating Surface Equiv. Direct Radiation Weight
with Motor
Size Unit
R.P.M.
A.P.M.
H.P. Motor
Recirculating Air at 60 F. Entering Unit
B.t.u.*
Final Lbs. Cond. Temp. per Hr.
A BC DXH
&
25
1750 1160
2780 1800
V. H
208,000 137.5" 147,000 146.0"
217. 153
140 830 MOO 47 17 16 86 m. 14 2
35
1750 1160
'B5480
3620
411,000 137.8" 296,500 146.3"
428 309
280 1650 1900 88 17 20 86 ny. 14 4
45
1450 870
9650 5 5850
676.000 132.0" 462.000 142.5"
707 481
360 2300 2450 88 30 24 M3 i<p/, 20 2
50
1450 870
10950 6550
7% l'/2
741.000 129.2 504.000 140.2"
772 525
360 2520 2500 88 30 24 M3 isy. 20 3
55
1450 870
12800 7700
7Vi 2
950.000 136.8" 635.000 147.0"
990 661
520 3200 3300 88 30 24 M3 m 20 3
60
1450 870
14360 10 8600 2
1,037,000 134.5" 1080 694.000 144.5" 723
520 3500 3400 88 30 26 M3 19'/, 20 3.
Note--To get BASIC Rating (i.e., 0 entering and 5 lb. pressure), multiply B.t.u. given by 1.35.
See 1924 Guide, page 339, for B.t.u. Constants.
.
424
York Heating and Ventilating Corp.
. Heaters, Unit
A--Damper that permits recirculating air in building. B--Fresh air opening, which is closed when damper A
is opened. Outside opening protected by wire screen. C--Warm air outlets. Since they have a square base they
may be pointed in other directions than those shown. D--Opening at floor line for entrance of exhaust gases.
Er-Duct for discharging exhaust gases to outdoors. The above is standard arrangement for motor,
exhaust air outlet and steam headers but their rela tive position can be reversed if conditions require.
RATINGS No. 30-G UNIT For Steam Pressure of 5 Pounds
Recirculating Air
e at 60 Deg. r ahr.
o
s
Entering Unit
CU
I
Basic Data Air at 0 Deg. Fahr.
Entering Unit
YORK WELDED COIL UNIT, No. 30-G
This self-contained unit combines the means for
heating and ventilating garages and exhausting
foul gases.
The air to be wanned is drawn through the
heating coils by two (2) of the fans, and discharged
positively in desired directions. This air may be
drawn fresh from out-of-doors, or recirculated
within the buildings at will by a regulation of
dampers.
The third fan, with its intake at the floor level,
withdraws and exhausts to the outside the poison
ous gases that collect along the floor when motors
are run.
When a number of engines are running and throw
off an objectionable quantity of gases, the exhaust
pipe damper and-fresh air damper are opened. The
garage will then be quickly ventilated. At times
when little or no gases are produced, the exhaust
pipe damper may be closed and the recirculating
damper opened. The heater then recirculates the
air within the building, so that fuel is saved when
no ventilation is needed.
When more heating capacity is needed than that
provided by the units necessary for ventilation,
unit heaters without the exhaust fan are added to
complete the required total.
Garage Unit No. 32-G has the same B.t.u.
capacity as the No. 30-G but twice the exhaust ca
pacity and requires a 2 h.-p. motor for 1750, a 1H
h.-p. for 1450 and a 1 h.-p. for 1160 r.p.m.
Dimensions are the same as No-. 35 unit on
opposite page.
YORK-FIN UNIT For Steam Pressures up to 15 lbs.
R .P .M . || Cu. Ft. per Min.
Warm Air B.t.u. per Hr. Final Temp. Cond. per H r. 1 B.t.u. per Hr. Final Temp. | Cond. 1 per Hr. Cu. Ft. A ir per M in. Exhausted
1750 2780 i'/i 208,000 137.5 2171 281.000 104.8 294/ 1700 1450 2290 I 178.200 141.3* 186/ 241.000 109.9 252/ 1410 1160 1800 '/, 147,000 146.0 153# 198.600 116.1" 207/ 1130 870 1340 % 116.100 152.0" 121/ 157,000 124.2 164/ 850
May be used on high or low pressure steam, vapor, vacuum or hot water system.
Note--When facing outlet openings. RH means motor is on Right; LH means motor is on left. Unless otherwise specified, RH will be furnished.
APPLICATION Recommended only for plants with overhead returns fed by low pressure supply. York Welded Coil. Floor Mounted Unit Heaters are preferable for all other conditions.
Ratings, Specifications and Dimensions
Recirculating Air at
'E s s
o o
60* F, Entering Unit and 5/ Steam Press.
S co
CL OC
CL <
2 CL X
s1
Sq. Ft.
Heating Surface
Outlet Openings
si s.J
1= (3 o
6 Z
Nx N ZS Outside ."_c A of Angles
Dimensions
'
BcDE F
> e
3
3
CO
cL
.3 c/1
s
co
B.t.u. Cond. per Hr. Actual Ecjuiv. Direct Radiation
102
1750 1160
3000 2000
V, %
157,000 112.0 164/ 116,500 M8.5* 121/
109
630
2
n%* n% 370 33 43
16
15 3% 3% 2" 2*
103
1750 4100 1160 2710
1 'H
231,500 116.5 241/ 172,000 124.3 179/
164
930
3
ny,* ii% 460 45 43
20
15 3% 3% 'y 2"
104
1750 6200 M60 4100
I'/i %
381.000 122.0 397/ 270.000 127.2 281/
246
1520
4
n%* n% 550 63
43
20
15 3% 3% y
1'
162
1160 870
7800 5880
3 1
433.000 115.4 452/ 358.000 121.3 373/
273
1740
2
18'/,* 18% 750 69 61
25 22% 3% 3% y
2*-
425
Heaters, Unit
Pecco Incorporated
Main Office and Factorv
2951 North Market Street
ST. LOUIS, MISSOURI, U. S. A.
' District Sales Offices
Davenport. Iowa--1608 E. Tenth Street
Boston, Mass.--162 Tyler Street -
Columbus, Ohio--404 Clinton Building
Chicago, III.--5530 Cornell Avenue
Cincinnati, Ohio--919 Provident Bank Building
Milwaukee, Wis.--137 Oneida Street
Baltimore, Md.--109 E. Pleasant Street
Pittsburgh. Pa.--Farmers' Bank Building
PECCO UNIT HEATERS
Pecco Unit Heaters are built in two types--Steam
Coil and Direct Fired.
The particular advantages of these units lie in the fact that they are designed entirely on fundamental prin ciples of aerodynamics. `
Cold air intake (see illustration) is located at the bottom near the floor or cold air level.
The warm air outlet hood (through which the warm air is projected by the bank of steam coils placed directly over the fan wheel) is located at the warm air or breathing level.
In operation the cold air is exhausted by the fan wheel, forced upward and around the steam coils, heated by the steam coils and then projected at the breathing level.
A thorough recirculation of air is thus established and because the fan wheel keeps the heated air always in movement, it is distributed evenly throughout the open building space.
Mechanically, Pecco Unit Heaters are built to
highest standards and in many instances include
-
features which were developed and used exclusively S,tam Co" 'Jnlt Heater
by Pecco. The steam coils are made of heavy pipe bent cold without deformation at the bend and butt-jointed with special steel couplings which prevent rupture and subsequent leakage.
Capacity ranges from 135,000 to 1,550,000 B.t.u.'s per unit.
Send for complete catalog.
-
Direct Fired Type
Direct Fired Type
The illustration at the left shows the Pecco Direct Fired Unit, which burns either coal, coke, gas, wood or oil. Built on the same principle, this type is as effective as the Steam Coil Type.
Send for special catalog.
In addition to the above, Pecco, Incorporated, also manu factures the so-called ceiling suspension copper fin type heaters and complete blow pipe systems.
Special Engineering service gladly furnished.
426
Heaters, Water
Alberger Heater Company
HOWARD IRON WORKS
218 Chicago St.
BUFFALO, N- Y.
representatives in principal cities
Heaters -- Condensers -- Coolers -- Economizers -- Expansion Joints
Alberger-Buffalo Heaters are
built in several types to meet a large range of standard and special water heating requirements. The stand ard instantaneous water tube type with floating heads is a highly efficient device embodying economy in space and maintenance cost. The storage water heater is used where the steam supply is intermittent or insufficient to take care of peak water demands. The swimming pool heater is especially designed for the purpose and is also exten sively used with air washer equip
ment. All of these heaters are built in
either horizontal or vertical arrange ment. Alberger-Buffalo equip ment is widely used for many special requirements involving the heating or cooling of water and other liquids, and for the interchange of heat from one liquid to another.
Instantaneous Water Healer Furnished in Vertical or Horizontal Type
Swimming Pool Heater
Single Pass Furnished in . Vertical or Horizontal - Type
Storage Type Healer
If you have not already done so, send immediately for a copy of the ALBERGER HEATER DATA BOOK which gives complete information regarding capacities
(and dimensions of our various types, as well as service and installation data. Also remember that our experience in designing and building special heaters and coolers is available to prospective clients.
The Howard Guided Expansion Joint is a most satisfactory means for taking care of expansion in pipe lines because it is designed with only one object in view--100% service. The construction is mechanically correct--deep stuffing box--bronze sliding sleeve--totally enclosed construction to eliminate accumulation of dirt--exterior adjustment of packing gland-- ready accessibility when packing is renewed. It is the most economical joint to use because it stays on the job and leaves a satisfied customer.
Send for--Bulletin XJ-3 for full details.
Howard Expansion Joint '
. 427
c
Heaters, Water
Excelso Specialty Works, Inc.
65 Clyde Ave., BUFFALO, N. Y.
Excelso Indirect Water Heaters, Phaeton Heaters, Fire Pot Generators, Rotary Hack Saw Tools
EXCELSO INDIRECT WATER HEATERS Dimensions--Price List--Capacities
Single Coil
.
Double Coil
Trip! eCoil
Jr. II 12 13 14 15 25 26 27 28 35 36
Length ....... Diameter........
oA 6<AB>/l 101/2 14 MV, 15 19V, 12h 15 19 23'/, 21 25
5 55
6V, 9 9 9 9 ny, i y/t
Shell Open*gs, .
1 1 1 Vfi 1$ m 2 2 2 2 3 3
Coil Open'gs, .
y. J/. y< 1 1 \
l'/z m Wi l'/i 2/2 2/2
Weight
mCrated........ ..Lb*. It n 16 29 37 42 65 73 88 106 185 210
$12.50 $30 wo $50
$70 $120 $150 $180 $210 $310 $400
Connect below water line of any Steam or Vapor Boiler, or use with live steam.
Boiling water in
the shell heats water circulating
through copper coil.
Heating Water Below Water Line of Steam or Vapor Boilers Size............................. Jr- M 12 13 14 15 25 26 27 28 35 36 Tank Capacity........... 30 30 45 60 90 120 160 200 300 400 600 800
Temperature rise 100 deg. in 3 hours. Heating Water With Live Steam
Size............................. Jr. 11 12 13 (4 15 25 26 27 28 35 36 lank Capacity........... 45 50 75 100 150 200 250 300 450 600 900 1200
Temperature rise'TOO deg. in 3 hours at 5 lb. pressure.
THE EXCELSO PHAETON HEATER Dimensions--Price List--Capacities
Diameter............... In.
6
8 10 12 15 18
Height....................In.
3'/2
*/i
5%
6
7
8
Tappings................ In.
1
1
I'/z 2
2/2 3
Center to Center of Outlets............... In.
Capacity............. Cals.
2/2 30
2/2 45
3 80
3'/2 100
'/2 150
5/2 250
Sq. Ft. Direct Water Radiation........... Ft.
Shipping Weight..Lb.
40 6
75 100 150 250 400 II 18 30 60 " 85
List Price.............Iron $7.50 $12.00 $20.00 $24.00 $50.00 $70.00
List Price........... Brass $15.00 $28.00 $45.00 $54.00 $M5.00 $160.00
The highly efficient firepot heater, suitable for hot water supply or auxiliary radiation, transfers 80 per cent of heat to water.
Excelso Firepot Generator
Generator fits any type of hot water boiler or hot air furnace. Made in both cast iron and brass.
Size No. 1, up to 40 gals, capacity.
Size No. 2, over 40 gals, capacity.
428
Excelso Rotary Hack Saw Tool
Boilers may be quickly and easily tapped by means of the Excelso Rotary Hack Saw Tool. Each tool cuts three sizes: 1 in., 1% in. and.2 in. Pipe Tap size.
Price $7.50 net, with six blades; two of each size.
Heaters, Water
The Patterson-Kelley Co.
99 Park Avenue - New York City
Hot Water Heaters for all purposes. Pool Heaters and Converters. Preheaters, Heat Exchangers, Heaters for Chemicals, Gases, Oils. Coolers for Brine, Chemicals, Gases, Oil and Water.
Tbe Patterson Combined
Hot Water Service and Storage Heater, Type B, is
for any service where require ments for hot water are not constant, or where a large volume must be stored for sudden heavy demands.
We guarantee to furnish heaters that will deliver the quantity ot hot water called for. Without obligation our Engineering De
partment will be glad to give engineers the benefit of our 45
years' experience.
General Specifications
Constructed like a high grade boiler-rof heavy steel plate. Steam inlet and outlet chamber is a heavy, grey iron casting. Tube head is a heavy, steel forging into which both ends of each tube are expanded. Tubes are of pure, cold drawn seamless copper
and * U ' shaped to provide against contraction and expansion strains. Heater is for any service and in any required size per tables below. Write us for engineering advice.
STORAGE CAPACITIES
No.
Dimensions in Inches
Capacity
Approx.
in Gals. Wl in Lbs.
No.
Dimensions in Inches
Capacity
Approx.
in Gals. Wt. in Lbs.
1S 2S
3S 4S
5S 6S 7S 8S 9S
10 S 11 S 12 S
13 S 14 S 15 S 16 S 17 S
16 S 19 S 20 S
24x48
24x60 24x72 24x84
30x60 30x72 30x84
30x96 30x 120
36x72 36x84
36x96 36x 108 36x120
36x 144
42x72 42x84
42x96 42 x 108 42 x 120
94
. US 141 164 180 215
255 285 360 310 365 415
475 500 640 430 500
575 650 720
650 750
850 950 875 1000 1150
1300 1500 1250 1400 1550
1700 1850 2100 1500 1650 1800
1950 2200
21 S 22 S 23 S 24 S 25 S
26 S 27 S
28 S 29 S 30 S
31 S 32 S 33 S 34 S 35 S 36 S
37 S 38 S 39 S
40 S
42 x 144
42x168 42 x 192
48x96 48 x 120 48 x 144 48x168
48 x 192 54x 120 54x144 54x168 54 x 192
60x 120 60x 144 60 x 168 60 x 192 72x174
84x 168 % x 168 96x192
860 1000
1155 750 940 1125
1300 1500 1190 1425
1665 1900 1400
1700
2000 2240 3000 4000 5200
6000
2450 2800
3100 - 2600
2925 3350
3840 4200 3500 3900 4300 4700
4300 . 4950
5600 6200
7000 8700 10000
11000
HEATING CAPACITIES--40 F. to 180 F.--Steam at Atmospheric Pressure
No.
Gallons per Hour
Approx. Wt. fn Lbs.
No.
Gallons per Hour
Approx. Wt. m Lbs.
1H 2H 3H 4H
5H 6H
7H 8H 9H
10 H 11 H 12 H 13 H
14 H
100 150 200
250 300 400 500 600
700
800 1000 1250 1500
1750
200 15 H
2000
700
215 16 H
2500
800
235 17 H
3000
900
255 18 H
3500
' 1050
.
285 19 H
4000
1200 .
315 20 H
4500
1350
350 21 H
5000
1500
370 22 H
6000
1750
400 23 H
7500
' 2000
425 24 H
10000
3200
450 25 H
12500
3800
500 26 H
15000
4500
550 27 H
20000
.5100
600
28 H --
25000
5800
NOTE.--To specify Type B. Heaters, combine the numbers of the required storage and heating capa
cities. For example. "One Patterson Type B. Heater with No. 22 S. and No. 17 H." has 1000 gallons
storage with 3000 gallons hourly heating capacity.
'
429
Heaters, Water
O. E. Frank Heater and Engineering Co., Inc.
Associated with FARRAR & TREFTS, Inc.
BUFFALO, N. Y.
Branch Offices
New York Philadelphia Detroit St. Louis
Indianapolis Kansas City Charlotte. N. C. Calgary. Ont.
Branch Offices
Boston Mass. Minneapolis
Chicago Pittsburgh
San Francisco Washington
JCleveland
Harrisburg. Pa.
O. E. F. products consist of a complete line of heaters for every hot water need. Storage Heaters for hot water service in either U-tube or Straight tube type. Instantaneous Heaters for hot water service, heating systems, power plants. Complete information on materials,
construction, service and our guarantee on request. Large stocks of tanks, castings and tubes insure prompt shipments.
r.jaritiM and General Ptmeoaoni 0. E. F.
Heaters. Heating Water from SO to 180 F. with Steam at 212 F.
Gala.
Approx. Overall Dimensions
ft.
Size
Width
Length Hot. Type
Height Ver. Type
Gals.
Approx.Overall Dimensions
ft.
Size
Width
Length Hor. Type
Height Ver. Type
ax.M
Steam Max. Water Drain ! Max. 1Steam I Max. Water
1
Drain
200 IH-7 15}4* 7'-5* V-tyf 3* 3* 1* 2000 1H-60 21 >4' 8'-8Vi* 9'-8J4* 4' 5* l'/2'
300 IH-II 15V* T -5* V-W 3* 3* 1* 2500 IH-76 W 8'-ll* 9'-IO* 6' 6* 2*
400 IH-14 I5V4* 7'-5* B'-W 3* 3' 1* 3000 IH-90 W.1 8'-l1* 9'-IO* 6* 6* V
500 IH-15 18* 8'-7* 9'-8* 3* 4* IV,' 4000 IH-120 -if/;' 9'-H/.' 10,-4,/4* 8* 8* y
600 IH-18 18* 8'-7' 9'-8* 3' 4* l'/2* 5000 IH-150
9'-l>/," !0'-4'/,' 8* 8* 3*
600 IH-24 18* 8'-7* . 9'-8* 3* 4* 1'// 6000 IH-162 26'/,' 9'-iy.' IO'-4`/4* 8* 8* 3*
1000 IH-30 18* 1250 IH-38 18*
8'-7* 8'-7*
9'-8* 9'-8*
3' 3*
4* 4*
w\'k
7000 IH-189 30V,' 8000 IH-216 30V.'
IO'-3>/,' IO'-3Vi*
ir-4/4* 10* ll'-4'/." 10*
8* 8*
3* 3*
1500 IH-45 21V/ 8'-8'/,' 9'-8'// 4* 5* w 9000 IH-243 30V.' io'-3y." n'-'/,' 10* 8* 3*
1800 IH-54 21'/.' 8'-8Vi* 9'-8Vi* 4' 5' w 10000 IH-270 30'/.' 10,--3Vi* M'-W 10* 8* 3'
Cuarifr? General
0. E. F. Feed Water Beaten, Heating Feed Water from 50 to 200 F. with Steam it 212 F.
Horse Power
Approximate Overall Dimensions
Size
Lbs. per - Hour
Width
Length
Height
Maximum Maximum Drain
Horiz. Type Vertical Type Steam
Water
50 FW-9
1500 15'/.' 7'-5*
B'-W
3*
3* 1'
75 FW-13
2250
15'/,'
7'-5*
B'-W
3*
3* 1*
100 FW-17
3000
15'/,'
r-y
S'-l'/j'
3*
3* 1'
150 FW-26
4500
18*
8'-7*
9'-8*
y 4* Wi'
200 FW-35
6000
18*
8'-7*
9'-8*
3* 4* Wi"
250 FW-43
7500 21'/,'
8'-8>/,'
9'-83/,'
4*
5*
w
300 FW-52
9000
21'/,'
8'-8'/,'
9' -8'/,'
4*
5* I1/,'
350 FW-61
10500
21'/,'
8'-8'/,'
9'-8'/,'
4*
5* l'/i'
400 FW-69
12000
21'/,'
8'-8'/,'
9'-8Vi*
4*
5* I1/:'
450 FW-78
13500
25'/.'
w-\r
9'-IO*
6*
6' 2*
500 FW-87
15000
25'/.'
8'-l1*
9'-l0*
6*
6* 2'
600 FW-104
18000
25'/,'
8'-ll*
9'-10*
6'
6* 2'
700 FW-121
21000
26'/,'
9'-l'/,'
10'-4'/4*
8*
8* 2'
800 FW-136
24000
26'A-
9'-l'/,'
10'--4V4*
8'
8' 2*
900 FW-156
27000
26'/,'
9'-l'/,'
10'-4'//
8*
8* 2'
1000 FW-160
30000
26'/i'
lO'-IVi*
II'-4'/,'
8*
8* 2*
1100 FW-165
1200 FW-180 1300 FW-195 1400 FW-210
33000 36000 39000 42000
26'/2'
26'/2' 30'/,' 30'/,'
I0'-I'/,' lO'-IVi' 10'-3'/,' lO'-VA*
II'-4'/,' ir-4'/,' ll'-8'/,' 11 '-8'/,'
8* 8* 10* 10*
8* 2* 8* 2'
8' 3* 8* y
1500 FW-225
45000
30'/,'
IO'-3Vi*
ll'-8V,'
10*
8' 3*
1800 FW-270
54000
30'/.'
10'-3V4*
ll'-8'/,'
10*
8* 3*
2000 2500
FW-300 FW-375
60000 75000
34'/.' 34V,'
U'-0%*
ii'-ovi*
l2'-0/,' l2'-0%*
10* 10*
I0T 10*
3* 3*
3000
FW-450
90000
39'/,'
ir-W
12'-6'/,'
10*
12*
3*
4000
FW-600
12000
39'/,'
ir-6'/,'
12'-6V4*
10*
12'
3*
O. E. F. Feed Water Heaters and Instantaneous Heaters are designed for a maximum working pressure of 125 lbs. on the water spaces and 50 lbs. on the steam spaces.
O. E. F. Instantaneous Heaters are constructed of heavy close grain castings with
rolled steel tube sheets and eighteen gage Admiralty Metal tubes. Admiralty Metal tubes
are unexcelled for feed-water service. Write us about them.
O. E. F. Instantaneous Heater for General Hot Water Service, Feed Water, Bleeder Turbines and Forced and Gravity Hot Water Heating Systems. .Also
Vertical Type. Steam opening may be located on top or either
side of shell to suit requirements.
430
0. E. Frank Heater and Engineering Co., Inc.
Healers, Water
Fig. 1 O. E. F. U-Tube Storage Heater
Fig. 7. O. E. F. Straight Tube Storage Heater
O. E. F. Storage Heaters are made of best quality flange steel, have rolled steel tube
sheets, and sixteen gage copper tubes. Chemical analysis and physical test of all steel used furnished on request. O. E. F. Heaters are doubly guaranteed by O. E. Frank Heater & Engineering Company and Farrar & Trefts, Inc.
O. E. F. Storage Heaters are furnished in either the U-bend Pattern, per Fig. 1 or the Straight Tube
type, per Fig. 7. The shells are of best quality steel plate, the smaller sizes welded and the larger sizes
riveted construction. The heating surface consists of 1ki in. OD seamless drawn copper tubes No. 16 or
18 SWG as required. They are properly supported with a tube, supporting plate to prevent wear
of the tubes due to sagging and rubbing together. The tube sheets are steel, eliminating any possibility of
cracks and leaks, which so commonly occur with cast iron tube sheets. The tube nests or bundles are
removable from the tank for cleaning or repairing.
Where it is necessary to use both low and high pressure steam, the steam chamber and tubes may be
arranged without the necessity of installing a separate tube bundle.
Openings of ample size are provided, and we call your attention to the arrangement of the steam inlet
and outlet, making it possible to remove the tube bundle by simply unbolting the flanges and avoiding the
necessity of breaking any length of pipe.
All storage heaters, unless otherwise specified.-will be furnished for a working pressure of 100 pounds per
square inch gage pressure, on both the steam and water spaces.
Storage heaters furnished for higher pressures.
CAPACITIES--O. E. P. U-Tube and Straight Tube Storage Heater*--Heating Given Quantities of Water from 50-180.
_______________________________________________Deg. Fahr., with Steam at 212 Peg. Fahr.
____________
Storage Capacity
80
93
<41
164 168 220 257 294 330
370 423 476
529 S76 646 720 792 .664
752
846
940
Tank Size 18x72 16x84 24x72 24x84 24<96 30x72 30x84 30x96 30x108 36x64 36x96 36x108 3&xl2C 42x96 42xl0f 42x120 42x132 42x144 48x96 46x106 46x120
Gallon*
^.00
200 300 400 500 600
700 . 800
900 1000 1500 2000 2500 3000 4000
5000
A5 BS C5 D5 CS F5 CS H5 IS 1C5 LS MS NS 05 P5 All Bll Cll Dll 11 Fit Cll Hil Jit. K11 Lll MM Nil OH P1I
Q5 Oil
R5 Rll
55 S1I
BI6 CI6 DI6 16 FI6 CI6 HI6 JI6 K16 LI6 MI6 NI6 OI6 PI6 016 RI6 SI6
C22 D22 E22 F22 C22 H22 J22 K22 L22. M22 N22 022 P22 022 R22 S22
C27 D27 E27 F27 C27 H27
C32 32 F32 G32 H32 gyC38 38 F38 C38 H38
ISD43 43 F43 C43 H43
K27 L27 M27 N27 027 P27 Q27 R27 S27
K32 L32 M32 N32 032 P32 032 R32 S32
K38 L38 M36 N36 038 P38
R38 S36
K43 L43 M43 N43 043 P43 043 R43 S43
oSD47 47 F47 G47 H47 J47 K47 L47 M47 N47 047 P47 E54 F54 C54 H54 JM K54 L54 M54 N54 054 P54
R47 S47 R45 S54
F8I G8I H8I J8I K8I LSI MSI N8I 081 P8I
RSI S8I
CIOS HI0& 1108 KI08 LI08 MI08 N108 OKH PI08 QI08 RIOS SI08
JIM
MIM NI34 0134 PI34 0134 RI34 SIM
NI62 0162 PI62 QI62 RI62 SI62
P2I5 Q2I5 R2I5 S2I5
R269 S269
T5 TII . TI6 T22 T27 T32
T38 T43 T47 T54 TBI TI08 TI34
TI62 T188
VS VII VI6 Vtt
V27 V32
V38 V43 V47 V54 V8I VI08 VI34 VI62 VI88 V2I5
ws WII WI6 W22 W27 W32 W38 W43 W47
W54 W8I WI08 WI34
WI62 WI88 W2I5
Stor1034 1128 1204 1325 1445 1574 1666 1469 1616 1763 1909 2056 2115 2327 2S38 2750 2961 3173
Cap.
Tank Size
48x132 48x144 54x120
54x132
54x144
54x156
54x168
60x120
60x132
60x144 60x156 60x166
72x120
72x132 72x144 72x156
72x168
72x160
Gal*,
per Hr.
100 XS Y5 AX5 BX5 CX5 DX5 FX5 GX5 HX5 KX5 LX5 MX5 NX5 0X5 PX5 QX5 RX5 TX5
200 XII Yll AXII BX11 CXII DXII FXII GX1I HXIt KXII LXIt MXII NXII OXI1 PXII QXIt RXI1 TX1I
300 XI6 YI6 AXI6 BXI6 CXI6 DXI6 FXI6 GX16 HXI6 KXI6 LXI6 MXI6 NXI6 OXI6 PXI6 0X16 RXI6 TXI6
400 X22 Y22 AX22 BX22 CX22 DX22 FX22 GX22 HX22 KX22 ILX22 MX22 NX22 0X22 PX22 QX22 RX22 TX22
500 X27 Y27 AX27 BX27 CX27 DX27 FX27 GX27 HX27 KX27 LX27 MX27 NX27 0X27 PX27 QX27 RX27 TX27
600 X32 Y32 AX32 BX32 CX32 DX32 FX32 CX32 HX32 KX32 LX32 MX32 NX32 0X32 PX32 QX32 RX32 TX32
700 X38 Y38 AX38 BX38 CX38 0X38 FX38 CX36 HX38 KX38 LX38 MX38 NX38 0X38 PX38 QX38 RX38 TX38
600 X43 Y43 AX43 BX43 CX43 DX43 FX43 GX43 HX43 KX43 LX43 MX43 NX43 0X43 PX43 QX43 RX43 TX43
900 X47 Y47 AX47 BX47 CX47 DX47 FX47 CX47 HX47 KX47 LX47 MX47 NX47 0X47 PX47 QX47 RX47 TX47
1000 XS4 Y54 AX54 BX54 CX54 DX54 FXS4 GX54 HX54 KX54 LX54 MX54 NX54 0X54 PX54 QX54 RX54 TX54
1500 X6I Y8I AX8I BX8I CX8I DX8I FX8I GX6I HX8I KX8I LX8I MX6I NX8I OX6I pxei 0X61 RX8J- TX8I
2000 XI08 YI08 AXI08 BXI08 CXI08 DXI08 FXI08 GXI08 HXI08 KXI08LX 106 MX 108 NXI06 0X108 PXI08 QXI08 RXI06 TXI08
2500 XI34 YIM AXI34 BXI34 CXI34 DXI34 FXI34 GXI34 HXI34 KXI34 LX 134 MXI34 NX134 0X134 PXI34 QXI34 RXI34 TXIM
3000 XI62 YI62 AX 162 BXI62 CXI62 DXI62 FXI62 GXI62 HX162 KXI62 LX 162 MXI62 NX162 0X162 PX162 OX162 RX162 TXI62
3500 XI88 YI88 AXI88 BX188 CXI88 DXI88 FXI88 GXI88 HXI88 KXI88LXI88 MXIS8 NXI88 0X188 PXI88 QXI88 RX188 TXI68
4000 X2I5 Y2I5 AX215 BX2I3 CX2I5 DX2IS FX215 CX2I5 HX2I5 KX2IS LX2I5 MX2I5 NX2I5 0X215 PX2I5 QX215 RX2I5 TX215
4500 X243 Y243 AX243 BX243 CX243 DX243 FX243 GX243 HX243 KX243 LX243 MX243 NX243 0X243 PX243 QX243 RX243 TX243
5000 X269 Y269
BX269 CX269 DX269 FX269
HX269 KX269 LX269 MX269
0X269 |PX269 0X269 RX269 TX269
6000
DX323 FX323
LX323 MX323
QX323 RX323 TX323
7000
FX377
MX377
RX377 TX377
Note.--The letter given in the above table of sixes indicates the size of the Link and the Qumerab the square feet of heating surface. EzanpU.--h CS
heater consists of a 24" x 72" storage tank (length not including dished heads) and contains 5 sq. ft of heating surface.
'
431
Heaters, Water
The Whitlock Coil Pipe Company
Manufacturers and Engineers
Baltimore, Md. Boston. Mass. Buffalo, N. Y. Charlotte, N. C. Chicago, 111. Cincinnati, 0. Dallas, Tex.
Denver, Colo.
Dea Moines. Iowa Detroit, Mich. Houston, Tex. Indianapolis, Ind. K>nran City, Mo. Memphis, Tenn.
HARTFORD, CONN.
pRODuerS
New ^ ^
New York, N. Y. Omaha, Neb. Philadelphia, Pa. Pittsburg^ Pa..
Rochester, N. Y. San Antonio, Tex.
San Francisoo, Calif.
Seattle, Wash. St. Louis, Mo. St. Paul, Minn. Tacoma, Wash. Troy, New York Tulsa, Okla.
Darling Bros. Montreal, Manufacturers?*# Whitlock Heaters, in Canada
See Telephone Directory/-.for Local Address
Whitlock type "K" storage heaters are manufactured in both horizontal and vertical types. The table shows sizes of the horizontal heaters only. We will gladly furnish dimensions of horizontal heaters and vertical heaters upon request. That
this type of heater is of particularly sturdy construction is evidenced by the increasing number of prominent engineers and architects who are specifying their use in ail types of buildings, including many of the largest and finest bmldings constructed.
Whitlock Type K Storage Heaters, Horizontal
' SHELLS
To be used with Type K Heating Section Shell Prices include Oadle. Manhole 11'xl5'
HEATING SECTIONS
.
Capacity based on Heating from 40 to 160 with v
Steam at 0 lbs. pressure. For other tempera
tures and Steam Pressures see Bulletin No. 27
Number
Gallons One
Filling
eter of Shell
Length Shell
Thick Thick ness ness
of Shell of Head
Weipht Shell
Number
Gallons i&
Maximum Size
Steam
iSL
Smallest Shell
into which Section will Fit
Inches
Weight
. Entire Heating Section
Lbs.
1 65 18
2 80 18
3 118 24
4 141 24
5 164 24
6 185 30
7 220 30
8 255 30
9 290 30
10 365 . 36
II 420 36
12 475 36
13 525 36
14 575 42
15 720 42
16 860 42
17 1000 42
18 950 48
19 1140 48
20 1310 48
21 1480 48
22 1190 54
23 1430 54
24 1670 54
25 1900 54
26 1420 60
27 1710 60
28 2000 60
29 2300 60
30 2460 72
31
2880
72
60 %
y.
400, H 0
100
2
I6x 48
75
72 60
A A
%$
450 H 1
150
600 H 2 200
2 2
I0x 60 ' 80
I8x 72
90
72 A 84 % 60 'A 72 'A 64 'A
700 H 3 250 $ 800 H 4 300 y,- 750 H 5 350 % 850 H 6 400 % 950 H 7 500
V3'A4
I8x 48 18x 48
175 185
y'A 18x 60 190
3i$
I6x 60 I8x 72
200 210
96 'A 84 % 96 X
Vi 1050 H 8 550
Z<4i
1300 1450
H9 HI0
600 700
I8x 72
215
3<4 I8x 84 220
5
24x 60
300
108 %,
Vx 1600 Hll 800
3 Vi I8x 96 260
120 & 96 >6
%<4
1800 1850
HI2 900 HI3 1000
33V$i
18x108 18x120
270 285
120 144
V'4z
2150 2500
HI4 1250 HIS 1500
5 5
24x 84 24x108
370 425
166 % 120 %
Vni
2900 2850
HI6 1750 HI7 2000
5 6
24x120 30x 96
450 570
144 %
Vi 3250 HI8 2400
6
30x120
620
168 V*
Vx 3700 H19 2800
6
30x132
670
192 % 120 %
V'4l
4100 3250
H20 3200 H2I 3600
8 8
36x 96 36x108
860 920
144 $ 168 V,
i
3700 4200
H22 4000 H23 4400
8 8
36x120 36x132
950 1020
192 y>
4700
H24 4800
10
36* 96' 1200
120 %
% 4300 H25 5400 10
36x106 1300
144 %
%. 4900 H26 6000 10
36x120 1380
168 X
% 5600 H27 7000 12
42x 96 1950
192 %
6200
H28 8000
12
42x % 2000
144 'A
36 5700 H29 9000 12
42x108 2300
168 36
36 6400 H30 10000 12
42x108 2460
DIRECTIONS FOR USE--Select the size storage you require and combine its designating number with the number which designates the desired hourly output. Assuming a required storage of 1000 gallons (No. 17 shell 42 x 168) and a required
hourly output of 1750 gallons (No. H16 Heating unit) you would specify a Whitlock Type K, No. 17H16.
432
The Whitlock Coil Pipe Company
Heaters, Water
WHITLOCK TYPE R INSTANTANEOUS HEATERS
This type of heater is used extensively as an instantaneous heater in connection with a separate storage
tank, as a swimming pool heater, as a hot water convertor for use with a heating system as well as for various'
special conditions.
.
Standard sizes of the 2 and 4 pass heaters are shown in the table. Dimensions on multi-pass heater
will be furnished on request.
Standard Sizes, Capacities, Dimensions and Weights
2 PASS, TEMP. RANGE; 40 F. to 80 F.
4 PASS. TEMP. RANGE 40 F. to 120 F.
Capacity
Size Gallons Over-all No. Length
Hour
Diaroeter of Shell
Size Size
Capacity
Water Connec-
Connec-
Weight
tions tions
Over-alJ i& Length
Diaro-
eter of Shell
Sbr tions
Size
Connec- Weight tions
iiy. y. iiy.0 iy.1
2 3 4 5 6
7
8
9 10 11
150 350
650 1100 1600 1900
2550 3200 3800 5100
6350 7950
14$ 19$ 23$ 29$
39% 24$ 30$
35/4 43$ 55V, 45
7 7 7 7 7 7
y/f 99Y$t 12
1'/,
'Yf
Vi 2
2>Vi
2 VA
23
2'A 3
2$
3% 4
35 35
46
80 90 110
130 145 170 240
270 300 360 420
610
80 150 300 480 650 800
960 1350
1600 2100 2600 3300
16$
21 % 2316$ft 38$ 24$
30>/, 35>/, 43/, 55>/. 52
7 7 7 7 7 7
%
9$ m 9% 12
% .* I l% VA
2 2 22V%i
1
2\'A 2
TA 2<4 3 3
y/z 4 5 5
80 100 115 135
150 170
220 270
300 350
420 620
12 9550 52 12
4
6
670 4000 61
12
3
6
700
13 12700 67
12
4
8
810 5300 79
12
3
6
860
3ft14 15900
15 19100
15 5 8 930 6600 55% 15 3% 8 . 940
15 5 8 1040 8000
15 4 8 1070
16 25600 59
17
6 10 1320 10500 71 17
5 10 1390
6iy17 31700 71
18 38200
17 20
6 10 1510 13300 83 17 8 12 1940 16000 72% 20
5 10 1580 5 10 - 2020
44400 7oy, 20
8 12 2100 18500 82% 20
5 12 2230
19 50700 78y, 20
8 12 2300 21000 92% 20
6 12 2430
19'/, 57100 59y, 26 10 14 2870 24000
26 6 12 2800
s!20 63450 64y, 26 10 14 3020 26700
21 79300 76Va 26 10 (6 3500 33300
26 26
6 12 3000 6 14 3480
22 95100 66
30
12
18 4250 40000 73 30
8 14 4015
23 126900 83
30
12
20
4780 53300 92
30
8 16 4600
24 158400 78
36
14
24
6550 66700 83
36
10 20 6100
25 191000 89 36 14 24 7060 80000 95 36 10 22 6900
Sizes 0 to 10 inclusive, have V/ O. D No. 18 B. W.C.
Copper l ubes. Remainder have 1' O. D. No. 17 B. W. G. Copper
Tubes.
Sizes 0 to 10 inclusive, have O. D. No. 18 B. W. G.
Copper Tubes.
Remainder have r O. D. No. 17 B. W. G. Coddct
Tubes.
Whitlock Heat Transfer Products include the following types of apparatus in addition to the Storage
and Instantaneous Heaters shown above: Feed WateT Heaters;, Heat Exchangers; Fuel Oil Heaters;
Superheaters; Condensers and Coolers for all kinds of liquids; Also pipe coils of any kind of pipe or
tubing and Air and Ammonia Receivers.
.
Additional information and quotations covering any of this apparatus will be gladly furnished upon
request.
.
'
433
Heating Surface
Aerofin Corporation
750 Frelinghuysen Avenue hie uuar k, h/.J.
L. C. Soule. Sec'y and Chief Engineer Manufacturers of
Fan System Heating and Cooling Surface
Type of Heater
Aerofin Standard Units (except for the galvanized casings) are constructed entirely of brass and copper. The seamless copper tubes in; O. D.) are wound with a helical crimped brass fin which is mechanically soldered to the tube while the fin is held tightly in place, so that a perfect metallic union is effected providing an excellent conducting medium for the heat. The fin surface is 80 per cent of the total surface, thereby effecting remarkable lightness in weight and great compactness.
Construction Advantages
The superiority of AEROFIN is demonstrated by its light-weight, non corrosive features, unit construction, space saving, and because it comes to the job already encased and ready for steam connections. Aerofin is furnished in
various sizes of standard units which may be bolted together to make batteries of any number of units, wide, high, or deep (in the direction of air flow).
Our catalogue will be gladly sent on request to any architect, engineer, or contractor desiring same for the purpose of specifying exact sizes of Aerofin Units or for obtaining complete information regardthe construction and installation of these units.
Weight
AEROFIN weighs from 9 to 16 per cent of equivalent cast-iron heaters and from 12 to 25 per cent of equivalent pipe coil heaters.
Two men can easily handle any of these AEROFIN Units.
Section through Header, Tapping
Hub. Tube Plate, Orifice Ring and Tubes, showing construction of Aerofin
Compactness
Several units may be assembled together like a sectional bookcase by simply bolting through the template-punched flanges.
Aerofin Units are furnished in tube lengths
ranging from 2 ft. to 12 ft. and with either one, two or three rows of tubes deep in each unit. There is only one standard size of header which makes the width of the units 29 in. over the casing flanges. The length of the casing is the tube length plus 8)4 in.
AEROFIN batteries have about the same face area as Is required by other blast heaters, but a great deal of space is saved in the direction of air flow. The 3-row units occupy only bi the depth of that required by other heaters, 2-row units save the depth and the single row units have the same 10 in. depth as is required for other types of heaters.
The galvanized steel casing with its template-punched flanges provides a means for direct attachment of the duct work or for the fastening of another set of batteries onto the back or front of the first battery, by -simply bolting through the flanges.
434
Aerofin Corporation
Heating Surface
For Diaphragm Valve Control ue Chapter on Temperature Regulation in AEROFIN Catalog
Comparative Installation Costs
The installed cost for AEROFIN
is generally less than that for other types of heaters, when the saving in erection and freight is considered. The factory cost of Aerofin (completely encased) some times appears higher than the fac tory cost of other heaters (quoted without casing).
In figuring installation costs, add to the price of cast-iron heaters and pipe coils an additional 6 or 7 cents
per sq. ft. of heating surface for the
galvanized steel casing. Aerofin
has its galvanized steel casing as an integral part of the unit. The average labor cost for installing cast-iron heaters and pipe coils is 12 to 25 cents per sq. ft. of heat ing surface, while the labor cost is only 3 to 5 cents per foot for in stalling AEROFIN. Remember that all sizes of AEROFIN Units can be handled by two men, without block and tackle.
Erection
Aerofin is so light and sturdily encased that it can easily be supported on steel
legs which are furnished as a standard accessory at a small charge.
No extra reinforcement of the building construction required with Aerofin--may
be suspended from ceiling with small angles and rods, without expensive platforms--
may be handled with only ordinary care and assembled without using any block and tackle or scaffolding.
f(n Wopilra,m Vtdtt c,,n.Tol m Chapt,, m Tcmverature
Regulation in AEROFIN Catalog ' . UNION
Aerofin can be erected in the same number of HOURS as would be required in DAYS to erect the heavy heaters.
DUPHBUGM VALVE UNION GLOBE VALVE
Figuring Capacities
The performance tables and phy sical data tables cannot be published here on account of the great amount of space required, but these data are contained in our catalogue which will be gladly sent on request.
In our catalogue it will be noted that face velocities and net face areas are published in stead of the usual free area velocities and the corresponding free areas. In case of AEROFIN the net face area is just double the free area and the face veloc ity is correspondingly )4 the free area velocity. The net face area of any unit equals the tube length times 2 ft., which is the width across the tubes between the inner surfaces of the casing. Hence to
435
For^OknIReiuSn Tank Gravity System
Aerofin Corporation
Hooting Surface
For Diaphragm Valve Control tee Chapter on Temperature Reputation in Aerofin Catalog
A foundation 24 in. high
will be required in cases
where a single large float
trap handles all the condensa
tion from an entire battery of Aerofin Units. This trap itself
will probably be from 6 in. to 14 in. high with the inlet near
the top of the trap--and this trap inlet should be 10 to 12 in. below the bottom of the lower Aerofin Unit.
find the net face area, simply multiply the tube length by 2 ft.
The single row units have 18 tubes wide, two-row units 35 tubes (18 and 17),
A foundation 18 in. high will
be sufficient in cases where an
individual thermostatic trap is
installed on each unit but these
traps can be used only on units
with tubes 4 feet long and less.
A foundation 18 in. high is
adequate where gravity return
connections are taken out of
these units and run down a con- '
siderable distance into a re
ceiver. This will allow the- `
condensation to drop out of
each unit at least 10 in. before
passing through traps, check
valves or horizontal gravity
return drip pipes. It is very
important to have about 10 in. drop out of the units
for the condensation so as to free the units of
water quickly.
^
Traps
.
and the three-row units 53 tubes (18, 17
We recommend the use of one heavy duty
and 18). The two-row and three-row units have staggered rows of tubes.
Specifications
'
float trap for taking care of several AEROFIN Units in a battery. This arrangement is less subject to errors of installation. The use of an individual thermostatic return line trap for each ^
.When ordering Aerofin, specify number of units, number of rows of tubes in each unit, length of tubes, and assembly, i.e., whether units will be installed with tubes vertical or horizontal, or laid flat, number
Aerofin Unit is satisfactory when the installa tion is made in accordance with our instructions and may be used on units with tubes 4 feet long and less. This arrangement, however, is not allowed on the larger sizes of Aerofin Units be cause. in many cases, a single unit might require
of sections wide or high. Specify whether steam or water is to be used and what will be the initial pressure. Specify number of steel supporting legs desired. If you also specify C. F. M., temperature range and steam pressure or water temperature, we
two thermostatic return line traps, and the piping connections would be too complicated and expen sive. Generally speaking, we would recommend, therefore, individual return line thermostatic traps for the small sizes of Aerofin Units and the heavy duty float traps for large sizes and batteries of Aerofin Units.
will check your selection, which is double
protection.
.
If Aerofin Units are to be laid flat or
face down with tubes on a plane parallel
with the floor, three-inch drip tappings are
required and must not be bushed. This
must be clearly specified. All units must
Great care should be observed in selecting the proper sizes of -traps for. Aerofin Units. Sizes should be figured on the basis of the volume of air being handled, velocities through the Aerofin. entering air temperature and steam pressure. The rate of condensation in pounds per linear foot per hour can then be looked up in the tables in cata logue. and this figure multiplied by the number
be installed with a pitch toward the
drip header.
i
If Aerofin Units are to be used with
water, all outlet tappings, in all sizes must
be same size as inlet tappings, and this
of linear feet in each unit gives the total pounds, of condensate which must be handled by the trap, and this amount, at the steam pressure being used, determines the trap size.
Check Valves
must be clearly specified.
When one large trap is used to handle the
Installation Features--Foundations
condensation from two or more units, hori zontal swing check valves, with disks hanging
It is very necessary with AEROFIN to have foundations sufficiently high to allow the water of condensation to run quickly out of the units and into drip lines or traps. AEROFIN founda tions should be from 18 to 24 in. high.
not more than 15 deg. from the vertical, must be installed on the horizontal drip pipe taken out of the water leg, at least 10 in. below the bottom of the lower AEROFIN Unit.
In cases where an individual trap can be installed on each unit, no check valves are necessary.
436
Aerofin Corporation
Heating Surface
Avoidance of Installation Errors ,
The Installation of AEROFIN with Vertical Tubes is recommended for the reason that this arrangement is less subject to errors of Installation and operation. The Horizontal Tube arrangement is entirely satisfactory, how ever. when installed in accordance with our instructions and diagrams. Either Vertical or Horizontal Tubes may be used with either Gravity Return System or Vacuum Return Line System.
Aerofin Units set up with tubes vertical, are less subject to installation errors than units set with tubes horizontal, due to the fact that the con densate can remain longer in the bottom header chamber without causing trouble. Installations of Aerofin with horizontal tubes, with the units set upright, have given perfect satisfaction, but in this case the engineer and contractor must specify and install the units with at least level tubes and preferably with a slight pitch of the units toward the drip tapping. If such a pitch is used the supply end should be set up M in. higher than the return end for all units up to 6 ft. in length, and 1 in. higher for all units from 7 ft. to 12 ft. in length. Furthermore, all of the diagrams in the catalogue and on the printed slip pasted on the return end of each unit, indicate a positive recommendation that full 6ize drip nipple be taken out of each unit into a tee or eil and a full size water leg taken out of the bottom of this tee or ell. This is to allow the condensate to flow quickly out of the unit. The trap connection or gravity return connection (10 in. below bottom of lower AEROFIN Unit) should then be taken horizontally out of the side of this water leg. Installations have caused trouble where the drip tapping has been bushed or reduced and where traps have been installed on a direct Line out of the drip tapping from the unit, and such arrangements are absolute contrary to instructions contained in our catalogue.
AEROFIN Used as a Tempering Coil
Special attention is directed to AEROFIN
used as a tempering coil. When an air washer
Is not used and there is sufficient height for a
by-pass underneath the units, the installa
tion may be made according to Fig. 19, Page 34
of the catalogue where a louvre damper i9 in
stalled covering the entire face of the Aerofin
heater and connected up directly with the by-pass
damper, both being operated by a single diaphragm
motor controlled by a thermostat located in the
discharge duct from the fan. In this case the steam
supply valve to the Aerofin Heater is hand
operated.
.
,
For other installations, with or without an air
washer, the outside battery of Aerofin should be
a single-row unit receiving the freezing air, with
hand control or else with control by a thermostat
located in the fresh air chamber, and arranged to
turn steam on this single-row battery at 35 to
40 deg. above zero and to keep steam on this out
side single-row battery at all times when the outside
temperature is colder than 35 or 40 deg. above zero.
The additional coils required may be arranged as
shown in Figs. 20 to 28 in the catalogue.
SPECIAL WARNING is given against the installing of Aerofin with a 2-row or 3-row battery with duct-thermostat control, to receive freezing air. The off and on control in this case, regulated from the duct thermostat, would probably result in freezing the condensate within the Aerofin Units and this method of installation is obviously incorrect.
Write for our pamphlet showing special arrangement of two-row AEROFIN Tempering Coils with relay steam control.
If engineers and contractors will carefully ob serve instructions and diagrams contained and shown in our catalogue, the operation of Aerofin will be found eminently satisfactory in all cases.
Write for catalogue, instruction leaflet and service details.
Sales
Aerofin is sold only by.Manufacturers of Nation ally Advertised Blower Heating Apparatus.
For Diaphragm Valve Control see Chapter on Temperature Regulation in Aerofin Catalog
Anchor and Support Steam Piping 1ndependent of Beaten
pilch Thae Vnil, Tolmrd ^ Header y. Unil, up ffdf
/' For Unit, over tf-tf
Didance from Edge of Casing to Center of t* Return Tapping 8H' Center of 3* Return Tapping 3%'
For Gravity System--Conned Thru Float Trap Into Main Return
437
Cleanout
Support Return Piping From Floor
Block for Support
Independent of Heaters
Heating Surface
The Rome-Tumey Radiator Go.
Rome, N. Y.
Exclusive Manufacturers of HELICAL FIN
High Efficiency Extended Surface Copper Radiation
Radiators, Heaters, Condensers, Coolers, Etc.
Products
Standard Heater Units complete with steel casings for fan type heating and ventilating systems, ready for installation.
Standard and Special Heater Cores without Casings for
manufacturers of Heating and Ventilating Apparatus.
a
Standard Copper Radiators for concealed direct radiation.
Condensers for Electric Refrigerators.
HELICAL Finned Seamless Copper Tubes in all sizes from A" O.D. to 1 \i" O.D. for any type Heat Transfer Equipment.
. ^ Cooling Systems and Radia tors for Diesel Electric Loco motives, Gasoline Engines, Heavy Duty Trucks and Aero planes.
Construction
HELICAL Fin Products are made of heavy gauge Seamless Copper Tubes which are en circled with a continuous flat copper radiating fin, free of corrugations, which is formed under power around the tubes so tightly that there is a copper to copper contact. This fin is attached to the tube by a thorough coating of solder. The tubes are joined to brass header plates by improved methods which insure an absolutely tight union. The headers or tanks are made of a special quality of brass suitable for this type of work.
438
The Rome-Turney Radiator Co.
Heating Surface
Small size Rome HELICAL Fin Copper Healer suitable for concealed radiation. This shows heater with headers or end tanks removed. Note that tubes are "rolled in" to the tube sheet. Radiators and heaters of this type are suitable for direct radiation.
Advantages
HELICAL Fin Heater Units and Radiators offer great advantages in high efficiency, light weight extended surface radiation. The cores consisting of tubes and headers, are made of copper and brass and are therefore not subject to corrosion.
Data and further information furnished promptly upon request.
Rome HELICAL Fin Copper Heater with headers attached for use either with fan or for direct radiation.
Note the sturdy all copper construction. Rome HELICAL Fin Copper Radiation offers sturdy, compact, light
weight, highly efficient equipment for any heating installation.
'
For modern heating equipment in schools, factories, and home's Specify Rome HELICAL Fin Copper Radiation
Specify
ROME-TURNEY COPPER RADIATION No corrosion - - - - Good forever
'
ROME-TURNEY ROME, N. Y.
Radiator Specialists since 1905
439
Heating Systems
D. & T. Manufacturing Company
3001 La Salle Street
St. Louis, Mo.
ORIGINAL TANK IN BASEMENT SYSTEM
Placing the expansion tank in the basement on hot water installations is destined to become the one general method. WHY NOT GET INTO THE GAME?
Eleven years' experience and up wards of 100,000 D. &T.Tank-in-theBasement Systems in successful opera- n. tion throughout the United States and Canada, should be sufficient proof of the success of this system to. the most skeptical heating engineer or contractor.
The D. & T. System is efficient, simple and foolproof.
Send for booklet entitled, " Pro
gress in Hot Water Heating."
.
As a logical sequence to the development.of the tank-in-basement idea, came the growing demand for a specialization of this tested and proved idea--for a basement expansion tank to be used in buildings where extreme simplicity and economy are of paramount importance. To sup ply this need, we offer and guarantee the Simplex Air-Sealed Tank-in-Basement Equipment.
The Simplex Air-Sealed Tank-in Basement Package Equipment con sists of:
1 Specially Constructed Airtight Expansion Tank
1 Relief Valve
1 Thermometer
1 Gauge
1 Vacuum Breaking Valve for automatically charging Tank with air.
440
Heating Systems
The Mouat Vapor Heating Co.
1246 W. Fourth Street
CLEVELAND, OHIO
The Mouat System of heating is 2-pipe gravity vapor, operating at from 1 to 3 oz. pressure, resulting in positive and successful hand control of the supply of heat at the radiators. It has no pumps, return traps or mechanically operated parts.
RADIATOR RETURN FITTINGS
The Mouat Radiator Return Fitting is a specially designed water seal, with a by-pass for air. It also has provision for drainage to prevent freezing.
Note--All of the Mouat Specialties have been designed to work in conjunction, with one another; therefore, these specialties are not sold separately, but only complete for each installation.
Our organization is composed of a trained corps of specialists in Mouat Vapor Heat. They have had many years of practical experience and have designed and supervised thousands of instal lations. These specialists are at your service.
PACKLESS FRACTIONAL RADIATOR SUPPLY VALVES
Has Jenkins Disc and is substantially made.
Easily adjusted, when installed, to suit the size or working conditions of the radiator to which it is connected.
AIR RELIEF VALVES
DAMPER REGULATORS
The Mouat Air Relief Valve or Main Vent is provided with a properly pro portioned vent ing area.
It has no thermostatic, mechanically operated or float parts.
VAPOR PRESSURE GAUGES
The Mouat Vapor Pressure Gauge indicates ounces of pres sure by water elevation in a glass tube.
This regulator is con
trolled by the pressure
in the boiler and auto
matically regulates the
drafts. It will maintain
a pressure of from one-
to three ounces, and is
sufficiently sensitive to
operate at a variation
of less than one ounce.
The working parts are
connected above the
water line of the boiler
and are not affected by a
high or low water line or
the variations of an un
steady water line. No
water can be forced out
of the boiler through the
regulator.
,
This regulator can also be used to reduce steam pressure to vapor pres
sure on central station heating plants.
Showing how the Heat can be Graduated or Controlled
441
Heating Systems
E. 135th St.
MUELLER CO.
Decatur, 111.
Walnut Ave., Bronx, New York
BJftANCHES 1072-76 Howard St., San Francisco
2468 Hunter St., Los Angeles
PRODUCTS
Mueller Automatic System of Hot Water Heat Control
Reducing and Regulating Valves for water. Reducing and Regulating Valves for steam. Relief Valves. Water Strainers.
Complete line of High Grade Plumbing Brass Goods
Mueller Automatic System of Hot Water Heat Control--This is a closed system operating automatically without an expansion tank. It can be quickly installed on either new or old jobs.
The water in the system is always kept fresh. This promotes good circulation. Just enough water is admitted by the re ducing valve to supply the amount re leased by the relief valve.
When air is released from a radiator it is not necessary to go to the basement to turn water into the system as is the case with other systems. The reducing valve takes care of this.
A very considerable saving in fuel is effected due to the automatic control of dampers and rapid circulation.
Perfectly safe as both reducing valve and relief valve are operated by the pressure of the water in the system. These valves are especially constructed and tested for use on this system.
The reducing and relief valves are positive in action and durable, the working parts being made of bronze with phosphor bronze diaphragms.
Boiling point of water raised to higher point than with open system.
The damper regulator is a very important part of this system as it is not only a fuel
saver but also is a safety feature, checking the fire when the desired temperature is reached.
Reducing and Regulating Valves--For steam, water, air, gas, oil, etc., and relief valves that are absolutely dependable. They will not stick after long periods of disuse.
Brass Goods--Everything in the line ofbrass faucets, stops, etc., for lavatory and bath room, and also complete line of laboratory faucets adopted and approved* by leading universities such as the Mas sachusetts Tech.
Mueller Co. has been in business from 1857 and has an acknowledged reputation for quality goods.
Specific information regarding any Mueller product will be cheerfully given upon re quest.
Heating Systems and Relief Valoes
Neptune Meter Company
50 East 42nd Street, NEW YORK
Branch Offices Atlanta, Ga..... .......................... 525 Virginia Avenue Denver, Colo...........................1700 Fifteenth Street Boston, Mass.......................................141 Milk Street Los Angeles, Cal.................. 701 East Third Street Chicago, III.................... 130 North Jefferson Street San Francisco, Cal......................320 Market Street St. Louis, Mo... ................... ..............1912 Pine Street Portland, Ore................ .................474 Glisan Street
. Neptune Meter Co., Limited, 345 Sorauren Avenue, Toronto, Ontario
RED TOP PRESSURE SYSTEM OF HOT WATER HEATING
This type of heating system is proving increasingly popular throughout the country. It is easily installed at a price which attracts the owner, builds good will for the architect and engineer while allowing a real profit for the contractor. Owners appreciate the high efficiency and the economy ef fected by the Red Top Pressure System.
RED TOP RELIEF VALVE MODEL No. 2
This valve and an airtight expansion tank, to be located in the basement near the apparatus, are the only special pieces of equipment needed.
Red Top Relief Valves act on the dead weight or gravity principle, and are the only
valves of their kind to be approved by the Underwriters' Laboratories, Inc..
.
In the Model No. 2 a special nickel weighted piston is forced off the seat when pressure
reaches 30 pounds. Non-corrosive metal is used throughout, and there are no springs,
levers or other complicated parts to get out of order. Made for either "open" or
"closed" systems. They are
inches high, 5% inches wide, with inlet threaded
for standard 1 inch fitting and male outlet
threaded for.l inch fitting.
_
Sectional View, Red Top-Relief Valve Model No. e
RED TOP MODEL No. 1 protects domes
tic hot water supply, and prevents range
boiler explosions and other ruptures. It is
made with inlet threaded for standard y2 inch pipe fitting and outlet drilled and
tapped for H inch connection. It jpay
be adjusted to relieve automatically at
50, 75, 100 and 130 lbs. pressure. Its
measurements are
inches high and
4 inches wide.
'
443
Heating Systems
Reading Heater & Supply Co.
Incorporated GENERAL OFFICES Woodward and Church Streets'
Reading, Pa.
Manufacturers and Distributors of
The Reading Tank-in-the-Basement Systems for Hot Water Heating and The Reading All-Metal Temperature Regulator for Hot Water Heaters, Domestic Heaters and Storage Tanks, Wholesale Dealers in Boilers, Radiators a nd Heating Specialties.
The Reading Tank-in-theBasement Sys tem, for Hot Water Heating, is a long step in advance of the old method of placing the Ex pansion Tank above the high est radiator, in that it removes the tank to the basement, obviating many objectionable features and removing the liability of fracture by freezing of the expansion line or overflow.
The Reading Tank is proportioned ac cording to the amount of radiating sur face on the job, and provides ample air space to allow for expansion. The gauge glass enables the operator to detect any air leakage and to maintain a sufficient air space.
The Reading Relief Valve permits a slight pressure on the system, even when the water is cold. This means increased
efficiency and prevents the accumulation
of air in the upper radiators. The in
creased pressure will not cause leaks as
the air cushion prevents undue strains.
We furnish complete instructions for in
stallation.
-
Capacities and Prices
(Subject to trade discount)
No. 1. 300 to 500 ft. of Radiation $38 No. 2. 500 to 800 ft. of Radiation 40 No. 3. 800 to 1,000 ft. of Radiation 41 No. 4. 1,000 to 1.300 ft. of Radiation 45 No. 5. 1,300 to 1,800 ft. of Radiation 50 No. 6. 1,800 to 2,000 ft. of Radiation 56
In ordering Reading Tank-in-the-Basement Systems the following information is required: Amount of radiation on job, square feet; number of stories to be heated.
The Reading All-Metal Regulator can be used to control water temperature in any system, regardless of pressure car ried. The Regulator is easily applied and the action is sensitive and reliable.
We will be glad to send a catalog describ ing our complete line of Specialties, upon request. Our Engineering Department will welcome the opportunity to assist the trade in difficult problems pertaining to our line, and we invite such inquiries.
We carry a large stock of boilers of all capacities, Round or Sectional, and can make prompt shipments.
IrSTEPtat? V/*f ecAOma All. fCTAi.
444
Abxaatok
Heating and Piping Systems
Grinnell Company, Inc.
Heating, Industrial and Power Plant Piping, Fittings, Hangers, Valves, Pipe Bending, Welding, Piping Supplies, Etc.
Executive Offices PROVIDENCE, R. I.
Albany, N. Y.
Atlanta, Ga. (Plant and Foundry) Auburn, R. I. (Plant and Foundry) Baltimore, Md. Boston, Mass.
Buffalo, N. Y. Charlotte, N. C. Chicago, III. (Plant) Cincinnati, Ohio
Cleveland. Ohio
BRANCHES AND PLANTS
Columbus, Ohio Dallas, Texas Denver, Colo.
Des Moines, Iowa Detroit, Mich. Hartford, Conn.
Indianapolis, Ind. Kansas City, Mo.
Kearny. N. J. (Plant)
Milwaukee, Wis.
Minneapolis, Minn. (Plant)
New Orleans, La. New York. N. Y.
North Charlotte, N. C. (Plant) Orlando, Fla. Philadelphia. Penna. (Plant) Providence, R. I. (Plant and Foundry)
Rochester. N. Y. St. Louis, Mo. Warren, Ohio (Plant and Foundry)
GRINNELL COMPANY OF THE PACIFIC
Los Angeles, Cal. (Plant)
San Francisco, Cal. (Plant)
Seattle. Wash.
GRINNELL COMPANY OF CANADA, LTD.
Montreal, Que. (Plant)
Toronto, Ont. (Plant and Foundry)
Vancouver, B. C. (Plant)
Winnipeg, Man.
Cooperative Engineering and
Contracting Service on Heating Systems--Seventy years' experi ence in piping installation puts Grinnell Company, Inc., in an especially advantageous position to render service of the highest order to heating engineers and their clients. This not only includes a cooperative advisory service which is frequently used by engineers who desire authoritative practical infor mation when working on problems more or less out of the ordinary, but also a complete and expert contracting service as well.
Close contact with power and industrial piping enables Grinnell Engineers to approach questions of heating with full realization of their relationship to other factors. In formation supplied by members of the Grinnell Staff regarding the utilization of waste heat through the agency of hot water systems, the utilization of exhaust steam, etc., has proved of invaluable assistance in working out ' more efficient heating.
Grinnell Engineering or Con tracting Service is equally satis
factory on the remodeling of old heating systems--a type of work with which the Company is thor oughly familiar.
A Revolti tionary Developmen t
in Forced Hot Water Heating--
One of the chief difficulties in the
way of a broader use of forced hot
water heating systems with their
many important advantages has
been the determination of pipe
sizes by the complex and arduous
method of calculating frictional re
sistances. Failure to do this, plus
easily possible installation mistakes
has resulted in many unsatisfactory
installations of this type of heating
system.
"
This whole complication has now
been simplified by the invention of
the Grinnell Equiflo Valve.
The Grinnell Equiflo Valve for forced hot water heating permits:
1. The calculation of pipe sizes for this system by simple tables, similar to those commonly used in connection with the design of vacuum steam systems.
2. Change in locations of radiators or . piping during installation to take
care of local construction conditions without recalculation of pipe sizes.
Grinnell Company, Inc.
Heating and Piping Systems
The Grinnell Equiflo Valve for forced hot water heating accom plishes :
1. More perfect equalization of flow to every radiator than has ever been ' practical by even the most careful calculation of pipe sizes. Size or location makes no difference.
2. The introduction of sufficient fric
tional resistance to completely over
come that trouble so pronounced in
most forced hot water heating sys
tems which is due to the well-known
war between pump head (a constant)
and the gravity of temperature head
(a variable). This insures absolutely
equalized circulation at all tem
peratures.
.
3. Lower pumping costs.
The Grinnell Equiflo Valve:
1. Serves as the regular shut-off valve for each radiator. It is of the pack less type.
2. It is so designed that after the instal
lation is completed a multiple-
orifice cartridge or tube, having a
definite resistance pre-determined by
Grinnell Co., is dropped into place in
same.
`
In order to obtain all the ad vantages of this new development, it is only necessary for the Con sulting Engineer to specify that each radiator shall be equipped with a Grinnell Equiflo Valve. This device is marketed through the regular heating trade, and proper results are guaranteed by the standing of Grinnell Company in the hot water heating field.
Power and Industrial Piping --The advantages of placing con tracts for all necessary piping with one reputable company are ob vious. Responsibility is centralized and a saving in cost is often effected. Grinnell Company, Inc. is prepared to submit bids and render expert, personally super vised construction service on all
types of Power Plant and Indus trial Piping including Automatic Sprinkler Systems, piping for Acids, Alkalis, etc., Compressed Air Cleaning Systems, Humidifying Systems, Drying Machinery. A contract placed with Grinnell Com pany is carried out to the satisfac tion of all concerned. Materials of the highest quality are used. Grin nell Adjustable Hangers and Grin nell Fittings, for instance, save work in installation and make for cleaner, more satisfactory finished jobs and lower maintenance costs.
Pipe Bends, Welds, Etc.-- Grinnell facilities for making Pipe Bends, Welds and Lap Joints are second to none. Three plants-- Providence, R. I., Auburn, O., Atlanta, Ga.,--equipped with' special modern machinery and operated by the most skillful work men make possible unusually prompt and efficient service on this important work.
Grinnell Fittings--After years of buying cast iron fittings on the open market Grinnell Company concluded that the best way to obtain clean accurate fittings of uniformly high quality was to. cast them in Grinnell Foundries. Grinnell Cast Iron Flat Band Fittings made to conform to the American standard adopted by the Manu facturers Committee on Standardi zation of Fittings and by the N. F. P. A. can now be obtained by other users. Impartial pur chasers agree that accuracy of threading, freedom from sand holes, and smoothness of core speed up installations and reduce replace ments wherever Grinnell Fittings
are specified.
GRINNELL COMPANY
Heating, Industrial and Power ! 'lant Piping, Fittings, Hangers, , Valves, Pipe Bending, Wei ling. Piping Supplies, Etc.
Grinnell Company, Inc.
Heating and Piping Systems
GRINNELL COMPANY
Heating, Industrial and Power Plant Piping, Fittings, Hangers,
Valves, Pipe Bending, Welding, Piping Supplies, Etc.
Grinnell Adjustable Hangers
ONE of the chief. advantages of Grinnell Adjustable Hangers is that they permit adjustment of pipe lines after installation, thus obviating the necessity of turn buckles or the removal of hangers. And their time and trouble-saving qualities during installation are equally exceptional. On this and the two following pages are shown a few Grinnell Hangers of particular interest to heating engineers. The Grinnell Hanger Blue Book, however, illustrates and describes the complete line and carries mechanical drawings and dimensional tables on practically every hanger shown. This feature alone makes the Grinnell Hanger Blue Book invaluable to Engineers, Architects and Draftsmen. As many copies as you require will be sent on request.
Fig. No. 101
Adjustable Swivel Ring--Solid Ring Type
(Patented October 4. 1921)
THIS Malleable Iron Adjustable Swivel Ring can be used with Coach Screw Rod or Machine Threaded Rod in connection with practically any type of Ceiling Flange, Expansion Case, Insert, etc.
The unusual feature of this ring is the Swivel Shank. An adjustment of at least 1H in. is secured by simply turning the nut on the shank. No temporary support of the pipe line is necessary while making adjustments.
By means of a unique locking device the Swivel Shank automatically locks, preventing loosening due to vibration in the pipe line.
6
. Fig. No. 104
Adjustable Swivel Ring--Split Ring Type
(Patented October 4. 1921)
THE Split Ring Type of the Adjustable Swivel Ring was also designed for use with Coach Screw Rod or with Machine Threaded Rod. The Swivel Shank feature allows the same adjustment as in Fig. No. 101 and the off-center hinging of the ring, by providing sufficient seating to hold pipe securely, permits adjustments before the Ring is closed. The closing of the hinged section of this Ring securely locks the Swivel Shank.
Fig. No. 225
Universal Side I-Beam Clamp
(Patented April 6. 1915)
ADAPTABLE to many uses, this Side I-Beam Clamp has ample strength for hanging % to 12 in. pipe from I-Beams. This Clamp in different sizes will fit all sizes of Standard and Bethlehem I-Beams, and most sizes of Bethlehem Girder Beams.
Under conditions requiring vertical adjustment of the pipe line, this Side I-Beam Clamp is used with an Extension Piece or an Extension Eye Bolt.
Fig. No. 226
Universal Channel Iron Clamp
(Patented April 6, 1915)
DUE to the adjustability of the Grinnell Channell Iron Clamp, three sizes of these clamps, with varying lengths of clamp rods, will meet most of the conditions encountered in practical installation work in connection--with channels. We know of nothing else on the market which will obviate the necessity for the making of specials for Channel Iron work.
. 447
Grinnell Company, Inc.
Heating and Piping Systems
GRINNELL COMPANY
Heating, Industrial and Power Plant Piping, Fittings, Hangers,
Valves, Pipe Bending, Welding, Piping Supplies, Etc.
Adjustable Wall and Column Radiator Brackets
(Patents Pending)
___IIII
' I 'HE bracket on the right, Fig. 190, is designed to
support a single tier of wall radiation. A similar
bracket, No. 191, is designed to support a double tier,
one in front of the other.
The bracket on the left, Fig. 189, is designed to support the legless
Ttype of column radiation.
Only one bolt is necessary to securely fasten these brackets to the
wall.
This means low installation cost and it cuts drilling holes down to a minimum. Cost of installation can be further
'J.reduced by spacing these hangers farther apart than
ordinary type of weaker construction, especially where
Fig. No. 189
hook bolts are set in the wall. When hook bolt is used, it can be set without
jVo.'* 0
extremely accurate measurements, due to the liberal range of vertical and horizontal
adjustment, and as only three points of the bracket touch the wall, the difficulty so often
experienced with rough brickwork is practically eliminated.
Adjustable Wall Coil Hangers'
(Patented May 20. 1913)
THE Adjustable Wall Coil Hanger can be furnished with four separate brackets--two for single coils and two for double coils. The brackets locate the center of the coils 2\4 or 614 in. from back of bracket. Where double coils are used the second hangs 3}4 in. in front of the first.
Besides the adjustable advantages of these hangers which permit the
hanger plate to be raised or lowered to secure perfect pipe alignment,
it is only necessary to fasten the individual bracket in place by two bolts.
This saves labor.
'
'
Fig. No. 160
Saddle Hangers-- Standard Type
Fig. No. 169
GRINNELL Saddle Hangers are unique inasmuch as the hanger bar is of steel in stead of cast iron. This feature not only reduces the weight of the hanger but also re duces its cost. Hex-nuts at bottom of rods support the hanger and allow liberal adjust ment. These Saddle Hangers are excep tionally strong and will not sag. Labor cost of installation is considerably less than with Branch Rolls and Rods.
The Saddle Hanger is used in connection with Yi in. rods and hex-nuts on 2 to 8 branch hangers
--% in. rods and hex-nuts on 9 to 12 branch hangers--and with Expansion Cases, Grin nell Hanger Flanges, or with Side I-Beam Clamps to steel work, for supporting overhead coils.
448
Grinnell Company, Inc.
Heating and Piping Systems
GRINNELL COMPANY
Heating, Industrial and Power Plant Piping, Fittings, Hangers, Valves, Pipe Bending, Welding, Piping Supplies, Etc.
Fig. No. 174
Adjustable Swivel Pipe Roll
(Patented October 4, 1921)
nnHE Adjustable Swivel Pipe Roll supplies the need for any ad justable type of pipe roll hanger with single hanger rod. It
is unique inasmuch as vertical adjustment can be made by use of the swivel shank at the top of the hanger.
Branch Pipe Rolls
GRINNELL Pipe Rolls are especially designed to take care of expansion and con traction. The rolls are made hollow so that only a small surface is in contact with the rod whereas the surface in contact with the pipe is made as large as possible.
This allows the roll to take care of expan sion and contraction properly.
Through a specially designed socket, vertical adjustment is allowed at the bottom of each vertical rod as well as at the Ceiling Flange. Furthermore, the nut at the bottom of the hanger rod fits into a recess of the socket preventing loosening or turning from vibra tion.
Fig. No. 17g
Adjustable Pipe Stand--Anchor Chair-- Pipe Seat--used with Welded Steel
Bracket
Fig. No. 196
WELDED Steel Bracket Fig. No. 199 is light in weight as compared with the usual cast iron brackets. It
was designed primarily for use with the Grinnell Adjustable
Pipe Stand Fig. No. 196, Anchor Chair Fig. No. 197 and Pipe
Seat Fig. No. 198, here illustrated.
Fig. No. 199
These combine the strongest type of brackets and pipe sup ports procurable. The Adjustable Pipe Stand as used with the Steel Bracket has excellent adjustment features, it being, possible to obtain vertical adjustment by simply ad justing bolts on the roll stand. A lateral adjustment or movement is possible with the Adjustable Pipe Stand and Pipe Seat by. sliding the Stand or Seat on the bracket. With the Anchor Chair, lateral adjustment is also possible if Chair is moved before the nuts on the anchor yoke are tightened.
Fig. No. 197
449
Fig. No. 198
Instruments, Recording
American Schaeffer & Budenberg Corp.
Brooklyn, N. Y.
Atlanta, Ga.
Cleveland, Ohio
Los Angeles, Cal.
Salt Lake Citt, Utah
Boston, Mass. Buffalo, N. Y.
Chicago, III. Deteoit, Mich.
Philadelphia, Pa. Pittsburgh, Pa.
WruMViSH. Tulsa, Oela.
Manufacturers of Indicating and Recording Gauges; Draft Gauges; Indicating and Recording Thermometers; Tachometers; Pressure and Temperature Con trollers; Pop Safety and Water Relief Valves; Gauge Testers; "U" Gauges; Steam Traps; Engine Indicators; Counters; Calorimeters; Locomotive and
Engine Room Clocks; Barometers; Steam Whistles; Hydraulagraphs; Gauge Boards
American Temperature Controller
American (formerly Honeco) self-operated Temperature Con
troller, type 2205, is exceptionally well adapted for maintain ing any desired tem
perature of the water in hot water tanks.
It has a wide range and close control at the setting point, giving a 50 per cent safety factor even at the
. maximum point of range without damage. Adjust
ing device t-
locks the controller against unauthorized interference.
No expensive pipe lines, compressed air or auxiliary force is required for operation. The motive power needed to open and close valve is supplied by the controller itself. ' The patented motor is unusually strong and durable and the instrument itself is extremely rugged throughout.
The American Controller is guaranteed to accurately perform its function for the purpose sold
Instructions are
lithographed on the
chart plate, so they
can not be lost.
Time punch shows
when and how often
readings are taken.
Any slight inaccu
racies due to rough
handling can be
..
quickly corrected by means of the adjusting device.
The chart is held in place by a non-removable
clamp, preventing loss of clamp. Automatic pen
release lifts pen arm away from chart automatically when the door is opened, preventing arm from being strained. Fitted with an inverted Monel metal pen arm with tension adjusting device and
non-corrosive glass pen. Has 10-in. chart with
extra large recording area. Write for Catalogs E-59 and H-59.
American Air Duct Thermometer
Designed especially for both warm and cold air ducts. Fitted with polished brass or nickel
plated "VM shaped case, glass front. Furnished with 9-in. or 12-in. scale gradu ated 0-160 deg. fahr.
American Indicating Gauges
A complete line of American pressure, vacu um and draft gauges for all purposes.
Write for Catalog A-59.
American Recording Gauges and Thermometers
The recording systems of American (for merly Columbia) Recording Gauges and Thermometers are interchangeable. A separate recording system can be kept in stock at small cost and quickly inserted while the old one is being repaired, should repairs be necessary due to accident.
Write for Catalog F-59.
American Pop Safety and Water Relief Valves
Complete line for all applications. Mod ern design. Finest construction. Each valve guaranteed to properly perform its function. Send for Catalogs U-59 and V-59.
American Ideal Steam Trap
Built on extremely rugged lines and guaranteed for all pressures. Valve dis charge orifice is much larger than in ordinary traps, which means larger capac ity. Valve seat can be renewed without disconnecting trap. The heavy float is made of seamless, .non-corroding copper. It resists pressures up to 600 lbs. per sq. in. and is guaranteed for life of trap. Valve seat is under continuous water seal, thus cannot leak live steam.
Send for Catalog S-59.
450
Instruments. Combustion
Draft Gages Gas Analyzers
^3he flays (orjto C02 and Draft Recorders
Portable Test Sets
Michigan City. Indiana
Hays Combustion Instruments
.Save Fuel Eliminate Smoke Simple, Practical, Accurate
TYPE V 3 Scales
HA KS INCLINED TUBE DRAFT GAGE--Rugged, Accurate, Inexpensive
HA YS A UTOMA TIC COi 6* DRAFT RECORDER-- The simplified and Im proved Model " B"
Draft Gages are undoubtedly the most important all- 'round useful in strument in combustion, heating aod
ventilation. They indicate conditions of fuel bed, baffles, gas passages, ducts, flues and set tings and suggest the cause and remedy. No
other one instrument covers so many uses, or is so indispensable. We offer a complete lino for every purpose.
Hays Pointer Gages are available
in two kinds of cases. Type " F" for one or two pointers and Type "V" for any number of scales grouped in a side-by-side arrangement. These gages arc new in principle and design and do not employ liquids, floats, tanks, gears or magnets. The simple operating mechanism consists of a slack leather dia
phragm--a pliable, tough, gas-tight animal membrane--and a phosphor bronze cantilever spring. Any range can be supplied. Leveling is unnecesary. Calibration is permanent.
Hays Inclined Tube Draft Gages
with stamped steel case, machined brass oil well and straight glass tube can be supplied from stock in any range from Yi in. to 4 in. water. Bright red oil used.
We also have U-gages or Manometers, Direct
Reading Gages, Vernier Draft and Pressure Gages, and Portable Gages for test work.
Hays Automatic CO2 and Draft Recorder shows "what", "why," and "when" about the way fuel is burned.
Easy. to install and operate. Dependable, rugged and simple. Great dividend payers.
Hays Portable Test Set--"The Combustion Compass"--This set com bines in a substantial and convenient
carrying case all instruments necessary to make a complete combustion investigation:
(1) Flue Gas Analyzer complete with rub ber tubing and aspirator bulb; (2) Flue Gas
Thermometer, range 100 to 950" F. in metal armor; (3) Portable Draft Gage,
either the Hays Portable Inclined Tube Draft Gage in pocket case, range 0-^ in. or the Hays Vernier Draft Gage,
range 0-3 in.
TYPE F-2
1 OR 2
POINTERS
HAYS POINTER GAGES with illuminated scales and bright red pointers. Can be read from a distance of 100 to 160 ft.
Portable Draft Gage--This inclined tube gage comes in a pocket case. Removable sup porting foot, permits setting the gage up on any flat surface. A knurled wall screw and rubber tubing are also furnished. Ideal for testing chimney draft, locating trouble, reducing service expense. Write for treatise on use of Draft Gage by Prof. A. P. Kratz, University of Illinois. `
451
Instruments
Taylor Instrument Companies
' ESTABLISHED 1851
Executive Offices and Factory, ROCHESTER, N. Y. Canadian Plant, Tycos Building, Toronto, Canada
New York Boston
SALES OFFICES
Pittsburgh San Francisco Tulsa
Chicago
Los Angeles St. Louis
Atlanta Philadelphia
Cleveland Indianapolis
Denvrb Cincinnati
Detroit Minneapolis
Indicating, Recording and Controlling Instruments in over 8000 types ana
styles. For Steam, Power, Refriger ating and Cold Storage Plants. Air Duct, Oven, Kiln and other Industrial and Manufacturing Appli
cations.
`Tajrfbr Products Include
Among the instruments of particular interest to Heating and Ventilating Engineers are: Thermometers. Pyrometers. Electrical Contact Temperature Controls.
"Single-Duty" and "Double Duty" Temperature Regulators.
"Thermo-Tyme" Regulators. Self-Acting Temperature Regu lators.
Pressure Regulators. Draft and Vacuum Gages.
Tycos Industrial Thermometers
Designed for Air Ducts are extremely sensitive and are used extensively by heating and ventilating engineers.
Tycos Recording Thermometers
Used to record air duct temperatures. The self-contained type (not illus trated) is used to record room tem peratures--Clock furnished with 7 day charts.
Tycos Wet and Dry Bulb Recorders
A convenient method of obtaining relative humidity records. Equipped with blowers to keep air moving over bulbs at uniform velocities.
Tycos Temperature Regulators
Type P is supplied with flange
connections for air ducts, air
washers, and room condi
tioners, etc.
Double duty Regulators are
used with wet bulb attachment_____
for humidity control.
Tycos Anemometer
1
For registering velocity of air r"
currents.
Tycos Sling Psychrometer .
A portable and accurate means of
determining humidity--Pocket types
available.
m
Tycos Thermometers
l**TM**
Tycos Temperature Regulator
Tycos Type P Temperature Regulator
Tycos Wet and Dry Bulb Recorder
Tycos Anemometer
i Write for Catalog
452
Insulating Materials
Telephone Main 4995
The Ric-wiL Company
Established 1910
UNDERGROUND CONDUIT SYSTEMS FOR HEATING PIPES
Union Trust Building
CLEVELAND, OHIO
Agents in Principal Cities--Refer to Local Telephone Directory
Products--Ric-wiL Interlocking Conduit, Inter
locking Base Drain, Pipe Supports and Ric-wiL
Underground Pipe Covering used in the "Ric-wiL
Method" of Insulating Underground Steam, Hot
Water and Fuel Oil Pipes.
-
Ric-wiL Interlocking Conduit--Ric-wiL Con
duit is first quality, standard weight, vitrified salt
glazed tile of the bell and spigot type. It is shipped
on the job in full round sections and split into top ,
and bottom halves as used. When installed bell
and special Loc-liP side joints are sealed with
Portland cement. Loc-liP joint (see illustration
below) is shaped so that cement locks top and
bottom halves permanently together in all direc
tions. giving conduit extraordinary rigidity and
strength. Leakage is practically impossible. Top
and bottom halves are interchangeable (foolproof)
and numbered in pairs so that companion pieces
may be kept together.
.
Sections all in 2-ft. lengths, sizes from 4 to 24
in. inside diameter. Every sixth section of conduit
has an opening in the bottom half through which a
pipe support of the roller type projects to carry the
steam, hot water or oil pipes thus making the pipe
supports independent of the conduit itself, a
desirable feature for this class of work.
Ric-wiL Interlocking Base Drain--Ric-wiL
Base Drain is first quality vitrified salt glazed tile of such design that it is both a base for supporting and lining up the conduit, and drain for carrying away any water which might otherwise accumulate
around the conduit. The base drain also provides two points of support for conduit, adding 35 per
cent to the ground load which the conduit will carry safely as compared to the same conduit placed on flat ground or broken stone. The top of the base drain has a slot in it into which the bell of conduit fits making sections of conduit and base drain stagger with each other so that a strong inter
locking construction results. No concrete founda tion is necessary in solid ground. Free drainage
area of the base drain is large and ample for every practical condition. Three sizes are made: No. 1 for 4 and 6 in. conduits. No. 2 for 8 to 15 in. conduit, inclusive, and No. 3 for larger sizes. We
will furnish ordinary drain tile instead of base drain if desired but the base drain will save more than its extra cost in labor and makes a far better job.
Ric-wiL Pipe Supports--The pipe supports are
planned to carry from one to five or more pipes and are ordinarily spaced 12 ft. apart. They are strong, made of cast iron, rust proofed, and interlocked with the base drain, imposing no load on the conduit itself. Once in place, no movement of the pipes can disturb them.
Ric-wiL Conduit Systems for AH Uses-- Ric-wiL Conduit for underground pipe is of four types to meet varying service requirements.
Type SPC System lor steam heating and power pipes and for superheated steam. The tile itself is not lined with insulation as in types DA and DF but the insulation is applied to pipes direct and consists of any standard make of sectional pipe covering, the kind and thickness depending upon the service to be rendered. Double drainage is provided in this type.
Type F System for steam heating and power pipes. A lower priced type than the others, consisting of unlined Ric-wiL Conduit with filler packed around the pipes. Filler is the same as described in Type DF System.
Type DA System for hot water, fuel oil, and con densation returns. Tile and insulation in one, the latter moulded inside the tile and keyed in. Consists of a diatomaceous earth (Sil-O-Cel) mixture. light in weight and of high insulating quality; will not
deteriorate. This type insulates the pipes from surrounding ground but not from each other, mak ing it specially adapted to house oil and steam pipes together for fuel oil transmission. Excep tionally easy to install.
Type DF System for steam heating and power pipes. This is type DA with the addition of Ric-wiL Conduit Filler to be packed around the pipes at a density specified by the manufacturer. The filler is a good non-conductor which will not corrode the pipes nor shrink.
Cast Iron Ric-wiL Conduit---For extra heavy duty under railroads or other places where conduit is subject to very heavy load. Ric-wiL is made of cast iron similar in design to regular tile Ric-wiL. It has the Loc-liP Joint and the "interlox" with regular conduit. Special reinforced base drain is furnished.
Engineering Service--Maintained for the con-' vemence of customers. Inquiries answered promptly. Catalogs and special information furnished on request.
Ric-wiL Type F is an unlined conduit like this SPC, insulation being a loose filler packed around the pipes.
453
Ric-wiL Type DA is like this DF with insulation moulded to tile but without loose filler.
Insulating Material
The Celotex Company
545 N. MICHIGAN AVENUE, CHICAGO
Mills: New Orleans
Branches In Many Principal Cities
Data for Computing Heating Requirements of Insulated Homes
Compiled by H. J. BURT, Consulting Structural Engineer, Chicago
HE most direct way for a house
Tholder to cut down the cost of his winter's coal supply is to buy and to bum
WALL SECTIONS
Construction
Non-. Insulated
Con ductance
Insulated Con
ductance
Per Cent Saving
a smaller quantity of it. He can do this Wood siding, building
without sustaining inconvenience, dis comfort or ill health.
paper, wood sheathing 7/g-in.. lath and plaster.. 0.265 Wood siding, Celotex as
sheathing, Celotex as
The means of accomplishing' this result is by the use of insulation.
plaster base, plaster....
Stucco, building paper. wood sheathing, lath
0.267
0.182
31
Stucco. Celotex as sheath-
All materials permit the passage of heat, some a great amount and others very
ing, Celotex as plaster Brick veneer 4-in., build-
.0.183
31
little. Careful tests have been made of
ing paper, wood sheatbing. lath and plaster... 0.24
the passage of heat through the materials
Brick veneer 4-in., Celotex as sheathing. Celo-
commonly used, so that their values are
t^-e,1x-- .A.a--s plaster base.
0.17
29
known. The merit of Celotex insulating lumber
Brick wall 8-in., furring.
Brick wall 8-in., furring. 2 layers of Celotex
0.24
is shown by the following comparisons:
serving as plaster base, plaster...........................
0.143
40
Celotex...... ....................... 0.33
Wood sheathing............. 1.25
Plaster............................... 1.50
Brickwork................
4.00
Concrete........................... 6.00
All of the above values are for one inch thickness.
Expressed in another way, one inch of Celotex is equal to 3^ inches of wood, 4^ inches of plaster, 12 inches of brick or 18 inches of concrete.
The following table gives some typical values arranged to show the percentage of saving resulting from the use of insu lation :
The amount of insulation desirable for a house depends on climatic conditions. For average conditions two layers of Celotex are desirable.
The data on the opposite page are from a
report by G. F. Gebhardt, mechanical
engineer, Chicago, to H. J. Burt.
.
We submit herewith results of our estimate on the co-efficiency of heat transmission for walls and ceilings, details of which were submitted by you recently. We also submit tables of heat conductivity co efficients and surface factors for the various materials entering into the proposed construction. The co-efficients of heat transmission are expressed in B.t.u. trans mitted per square foot of surface per hour per degree Fahrenheit difference in tem perature between the inside and outside air.
The Celotex Company
Insulating Material
Wall Sections
Number
Construction
1 Wood siding (clapboard or shiplap) on studs. No inside lining..................
la Celotex ^-in. thick on siding. No inside lining.......................
2 Wood siding. Building paper, wood sheathing J-in. No inside lining....
2a Wood siding. Celotex sheathing. No inside lining....... .........
3 Wood siding. Building paper. Wood sheathing in., lath and plaster-
3a Wood siding. Celotex sheathing. Lath and plaster...............
3b Wood siding. Celotex sheathing. Celotex plaster on Celotex...... ..........
4 Stucco, building paper, wood sheathing, lath and plaster.___
4a Stucco. Celotex sheathing, lath and plaster.... .......
.........
4b Stucco. Celotex sheathing, Celotex as plaster base, plaster.... ................
5 Brick veneer 4-in., building paper, wood sheathing, lath and plaster
5a Brick veneer 4-in., Celotex sheathing, lath and plaster..........
5b Brick veneer 4-in., Celotex sheathing, Celotex as plaster base, plaster____
6 Brick wall 8-in., furring, lath and plaster............................. ...............................
6a Brick wall 8-in., furring, Celotex. plaster on Celotex base..."................'
7 Brick wall 12-in., furring, lath and plaster.............
..............
7a Brick wall 12-in., furring, Celotex. plaster on Celotex base..........!...!.............
8 Stucco, tile wall 8-in., furring, lath and plaster.........
8a Stucco, tile wall 8-in., furring, Celotex, plaster on Celotex base...................
9 Stucco, concrete wall 6-in., furring, lath and plaster
9a Stucco, concrete wall 6-in., furring, Celotex. plaster on Ceiotex base
10 Stucco, concrete wall 12-in., furring, lath and plaster......................................
10a Stucco, concrete wall 12-in., furring, Celotex, plaster on Celotex base.-.....
Coeff. of Heat
Transmission B.t.u. per sq.
ft. per hour
0.57 0.42 0.41 0.35
0.265 0.24 0.182
0.267 0.24
0.183 0.24 0.217 0.17 0.24 0.182
0.193 0.154 0.19 0.153 0.267 0.198 0.21
0.165
Roof Sections
1 Wood shingles on wood strips spaced 2-in. apart............ ....................................
la Wood shingles on wood strips., Celotex sheathing.............................................
2 Wood shingles, wood sheathing J^-in........................
.... "
2a Same as No. la................................................ .................'....................... " '.............
2b- Wood shingles on wood strips, Celotex sheathing, Celotex lining under rafters. 3 Metal shingles on wood strips spaced 2-in. apart-............ ........ ............................ .
3a Metal shingles on wood strips, Celotex sheathing
3b Metal shingles on wood strips, Celotex sheathing. Celotex lining under rafters
4 Metal shingles, wood sheathing, J^-in..... ...............
-n 4a Metal shingles, on wood strips. Celotex sheathing......................................................
4b Metal shingles on wood strips, Celotex sheathing, Celotex lining under rafters.
5 Slate 1-in., roofing felt, wood sheathing, J-in._... ................................ ...............
5a Slate 1-in., wood strips. Celotex sheathing............
5b Slate 1-in., wood strips, Celotex sheathing, Celotex lining under rafters _
6 Clay tile H-in. Roofing felt, wood sheathing.___
6a Clay tile M-in., wood strips. Celotex sheathing........ .............................. ....................
6b Clay tile ^-in., wood strips, Celotex sheathing, Celotex lining under rafters....
7 Asphalt shingles, wood sheathing J^-in... ......... .........................
... '
7a Asphalt shingles. Celotex sheathing........................................................ ;.............
7b Asphalt shingles, Celotex sheathing. 2 layers................................................................
8 Asbestos shingles, wood sheathing J^-in....................... ................................. ..... *.....
8a Asbestos shingles, wood strips. Celotex sheathing...........................................
9 Composition roof, wood deck 2-in................................ ...........................................
9a Composition roof, Celotex, wood deck 2-in........................................................... _
9b Same as 9a, except two layers Celotex....................................................... "...... ...........
9c Same as 9a, except three layers Celotex...... .........................................................''........
10 Composition roof, concrete deck 3-in....... ...............'
......................
10a Composition roof. Celotex, 1 layer. Concrete deck 3-in' ''....'............ ......................
10b Same as 10a, except two layers Celotex..........................................................................
10c Same as 10a, except three layers Celotex.............................................................. .
.. 0.667 .. 0.35
.. 0.455 .. 0.35
. 0.191 .. Practically no heat insulation . 0.54
0.236
0.833 0.54
. 0.236 0.444 0.372
. 0.197 .. 0.496 . 0.412 . 0.208 . 0.553
. 0.407 . 0.25 . 0.55
. 0.404 . 0.322 . 0.22 . 0.17 . 0.14 . 0.65
. 0.35 . 0.24
. 0.18
Wood siding__.............................. Celotex...... .................................... Wood sheathing............ .........
Wood deck, soft pine.--.......... Building paper, one thickness Wood lath and plaster_____ Plaster.............................. .........
Portland cement stucco....... Common brick.........................
Conductivity Constants
............ 1.4
............ 0.33 ............ 1.25 ............ 1.0
............ 4.2 ............ 1.4 ............ 1.5
.......... 2.0
............ 4.0
Hollow clay tile.................................. ....................... 3.2
Concrete........................................................................ 6.0
Wood shingles.................................................
1.0
Slate............................................................................... 2.5
Tarandfeltroofiing,5-ply (aslaid.notper inch) 5.0
Clay tile...................-............................ ..................... 3.5
Asphalt shingles (as laid, not per inch).............. 6.5
Asbestos shingles (as laid, not per inch)........... 6.0
Composition roof (as laid, not per inch)........... 6.5
Wood siding...................... Celotex...... ........................ Wood sheathing............ .
Lath and Plaster........... Portland cement stucco. Common brick............... Clay tile...... -...................
Surface Constants
............ 2.1 ............ 1.9
2.0 ........ . 2.3
............ 2.3 ............ 2.3
2.3
Concrete.............................
2.3
Wood shingles......_............................. ....................... 2.0
Slate____ --..r-.......................................................... 2.3
Tar and felt roofing.................................... ............. 2.1
Asphalt shingles................
2.2
Asbestos shingles........................................................ 2.2
455
Insulating Materials
Johns-Manville Inc.
Miners of Asbestos, Manufacturers of Asbestos and Allied Products
EXECUTIVE OFFICES
292 Madison Avenue, at 41st Street - NEW YORK, N. Y.
Branches in All Large Cities
DIVISION SALES OFFICES
Boston 9. Mass., 55-63 High Street Chicago, III., Michigan Avenue and 18th Street
Cleveland, Ohio, 6300 Euclid Avenue
New York, N. Y., 292 Madison Avenue at 41st Street (Executive Offices)
Philadelphia, Pa., 1315-1317 Race Street
St. Louis, Mo., 1014 Olive Street San Francisco, Cal., 159 New Montgomery St.
Toronto, Ont., Canadian Johns-Manville Co., Ltd., 19 Front Street, East
Please Communicate with Nearest Division Sales Office
INSULATION SPECIFICATIONS (Abbreviated Form)
Superheated Steam Piping (Temperatures above 600 deg. fahr.)--All superheated steam piping shall be insulated with Johns-Manville Superex Combination Insulation of thicknesses
shown below:
Steam Condition
Tempera
ture Deg. Fahr.
Thickness of Insulation
Pipes Pipes Pipes Larger 2 in. to Smaller than 4 in. 4 in. than 2 in.
Johns-Manville 85% Magnesia
High Pressure and Intermediate Pressure Steam Lines--AH high pressure and intermediate pressure steam lines indoors, and high pressure drip piping, including connections to all engines, turbines, pumps, auxiliaries, water columns, safety valves, superheaters and soot blowers, shall be insulated with Johns-Manville 85 per cent Magnesia of the following thickness:
High Superheat 600 to 700 High Superheat 700 to 800
w 4"
y W
2** 2**
Single layer Superex Insulation on lines 1M inch and smaller.
Steam
Pressure or Condition
Tempera
ture Deg. Fahr.
Thickness of Insulation Pipes Pipes Pipes Larger 2 in. to Smaller than 4 in. 4 in. than2in.
25 to 100 U. 100 to 200 lbs.
Low Superheat Superheat
267 to 358 338 to 388 388 to 500 500 to 600
w Std. 2" Wim Dbl.Std. 2"
3' Dbl.Std.
Std. Std.
BP
Johns-Manville Improved Asbeslocel Insulation
Low Pressure and Exhaust Steam and Feed Water Piping--All low pressure, exhaust steam and feed water piping shall be insulated with 4-ply Johns-Manville Improved Asbestocel Sectional Insulation.
Johns-Manville Superex Combination Insulation
Steam Heating Supply and Return Mains, Risers and Radiator Branches--All steam heat ing supply and return mains and branches, and all risers, shall be insulated with 4-ply JohnsManville Improved Asbestocel Insulation. All con cealed radiator branches shall be insulated with 3-ply Johns-Manville Improved Asbestocel Insulation.
456
Johns-Manoille Inc.
Insulating Materials
Where insulation is concealed the light canvas fur nished in manufacture is to be pasted down over the joints and the insulation additionally secured by means of brass lacquered bands applied at least two to a section.
Johns-Manville Asbesto-Sponge Felted Insulation
High Pressure Steam Lines in Manufacturing Buildings--All high pressure steam piping and high pressure drip piping used in connection with distribution of steam for manufacturing purposes shall be insulated with Asbesto-Sponge Felted Sectional Insulation of the following thicknesses:
Steam Pressure
25 to 100 100 to-200
Tempera
ture Deg. Fahr.
Thickness of Insulation
Pipes Pipes Pipes Larger 2 in. to SmaUer than 4 in. 4 in. than 2 in.
2S7 to 338 338 to 388
ivr
2"
BP
1' 1'
Fittings, Valves and Flanges--All pipe fittings, valves and flanges shall be insulated with .block and plastic insulation to the same thickness as the -adjacent pipe insulation. Block insulation shall be of the same material as the adjacent pipe insulation and plastic material used shall be hard finish Asbestos Cement. Block insulation may be omitted on pipe sizes smaUer than 4 in., or where total thickness of insulation is less than 1H in. and the entire thickness of insulation in such cases may be made up of hard finish Asbestos Cement.
Johns-Manville Anti-Sweat Insulation
Cold Water Piping--All cold service water piping, including risers and concealed fixture connections or exposed soil or waste lines, shall be insulated with Anti-Sweat Insulation 1 in. thick applied in two layers with all joints broken, fittings with Hair Felt and hard finish Asbestos Cement to the same thickness.
Finish of Insulation--All insulation on pipes, fittings, valves and flanges which is exposed to view shall be enclosed in an extra jacket of 8-oz. canvas sewed , over rosin sized paper.
Johns-Manville Asbestocel (In flexible Roll Form)
Warm Air Ducts--All warm air ducts, flues, heater casings and fan housings in the ventilating system shall be insulated with 4-ply Improved Asbestocel sheet insulation finished with hard finish Asbestos Cement inch thick, applied over hexagonal wire reinforcement. The cement finish shall be troweled to a smooth and uniform-surface. Where this insulation is exposed to viewit shall be finished with a jacket of 8-oz. canvas, glued to the insulation and sewed in place.
Painting--All insulation exposed to view and en closed in a jacket of 8-oz. canvas is to be painted with one coat of glue sizing and two coats of first quality lead and oil paint of a color selected by the architect.
Underground Lines--All high and low pressure steam lines and hot water lines running under ground outside of buildings shall be installed in Johns-Manville System of Underground Insulation. This system shall be installed in accordance with the manufacturer's specifications.
All of the above insulation is to be furnished and applied by the manufacturer of the materials used, or by his approved contractor, in accordance with the manufacturer's standard specifications.
Johns-Manville is prepared to furnish detailed standard specifications on any of the above items, as well as on the following and many others:
Boilers,
Boiler Settings,
.
Tube Doors,
Breechings and Smoke Flues,
Stack Lining, Stack Insulation,
Feed Water Heaters,
-
Pump Cylinders,
` Hot Water Piping,
Ice -Water Piping,
Refrigeration Piping,
Pipes Exposed to Freezing.
'457
Johns-Manoille Inc.
Insulating Materials
Space limitations do not permit the insertion of complete efficiency tables, pipe sizes, insulation thickJSS, etc. If you do not find the size you want, write to the nearest Johns-Manville Division sales omce.
JOHNS-MANVILLE 85 PER CENT MAGNESIA INSULATION
An efficient insulation for steam lines to 600 deg. fahr. EFFICIENCIES
Pipe Size Inches
Nominal
Insulation Thickness
Inches
1 2 3 4 6 8 Flat. Surface
0. Std.
2 3
0 Std.
2 3
0 Std.
2 3
0 Std.
2 . 3
0 Std.
2 3
0 Std.
2 3
0
1 2 3
Temperature Difference Between Pipe and Surrounding Air, Deg. bahr.
100* 200
300
400
500
Temperature of Pipe. Deg. Fahr. (Temperature of Surrounding Air. 75 Deg.)
175 275"
375
475. . f .575
Ifmes nr* linear foot of bare pipe per hour and Efficiencies of insulation
Bare Pipe Loss. B.t.u...
Efficiency %................ %.................. " %..................
Bare Pipe Loss. B.t-u...
Efficiency %.................
%.................. " %..................
Bare Pipe Loss, B.t.u...
Efficiency
............
* %.............. " %..................
Bare Pipe Loss. B.t.u... Efficiency %.................
%.................. " %..................
Bare Pipe Loss. B.t.u... Efficiency %.................
%.................. " %..................
Bare Pipe Loss, B.t.u...
Efficiency %................. %.................. " %..................
Efficiency %.................
%.................. %..................
74.0 . 68.7 78.4 81.4
133.9 76.7 83.3 86.2
197.3 78.8 85.2 88.2
253.5 81.7 86.4 89.3
371.9 82.7 87.8 90.4
485.7 83.7 .88.4 91.1
215.2
82.36 90.16 93.22
183.4 73.7 82.0 84.6
331.5 80.5 85.9 88.5
488.8 82.3 87.7 90.2
627.9 ' 84.5
88.7 91.1
923.7 85.4 89.8 92.1
1203.0 86.2 90.3 92.7
533.0
85.20 91.85 94.37
337.4 77.7 84.8 87.0
608.3 83.3 88.2 90.2
896.8 84.8 89.6 91.7
1152.1 86.9 90.5 92.4
1694.9 87.6 91.3 93.3
2207.3 88.4 91.8 93.7
978.0
87.60 93.12 95.25
555.2 81.1 87.3 89.1
1003.9 85.7 90.2 91.9
1480.0 87.1 91.4 93.0
1901.3 89.1 92.1 93.7
2797 1 89.7 92.8 94.4
3642.8 ` 90.2
93.1 94.8
1614.0
89.64 94.27 96.06
891.0 84.0 89.5 90.9
1611.0 86.2 91.7 93.3
2375.0 89.3 92.9 94.2
3051.0 . 90.8
93.4 94.8
4488.5 91.3 94.0 95.3
5845.6 91.9 94.3 95.6
2590.0
91.48 . . 95.31
96.75
JOHNS-MANVILLE ASBESTO-SPONGE FELTED INSULATION
For insulating high pressure and superheated steam lines to 750 deg. fahr.
EFFICIENCIES
_______________________
Pipe Size Inches
Nominal Insulation
Thickness Inches
Temperature Difference Between Pipe and Surrounding Air. Deg. Fahr.
100 200
300
400
. 500
Temperature of Pipe. Deg. Fahr. (Temperature of Surrounding Air. 75 Deg.)
175
275
375
475. .
575
Heat losses per linear foot of bare pipe per hour and Efficiencies of insulation'.
1
2
3
4 6
Flat . Surface
0 Bare Pipe Loss, B.t*u.. . 74.0 1 1 76.5
2 80.7
3
" %.................
83.5
O' Bare Pipe Loss. B.t.u... 133.9 1 80.4
2
. %
........
85.1
3
%......... .
87.7
0 ' Bare Pipe Loss, B.t.u... 197.3
1 82.2
2
% ...............
86.8
3
" '%.................
89.5
0 Bare Pipe Loss, B.t.u... 253.5 1 83.3 2 87.9
3
" %.................
90.5
0 Bare Pipe Loss, B.t.u... 371.9 1 84.2
2
%.................
89.1
3 . %................. 91.5
0 Bare Pipe Loss, B.t.u... 485.7
1 2
" %.........
84.8 89.6
3 41 .%........
92.1
0 .215.2
1 84.17
1 2
"%
........
3 %............. .
91 32 94.02
183.4 79.9 83.6 86.1
331.5 . 83.3
87.2 89.6
488.8 84.9 88.8 91.2
627.9 85.8 89.7 92.0
923.7 86.5 90.7 92.9
1203.0 87.0 91.2 93.4
533.0
86.50 92.61 94.90
337.4 82.6 85.8 88.0
608.3 85.5 89.0 91.0
896.8 86.8 90.3 92.3
1152.1 87.6 91.1 93.0
1694.9 88.3 91.9 93.8
2207.3 88.7 92.4 94.2
978.0
88.38 93.61 95.59
555.2 85.2 87.8 89.8
891.0 87.4 90.0
1003.9 87.6 90.6
92.4
1611.0 89.3
92.1 93.7
.
1480.0 88.8
93.5
2375.0 90.3
93.2 94.6
1901.3 89.5 92.4
94.1
3051.0 90.9 93.7
95.1
2797.1
90.1 93.1 94.8
4488.5 91.4 94.3 95.6
3642.8 90.4 93.4
95 1
5845.6
91.7 94.6 95.9
1614.0
2590.0
90.10
91.73
94.55
95/44
| 96.23 i 96.85
.458
Johns-Manoille Inc. _____________________.
.
Insulating Materials
JOHNS-MANVILLE IMPROVED ASBESTOCEL INSULATION For insulating pipes conveying hot water or steam at. medium and low pressure.
EFFICIENCIES
Pipe Sizes Ply Inches
Temperature 100
Difference Between 150
Pioe and 200
Surrounding Air 250" '
Deg.
Fahr. 300
Temperature 175"
of
Eipe,
Deg. 22?"
Fahr
.
(Temperature 275
of
Surrounding 325"
Air,
75 Deg.) 375"
Heat losses per linear foot of bare pipe per hour and efficiencies of insulation
1 Bare Pipe Loss. B.m.....
2-pjy Efficiency %.....................
3-ply
" %.....................
4-ply
" %.....................
74.0 57.8
62.9 66.4
.
123.8 59.8 64.8 68.1
163.4 61.6
66.6 69.7
63 2 71.2
64 6 72.6
2 Bare Pipe Loss. B.t.u.......
2-ply Efficiency %.....................
3-ply 4-ply
%..................... * %.....................
133.9
64.5 69.7 73.0
223.9 66.1 71.3 74:5
331.5 67.6 72.6 75.7
73 9 76.9
75 1 78.0
3 Bare Pipe Loss, B.tu.,..!
2-ply Efficiency %.....................
3-ply
* %.....................
i-ply
" %.....................
197.3
67.2 72.6 75.9
330.1 68.7 74.0 77.2
488.8 70.0 75.3
78.3
79.4
77 4 80.3
4 Bare Pipe Loss, B.t.u.......
2-ply Efficiency %...................
3-ply
%.....................
4-ply
` %.....................
253.5
68.6
74.0 77.4
424.2 70.0 75.3 78.5
627.9
71.3 76.5 79.6
80.6
78 6 81.5
6 Bare Pipe Loss, B.t.u.......
2-ply Efficiency %.....................
3-ply
* %.................
4-ply . * %.....................
371.9
70.0 75.6
79.0
623.9
71.4 76.8 60.1
923.7 72.6
77.9 61.1
1278.1 82.0
1694.9
74 7 79 9
82.8
8
Bare Pipe Loss, B.t.u.......
485.7
2-ply Efficiency %.............
. 70.9
3-ply 4-ply
* %..................... %.....................
76.4 79.8
812.5 72.2 77.6
80.9
1203 0
73.3 78.6 81.8
82 7
75 3 83.5
JOHNS-MANVILLE STEAM TRAPS
Type A (Cast Iron)
The simplicity of the Johns-Manville Steam Trap practically eliminates all possibility of its getting out of order. It has and requires no adjustments, and consists of only three parts--the body, discharge bushing and rolling ball, the latter being the only part that moves.
Trap Pipe
Capacity Pounds
Dimensions in Inches (See Diagram) '
No.
Inches
of Water per Hour.
A
B
C
D
E
Weight Lbs.
2-A 5/
700
3-A 1
1000
4-A i1/.
1700
5-A Wr . 3500
6-A 2
6000
k a*2% 3>/.
/. J'/z 4'/2.
l4/4 23
10% 4% 5% 10'/. 47
12% MK 5% m 12% 85
H'/l 6% 8% 14'/, 126
Cast Iron Model
JUNIOR MODEL (Bronze)
For steam pressures to 50 lbs.
in. outlet and inlet pipe connections. Bushings
for pressures from 1 to 10 lbs. and 10 to 50 lbs.
.
' Trap -.. Junior
Pipe Size. Inches
Pressure Range Capacity, Pounds Pounds ------- of water per Hour
'h 1--10
10-50
250
4Va inches long by 35/g inches high; weight. 2 pounds. 6 ozs. 459
Johns-Manville Inc.
Insulating Materials
RADIATOR TRAPS (Bronze and Nickel Finishes)
For steam pressures to 10 lbs.--on open (atmospheric) or vacuum return line heating systems. For use on cast iron heating radiators only.
WEIGHTS
Style
Pipe Connection Yl" %"
Standard 2 lb.. 5oz.
Straight way 2 lb., 3 oz.
Corner 2 lb., 4 oz.
2 lb., 7 oz.
2 lb., 6 oz.
Construction Details of the Johns-Manville Underground System
of Insulation
-
Right--Cutaway View of Line
Above--Straight Conduit Section
Above--Three-Pipe Internal Support
Above--Cross Section of Trench
Above--Four-Pipe Roll Frame
Above--Supporting Section Used With Four-Pipe Roll Frame
JOHNS-MANVILLE UNDERGROUND SYSTEM OF INSULATION
A specially salt glazed and highly vitrified tile conduit is used as a waterproof
envelope to protect the insulation--Johns-Manville Asbesto-Sponge Conduit Filling,
is packed around the piping to be insulated and .completely fills the conduit.
.
The cast iron roll frame used is installed in a mortar or concrete bed and is set at the
proper elevation from an overhead batter-board line. This method prevents uneven
alignment of the pipes by irregularity in the manufacture of the conduit, etc.
The insulation used to surround the pipe is made of asbestos fibre and material of a
sponge-like nature, which when properly mixed with the asbestos, forms the most
efficient and durable insulation for underground work.
The underdrain laid -with open joints carries away the water that rapidly filters
away from the system through the.broken stone or gravel in which the lower half of the
system and the underdrain itself is laid.
.
Shutters for sealing the ends of the system, manhole and anchor pits are incidental
but necessary, and are placed according to conditions and requirements as recommended
by our engineers.
460
Insulating Material
UNIVERSAL GYPSUM & LIME CO.
New York. N. Y. Atlanta. Ga.
Offices Til
LlllCagO) 111*
Fort Dodge, Iowa Kansas City, Mo.
MILLS--Akron, N. Y.,. Batavia. N. Y.,- Fort Dodge, Ia., Rotan, Texas
CY*SUM INBULATIONR
Reg. U. S. Patented Office
Insulex is a gypsum insulating material for building construction and is used to prevent the. passage of heat, cold and sound. When mixed with water Insulexexpands and hardens into a cellular mass in partitions, floor and ceiling spaces. It is especially adapted for use in homes, apartment
A Block of Insulex Showing Cellular Structure
houses, schools, commercial and industrial buildings where the saving of heat is a vital necessity.
The use of Insulex reduces the size of heating plants and amount of radiation installed so that in estimating the heating requiiements of a building
using Insulex insulation special conductivity factors are required.
Method of Providing Complete Insulation of House
Complete A. I. A. Specifications, reports of tests and engineering data on Insulex will be furnished on application. Our staff of heating engineers will help solve your problems on reduced radiation.
BUILDING CONSTRUCTION*
SIDE WALL (FRAME)
Clapboard. Stud. Lath and Plaster................................
Clapboard, Paper. Sheathing. Stud, Lath and Plaster... Bride Veneer. Paper. Sheathing. Lath and Plaster....... Cement Stucco. Paper. Sheathing. Lath and Plaster.,,
_________ SIDE WALL (MASONRY)
Bride Wall--Plastered Inside:
'
8-inch........................ .............................................. 12- " .................................................................................................
16- " .................................................
Terra-Cotta Wall--Stucco Exterior--Plastered Inside: 8>inch.......................................................................
16- " .............................................12- " ..................................................................................................
CEILING
Ceiling Joists. Lath and Raster.
UNINSULATED
insulated
. By Filling Stud Space With No. 12 INSULEX
Lath and
Cypsolite Plaster
Plaster
Board and Plaster
.345 .082
.079
.263 .076
.073
.251 .075
.073
.255 .075
.073
By Using 2-Inch Furring Strips and
Filling Space with No. 12 INSULEX
No Furring With Furring
Strips
Strips
.379
.272
.296 .228
.243 .196
Lath and
Plaster .m .103
.096
Cypsolite Plaster Board and Plaster
.105 .098 .091
.291 .224 .225 .183 .184 .155
.102 .093 .095
.096 .088 .081
Filling Space Between Joists 4-Inches With No. 12 INSULEX
Lath and
Cypsolite Plaster
Plaster
Board and Plaster
.692 .082
.079
____ _______ _____ ______
uoc iu uetermining nouse_neatmg radiation requirements when
insulated with Insulex, according to Universal Gypsum * Lime Co.'s si ecifications.
The Armour Institute of Technology, Chicago. Illinois, have prepared the above figures based on
tests and years of experience showing the amount of heat lost through various kinds of construction.
Prepared by Professor J. C. Peebles.
'
The figures given are in B.t.u.'s per square foot per hour per degree temperature difference and show
heat loss or conductivity. These figures can be used in figuring reduced size of heating plants and radiation
required in an Insulexed home.
'
461
Metal Weather Strips
Chamberlin Metal Weather Strip Company
Incorporated
General OfficesDetroit, Mich.
FACTORIES
Detroit, Mich.
Peru, Illinois
Atlanta, Ga.
Baltimore, Md. Boston, Mass.
Buffalo, N. Y. Chicago, III. Charlotte, N. C.
Cincinnati, Ohio
DISTRICT BRANCHES
Cleveland, Ohio
Denver, Colo. Detroit. Mich.
Flint, Mich. Indianapolis. Ind. Jacksonville, Fla.
Kansas City, Mo. Los Angeles. Calif.
Louisville. Ky. Minneapolis, Minn.
Nashville. Tenn.
New York, N. Y.
Philadelphia, Pa.
Pittsburgh. Pa. St. Louis. Mo. South Bend, Ind.
Terre Haute, Ind. Washington, D. C.
Wilkes-Barre, Pa.
Eighty Other Branches Throughout the United States
In order to measure weather strip are given in the following tables.
efficiency it is much more important Tests were made by putting an air
for the Heating Engi
collecting chamber on
neer, the Architect,
the inside of the win
the Contractor and CHAMBERLIN dow opening and
the Consumer to
taking anemometer
know what the result
1833-THE STANDARD"1*^! readings over a period
of a weatherstrip in
of thirty minutes.
stallation will be. at the end of THIRTY or more years than to know the result obtainable immedi ately .after installation.
What Chamberlin Weather Strip will do can be determined by a review of what Chamberlin has done for thirty-three years. Instal lations made in 1893 are still giving service and. satisfaction and the
Constantly Improved
Chamberlin has been the Standard weather strip since 1893. Thirtythree years have proven the basic principles of Chamberlin, but im provements in design and installa tion methods have been added whenever the Company's constant research developed a better way.
same fundamental principles are Life of Building Service Policy
incorporated in Chamberlin in There are only two parties to a stallations made at the present Chamberlin installation contract,
time.
the customer and the Chamberlin
The Test of Time
Company. Chamberlin manufac tures, sells, installs and services
From time to time field tests are made of Chamberlin installations. The results obtained by engineers on some representative installations
every installation by means of a complete organization of trained men. Results, not material alone,' are insured by the Company's
Chamberlin Metal Weather Strip Co., Inc.
Metal Weather Strips
service guarantee which remains in effect for the "life of the building." That is why the purchase or recom mendation of Chamberlin becomes a specification of guaranteed service and not of material. Chamberlin Metal Weather Strip is the only building product sold and guar anteed in this way.
No Heating Plant Can Do It All
The best heating plant in the world can't heat the whole outdoors and
that is just what is expected of every heating plant when installed in a building where windows and doors are not weatherstripped. Heating engineers should recognize the value of preventing heat loss rather than attempt to design a heating plant to take care of any loss no matter how great. There fore, Chamberlin cooperation and the completeness of Chamberlin service merits prime consideration in the computations of the careful engineer, architect and builder.
CHAMBERLIN TESTS OF TIME
Name of Building
Location and Date
of Chamberlin Installation
E. A. De Wolfe Res. Equity Bldg.
Majestic Bldg. Majestic Bldg. Union Trust Co. Bldg. Adolphus Busch Kes. Horace Mann School City Hall
Michael Reese Heap. Congress Hotel Detroit Club Fleming Bldg.
D'YouviUe College Owen bldg. Ford Bldg. Boston College
Campau Bldz.
.
Hasp. Rockefeller Inst.
Cleveland Ath. Club
Copley Plaza Hotel
Hubbell Bldg.
Pharmacy Bldg.
Dime Sav. Bk. Bldg.
Board of Commerce
Kresge Bldg.
Kresge Bldg.
David Whitney Bldg.
Det Athletic Club
Peter Smith Bldg.
Fort Shelby Hotel
t* teid Museum
Planters Bldg.
Park Ave. Bldg.
Int 1. Shoe Co. Bldg.
St. Louis. 1893
Detroit,
1894
Detroit,
1896
Detroit, 1896
Cincinnati, 1901
St. Louis, 1903
New York, 1903
Detroit, 1904
Chicago. 1906
Chicago, 1906
Detroit,
1906
Des Moines, 1906
Buffalo.
1907
Detroit,
1907
Detroit. 1908
Newton,
Mass. ;.I9I0:
Detroit,1 - 1910
New York. 1910
Cleveland 1911
Boston,
1912
Des Moines. 1912
U. of Mmn. 1912
Detroit,
1913
Detroit,
1913
Detroit.
1914
Detroit.
1914
Detroit,
I9J5
Detroit,
1915
Detroit,
1916
Detroit,
1918
Chicago. 1919
St. Louis, 1919
Detroit,
1922
St. Louis, 1923
Date of Test"
3/ 7/25 12/17/24 12/11/24 12/12/24 3/20/25 3/ 7/25 4/11/25 12/ 3/24 2/15/25 2/11/25 12/ 2/24 2/17/25 4/ 3/25 12/ 6/24 11/27/24
4/10/25 12/ 3/24 4/ 9/25 4/ 2/25 4/10/25 2/16/25 2/23/25 11/28/24 12/10/24 12/ 9/24 12/ 9/24 11/25/24 12/13/24 12/11/24 12/ 5/24 2/26/25 3/ 7/25 12/10/24 3/ 6/25
Size of Window (Lin. FL of Crack)
18.80 23.85 34.00 34.00 26.00 18.25 20.67 30.67 32.00 25,33 26.50 25.33 27.00 28.00 26.50
20:67 23:50 19.50 31.50 20.33 26.00. 25.33 26.50
21.00
27.85 27.85 28.50 20.67 19.85 23.33 24.17 26.70 26.85 29.00
Wind Velocity.
M. P. H. U. S.
Weather Bureau
Leakage
Without W. S.
Based on A.S.H.&V.E.
Test
Leakage
on Date of Test
Including Frame and
Pulley Leak
Per
centage of Possible Leakage Kept Out
25
24
8 12
15
21
7.5
192 185 6
18
18
12
78.88
.53
96.04 5.05
46.25
1.79
68.38
4 22
72.30
7.00
66.79
2 51
28.23
1.87
6464..1306
7.31 10.65
63.70
4.00
35.28
4.19
23.30
2.50
83.15
4.98
87.00
4.42
53.30
5.01
99.3 93.70 95 91 93.86
90.32
96 20 93.38
83.52 83.90 93.70 88.41 89.30 94.00
94.92 90.60
1102.5
M.
20 12
7.5
8 22 12
28
24 19 14.5. 16
13 16.5 18
21
15 .
47.60 47.23 46.29
109.70 44.40 29.25 38.10
90.15 42.13 132.76
112.15 92.65 49.82
53.17 50.73
66.20
83.75
96.46 74.26
3.34 5.00 3.66 6.30
1.16 4.26 3.00 9.93
1.98 17.53 15.47 5.00
5.35 3.76 6.96 5.65
6.41 3.23
2.55.
92.40 89.44 92.10
94 16 97.34 85.00 92.13
87.60 95.28 86.80
86.21
94.60 89.26 92.93 86.28 91.48
92.30 96.80 96:60
463
Melal Weatherstrips
The Higgin Manufacturing Go.
NEWPORT, KY.
Manufacturers of Metal Weather Stripping for Windows and Doors
Representatives in Principal Cities
The Higgin All-Metal Weather Strip Equipment effectually reduces to a minimum infiltration losses around windows and doors.
Double Hung Windows: The Higgin Two^ Member Track and Insert Equipment for double hung windows consists of a rib track, zinc or copper, fitted to the window frame. The rib or raised portion is % in. high and extends into a groove cut into the edge of sash.
The Insert, usually made of bronze, very thin gage is of spring temper and is fitted and concealed into the groove in the edge of sash. It is so formed that the spring sides or flanges contact with the tongue or rib of the track. These two contacting metals seal the aperture around the edge of the sash. The insert resting on the slightly raised portion at base of rib on track insures easy sliding. i. Sash Shrinkage: Air leakage can occur in around the tongue of a track strip working loosely in a groove in wood sash. The efficiency of the Higgin Two-member Track and Insert is not affected by shrinkage of the sash. If sash should draw away from frame, the Insert will snugly contact with the rib at any point of its projection. Air leakage through the pulley holes, is prevented by the Insert, dividing as it does into a separate chamber the cut out space for sash cord.Installation: Lower Sash--The rib track extends to top edge of meeting rail projecting slightly into the parting strip and also lapping under inside stop. Upper Sash--The rib track extends about one inch below meeting rail, projecting slightly into the outside stop bead. Slot is cut into track to clear pulleys. Head and Sill-- Track extends full width of opening. Insert concealed in sash groove, at sides, bottom and head, full length. The meeting rail is equipped with a flat zinc or copper strip
. 464
The Higgin Manufacturing Co.
Metal Weatherstrips
attached to . top rail of lower sash which interlocks
with a hook strip attached to the bottom rail of the
upper sash.
Casement Windows: The top and lock sides are
equipped with a flat zinc or copper strip attached to
sash which interlocks with a hook strip of same
metal, secured into the rabbet. The hinged side, a
rib track is applied, the raised tongue extending into
a groove in the sash. The bottom of out-opening
sash are usually equipped the same as for top and
lock sides. In-opening sash are equipped with an
interlocking trough of either brass or zinc. This
equipment has proven very efficient in stopping air
and water leakage.
.
Doors: In the rabbet at sides and head are attached a compression
spring bronze strip which contacts with door as it closes. For the bottom
an extruded brass threshold with an interlocking brass hook and spring
bronze contact strip makes a thoroughly air and water-tight equipment
and provides a handsome and permanent threshold.
Catalogue upon request. We will contract to install Higgin All-Metal
Weatherstrips in new or old buildings. Estimates gladly furnished.
HIGGIN ALL-METAL ACCESS PANEL
Higgin Flush Metal Access Panels are neat in appearance, easily installed and provide easy and inexpensive access to critical points in heating or plumbing systems, refrigerator pipes, valves or any place where immediate access and neat inconspicuous appearance is desired.
The Higgin frame and panel is made as a unit of heavy gauge metal. Installation is easily and quickly accomplished. When access is desired there are no screws or locks to bother with. A screw driver or knife springs the panel out leaving the open ing clear with a maximum of working space. Panels may be papered or painted over so that they will be invisible.
Higgin Metal Access Panels are made in three sizes, 7M"xllM", 18" x 24" and 714" x 18". The latter size has been especially designed for access to expansion joints in heating systems. The narrow width permits installation in limited space but still provides ample room for working.
Write for descriptive folder and details.
465
Motors and Controllers
The Westinghouse Electric & Manufacturing Company
EAST PITTSBURGH, PA.
Abilene, Kan.
Abilene, Tex. Albany, N. Y.
Atlanta, Ga. Bakersfield. Calif.
Baltimore. Md. Birmingham, Ala.
Bluefield. W. Va. Boston, Mass.
Bridgeport, Conn.
Buffalo. N. Y. Burlington, Iowa
Butte, Mont. Canton, Ohio
Casper, Wyo. Cedar Rapids, Iowa Charleston, W. Va.
Charlotte, N. C. Chattanooga, Tenn.
Chicago. 111. Cincinnati. Ohio Cleveland, Ohio Columbus. Ohio
Dallas, Tex. Davenport, Iowa
Dayton, Ohio Denver, Colo.
Des Moines. Iowa Detroit, Mich.
WESTINGHOUSE SALES OFFICES
Duluth, Minn. Elmira. N. Y.
El Paso, Tex.
Erie. Pa. Evansville, Ind. Fairmount, W. Va.
Fort Wayne. Ind.
Fresno, Calif. Grand Rapids, Mich.
Hammond. Ind. Hartford, Conn. Houston. Tex.
Huntington, W. Va.
Indianapolis, Ind. Ishpeming, Mich. Jackson, Mich. Jackson, Miss.
Jacksonville, Fla. Johnstown, Pa. Joplin. Mo. Kansas City. Mo. Knoxville, Tenn.
Little Rock. Ark. Louisville, Ky.
Los Angeles, Calif. Madison, Wis.
Marshall, Tex. Medford, Ore. Memphis, Tenn.
Miami, Fla.
Middlesboro, Ky.
Milwaukee, Wis.
Minneapolis, Minn.
Mobile, Ala.
,
Nashville, Tenn. '
Newark. N. J.
New Haven. Conn.
New Orleans, La.
New York, N. Y.
Niagara Falls, N. Y.
Norfolk, Va.
Oklahoma City, Okla.
Omaha, Neb.
Peoria, 111.
Philadelphia, Pa.
Phoenix, Aria.
Pine Bluff, Ark.
Pittsburgh, Pa.
Portland, Maine
Portland, Ore.
Poughkeepsie. N. Y.
Providence. R. I.
Pueblo, Colo.
Raleigh, N. C.
Richmond, Va.
Rochester, N. Y.
Rockford, III.
Rutland, Vt.
Saco, Maine
Salt Lake City, Utah
San Antonio, Tex.
San Diego, Calif.
San Francisco, Calif. .-
Seattle, Wash.
Shreveport, La.
Sioux City, Iowa
South Bend, Ind.
Spokane. Wash.
Springfield, III.
Springfield, Mass.
St. Louis, Mo.
'
Syracuse, N. Y.
Tacoma. Wash.
Tampa, Fla.
Terre Haute, Ind.
Toledo, Ohio
Tulsa, Okla.
Utica. N. Y.
Washington, D. C.
Watertown, N. Y.
Wilkes-Barre, Pa.
Worcester, Mass.
Youngstown, O.
_
The Hawaiian Electric
Co., Ltd.. Honolulu,
T. H.--Agent.
_
Warehouse located in this-city.
MOTORS AND CONTROL FOR HEATING, VENTILATING AND AIR CONDITIONING SYSTEMS
Type CS, Squirrel-Cage Motor
Type SK, Direct-Current Motor
Pumps
Buffalo Steam Pump Co.
Buffalo, N. Y.
BRANCH OFFICES
New York, N. Y.. 39-41 Cortlandt St. Philadelphia, Pa., 1302 Land Title Bldg. Boston, Mass., 10 Milk St. Cleveland, O.. 368 Rockefeller Bldg. Pittsburgh, Pa., 927 Union Trust Bldg. Detroit, Mich., Coon-DeVisser Co. Chicago, III., 562 W. Washington Blvd. Washington, D.C., 418 Washington Loan & Trust Bldg. Atlanta, Ga.. Candler Bldg.
Indianapolis. Ind., 725 Continental Bank Bldg. St. Louis, Mo., 515 Chemical Bldg. Cincinnati, O.. 604 Mercantile Library Bldg. Minneapolis, Minn.. 430 Oak Grove St. Los Angeles, Calif., 220 Black Bldg.
Charlotte. N. C.. J. W. Fraser & Co. New Orleans, La., Woodward Wight & Co. San Francisco. Calif.. 307 Flatiron Bldg. Seattle, Wash., 905 Olympic Way
Canadian Blower and Forge Co.. Kitchener, Ont.
Products
Centrifugal Pumps For AH Purposes--Single and Double Suction, Single and Multistage, Horizontal and Vertical. Steam Pumps--Duplex and Simplex, Inside Packed and Outside Packed; Vacuum Pumps and Condensers.
Class S Double Suction Centrifugal Pump
Horizontally divided casing. Exten sively used with air washers, and for circulating systems and booster service.
Centrifugal Condensation Return Pump and Receiver
Also built vertical with receiver pit. Especially adapted for low pressure boilers. Automatic in operation.
Class 10700 Auto Starter
Class 7S10-B Regulator
Motors--Westinghouse motors and control can be supplied for practically all demands within the heating and ventilating engi neer's field of activity. Noiseless operation, close speed regulation, and dependability in service are their recognized character
istics.
Motor Control--Westinghouse Electric manufactures manual and magnetic1 starters and speed regulators to control motors in all applications. By specifying Westinghouse starters and regulators to operate Westinghouse motors, the responsi
bility for the successful operation of the in stallation is placed upon one manufacturer.
466
Duplex Steam Pump and Receiver
Automatic Sump Pump
"
Entirely automatic. Can be furnished
Self contained. Ball bearing thrust with
for high or low boiler pressure.
automatic oil lubrication.
Complete Catalogs Will Be Furnished Upon Request
467
Pumps
Economy Pumping Machinery Co.
98-124 N. Curtis St., CHICAGO
Works, JOLIET, ILL.
New YorkJCity, N. Y.. 39 Cortland St. Grand Rapids, Mich., Shepard Bldg.
W. Montreal, Quebec, Can., 246 Craig St. Kansas City, Mo.. 207 Davidson Bldg.
Wichita. Kans., 421 Sedgwick Bldg. Salt Lake City, Utah, Dooly Bldg. Indianapolis, Ind., Board of Trade Bldg. Philadelphia, Pa.. 604 Arch St. Chattanooga, Tenn., 823 Chestnut St.
New Orleans, La.. 415 Gravier St. Detroit, Mich., 517 E. Larned St.
Baltimore, Md., 15 E. Fayette St.
,
Sales Offices
Des Moines, Iowa, 512 Hubbell Bldg.
San Francisco, Cal., Mondanock Bldg.
Amsterdam, N. Y., 447 Guy Park Ave.
Toledo, Ohio, 2940 Broadway
Cincinnati, Ohio, 309 Main St.
Pittsburgh, Pa., Fulton Bldg.
Oklahoma City, Okla:, 710 N. Hudson St.
Milwaukee, Wis., 616 Caswell Block
Seattle, Wash., 309 Crown Bldg.
Portland, Ore., Worcester Bldg.
South Bend, Ind., 312 Lincoln Way
St. Paul, Minn., 503 Hamm Bldg.
Economy Centrifugal Return Line Vacuum Pump and Boiler Feeder
Economy Pumps and Receivers Made in variety, of forms to meet every requirement.
Type SS34
Economy vacuum pumps remove air and condensation from the heating system automatically discharging the water to boiler. Their flexibility imposes no limita tions on capacity or pressure. Reasonable delivery is made on pumps designed to discharge against 100 lb. boiler pressure. Units rated over 5000 sq. ft. capacity have bronze fitted horizontal split case, double suction pumps with perfectly balanced rotors. All standard units are supplied with bronze suction strainer scale' pocket and automatic control all firmly mounted on cast iron base. Wiring is in conduit to conform with Underwriter's rules. Each pump tested and ready for operation when delivered.
Economy Centrifugal Vacuum Pump
Unit No.
Capacity
in Sq. Ft. Direct C. I.
Radiation
Motor Horse
Power
Cubic Feet Air per Min.
Size* Dis charge
to . Boiler
Size Re
turn Inlet
Ship ping Weight
CV-I CV-2
2,500 5,000
y.
1
iy.
4
y
1
IV, 2
650 750
CV-3
8,000 IV, 6
1
i'h
900
CV-4 16.000 2 10
I'A 3
1,025
CV-5 20.000 3 15
I'A 3
1,150
CV-6 27,500 5 19
I'A 3'/, 1.300
CV-7 CV-8
40,000 65,000
5 24 7Vr 40
2l'/i
4 5
1,550 1,800
CV-9 100,000 10 60
l'/, 6
3.100
CV-10 150.000 15 90
2'A 6
Duplex units consisting of single tank, two pumps, motors and control apparatus will approximate 75
per cent addition to the weights above listed.
Type C. S. S.
C. S. S. type pumps and receivers are made for standard low boiler pressure work up tp 25 lbs. The pump is bronze fitted single side suction type with oil-less sleeve bearing at pump and ring oiling bearing. Also has ball thrust bearing and flexible coupling. Crank action, float mechanism operated by copper float insures positive operation for enclosed switch. Mounted on heavy cast iron base the units are fully assembled, ready for operation. _ We have a proper size pump for every iob. Cracked boiler sections eliminated when Economy Pumps are used. Receivers and pump capacities proportioned to prevent excessive low water conditions of boiler.
H.2 CL
e.e 1
No. of Uni Capacity in Sq. Ft. Din C. I. Rad tion Discharge Pressure, L per Sq. In. Motor H. Pump Capacity C. P. M.
CReac teit ivleyr
Gallons GaU.Cond sate per M at 0.25 Lbs
Sq. Ft. H r
6 6Vi 7 7A 7B
Jl/,x
ih
8A 8 8B
8VA
i
9A 9 9B
9'/?A
Ji
10 I0A IOB
2,000 3,500 5.000 5,000 5,000
7,500 7,500 7,500
10,000 10,000 10.000
15.000 15,000 15.000
25,000 25,000 25.000
35.000 35.000 35.000
50.000 50,00050.000
10 10 10 (5 20
10 15 20
10 15 25
10 15 25
to
15 25
10 15 25
15 25 35
% i'h a 12 'A 15 % 15 1 15
'A 20 V, 20 1 20
A 25 25
I'A 25
Va 37
1 37 2 37
1 60 2 60 3 60
2IV,
80 60
3 80
2. 110 5 110 5 110
13 16 20 20 20
26 26 26
33 33 33
41 41 41
49 49 49
70 70 70
82 82 82
1
Wa 2'A 2'A 2'A,
3'A 3% 3%
5 5 5
m
18
12'/, i2'/;
12'A
17'/, I7>/
I7V5
25 25 25
468
Economy Pumping Machinery Co.
Pumps
Economy Pumps and Receivers C. S. M. Type
ity for either 10 or 20 lbs. boiler pressure. Receiver is cast iron, stuffing box around pump shaft, thrust carried on ball bearing in cage above stuffing box. The lower bearing is of oil-less sleeve type.
Economy Reciprocating Pomp--C. R. Type
Pump and receiver for work up to 125 lbs. boiler pressure.
The demand for an unusually high-grade pump and receiver has caused us to make available a complete line of sizes from 5,000^to 50,000 sq. ft. capacity, inclusive. These units include horizontal split double suction bronze fitted pumps with double ring oiling bearings; a heavy receiver, our special float mechanism, switch and a self-starter for the motor. These units are
designed to discharge against boiler pres sures up to 55 lbs. They are made both single and duplex pump units.
Type C. R.--Pump and Receiver
These units are frequently used in old remodelled'jobs, comprising several types of heating systems. They will handle the condensate from all and sometimes are used to establish a vacuum in parts of the apparatus. `This feature is not automatic or capable of close adjustment. Silent chain drive is used. Pump is fully bronze fitted and made for capacities ranging from 1,250 to 25,000 sq. ft. radiation.
Economy Boiler Feed and High Pressure Pomps
These units are the same as C. S. M.
except the pumps are multi-stage vertical
split bronze fitted, double outboard ring
oil bearings made in sufficient number of
stages.to discharge against boiler pressures
from 25 to 150 lbs.
Type C. U.
Economy Underground Pump and Receiver C. U.
Intended for work where radi ation is placed on the floor with returns underground. They consist of a special pump and float switch mecha nism which" prevents binding and sticking of float rods. Made iri -sizes of 2,000 to 50,000 sq. ft. radiation capac
Type E. M. F.
This is a single suction multi-stage .
horizontally split case centrifugal pump
intended for heads up to 800 ft. or boiler
pressures up to 350 lbs. It is hydrau
lically balanced, fully bronze fitted, having
a high operating efficiency and . low
maintenance cost, made for any type
drive, direct connected motor or turbine;
belt or silent chain as desired. Impellers
are cast bronze one-piece, accurately
balanced, keyed and locked on alloy steel,
ground shaft between threaded bronze
.sleeves. Stuffing boxes are water sealed
type, bearings are ring oiling, split sleeve
type machined all*over; oil level gauges
and spring hinged cover inspection ports
are provided.
....
..
469
Pumps
Branches
Atlanta New York
Boston Philadelphia
Goulds Pumps,
PUMP MAKERS SINCE 1848
Main Office and Works SENECA PALLS New York
Inc.
Chicago Tulsa
Branches
Pittsburgh Houston
Goulds Pumps have been made for every service for more than three-quarters of a century and have an established reputation for reliable service, economy in operation, and conservative rating. Bulletins on power pumps give complete specifications of the standard types as follows:
No. 100. Double-Acting, Single Cylinder Piston Pumps.
No. 101. Single-Acting Triplex Plunger Pumps, Outside-Guided Type.
No. 103. Single-Acting Triplex Plunger Pumps, Large Capacity and High
Pressure Types.
'
No. 104. Double-Acting Triplex Piston Pumps, Vertical Type.
No. 10S. Single Stage, Single Side Suction Centrifugal Pumps.
No. 106. Vacuum and Stuff Pumps.
No. 107. Deep Well Triplex Pumps.
No. 108. Deep Well Working Heads
' and Cylinders
No. 110. Single Stage,
Double Suc
tion Centrifu
gal Pumps.
No. 111. Centrifugal
Sump Pumps
No. 112. Hanay Data
on Power
Pumping.
No. 113. Power Rotary
Pumps.
No. 115. Double-Acting D u p I e x
Goulds Double Suction
and Triplex Plunger
ffflgyy Centri/ugoi Pump
Pumps, Horizontal Type
^
No. 116. Single-Acting Triplex
Pressure Pumps.
-,
No. 118. Centrifugal Fire Pumps.
No. 119. Single Stage, Single Suction Centrifugal Pumps, Enclosed Impeller
GOULDS CENTRIFUGAL cavnurucM. nw oat* ctccrr
PUMPS
No. 120. Multi-Stage Centrifugal Pumps for General Service. No. 122. Centrifugal Pump Data.
No. 124. Installation--Operation--Inspection, Goulds Centrifugal Pumps. No. 125. Single Stage, Double Suction Centrifugal Pumps.
.
Pump Data
Several units of interest to heating engineers and architects are shown here accompanied by data on capac
ity, speed, efficiency which will assist them in choosing the right Goulds pump for the service desired.
Goulds Double Suction Centrifugal Pumps are the results of over 12 years of research and progressive
development and are of exceptionally high efficiences.
'
CASING.--Close grained iron, divided horizontally, the two castings bolted together. The lower half of the bearing housings are cast integral with the lower half of casing. Casing is provided with air cocks, and with openings for priming and draining.
IMPELLER: Cast iron, accurately machined and balanced. BEARINGS: Ring oiling type with sphi cast iron shells lined with babbit, supported in horizontally divided housings
securely locked against rotation or
lateral motion Shells are removable
Table of Canacities for Goulds Centrifugal PumDS
without disturbing rotating element.
THRUST BEARINGS: All pumps are provided with a self-align
ing double-acting ball thrust bearing, running in an ou hath, which takes care of any unbalanced thrust due
Figure
Pump No.
Pipe Sizes
Discharge Suction In. - In.
Approx. Capacity Gals, per Min.
Standard Pulleys
Mini Maxi Diameter Face
mum mum
In.
In.
t Approx
Domestic Shipping Weight
Lb.
to uneven wear of sealing surfaces.
SHAFT: Special alloy steel, heat treated, accurately machined to
3065
f5 6
8
5
6 . 400
800
8
8 1020
6
.8
600 1300
10
10 1325
8
10 1000 2700 12
12 2100
^STUFFff/G BOX: Of ertra loiing
design with brass water seal ring and water seal piping.
3075
GLANDS: The glands are split
horizontally, permitting the gland to
be removed and affording maximum
space for repacking. They are ad justed by swing bolts.
3085
CASING WEARING RINGS:
Casing is equipped with bronxe wear
ing rings, wnicb can be renewed as re
quired, thus keeping the clearances to a minimum.
3095
IMPELLER WEARING RINGS: -
10 5 6
8 2 3 14 )5 16
l8 2
J3 4
16
10
5 6 8
2 3 4
5 6 8
2 3 4
6
12 2000 4400
6 400 900
8 600 1500
10 1100 2900
3 50 325
4 150 350
5 250 750
6 400 1000
8 800 1700
10 1300 3000
3 50 250
4 200
450
5 400 800
8 500 2000
12 8 10
12 5 6 8 10
12 12 6 8
10 12
12 3300 8 1275
10 1605;.-
12 2525'
5 600 6 950
8 1270 10 1520
12 2400
15 3425
6 1020 8 1120
10 1585 12 2900
Wearing rings on bronze impellers fWeight includes either bedplate and coupling for direct connected drive, or bedplate,
can be furnished as an extra.
pulley, pulley shaft, coupling and two pedestal bearings for belt drive.
470
Goulds Pumps, Inc.
Pumps
FLEXIBLE COUPLING: A flexible coupling of the pin-and-buffer type is provided to connect the pump to prime mover or belt pulley shaft.
BED PLA TE: Pump and prime mover are mounted on a rugged cast iron bedplate of neat design, with a drip canal around the four sides.
Goulds "Pyramid" Double-Acting Piston Pump (Fig. 1678) is especially adapted for handling Condensation of Steam Heating Systems and for General Water Supply, Mine Service and Hot Water Pumping. Built in a single iron casting embodying the base, cylinder, bearings and one cylinder head, with the cylinder fitted with a renewable cast bronze lining and the piston fibrous packed, this pump is of strong and rigid construction.
Goulds Pyramid Piston Pump
Dimensions, Speeds, Displacements. Goulds "Pyramid" Pump Ratings Based on Pumping Cold Water.
Weight Lb. 1
tN o. So. Ft. Heat ing Radiation
Stroke Displ. per Rev, of Crank Shaft. Gal.
Pulleys Tight and Loose In.
Geared
In. .
1 Discharge
Horse Power at Catalog Rating
Pistons
| Q
Usual Speed and
Dis placement per Min.
Rev. Gal.
Horse Power for Vacuum Service
Suction In.
Size Pipe
1
,
2% 4 .130 39 5 .50 .50 700 tv. 1V4 5 to 1 8x2V7 170
IV, 5 .245 41 10 1.00 .50 1450 1'/2 1'/j 5 to 1 I5x2</2 295
W, 5 .465 39 18 1.50 1.00 2600 2
2 5 to 1 15x3 340
43/4 5 .741 38 28 3.00 1.00 4000 i'h 2Vi 5 to 1 16x4 525
sy. 6 1.316 38 50 5.00 1.50 7000 3
3 5 to f 20x4 680
fFigures based on the condensation of one-third of a pound of steam per square foot of radiating surface per hour, which is a good average condition.
Goulds Double-Acting Piston Vacuum Pump (Fig. 1049) has a displacement of 10,200 gal. to 81,000 gal. per hr. The waterways are so con structed that the valves at both ends of the cylinder are always submerged. The frame is of cast iron in one piece bolted to the cylinder, supporting the bearings and crosshead guides. These pumps are designed for Suction Box on Paper Machines, Vacuum Pans, Surface Condensers, and Vacuum System of Steam Heating.
Gallons
Displaced ment
per Min.
Goulds Vacuum Pump--Dimensions and Displacements
Pistons
Diam. Stroke In. In.
Displace ment
1 Rev. of Crank Shaft
Vacuum Steam Heating Systems
H. P.
*Sq. Ft. of
Required Radiation
R. P.M.
Sizes of Pipes
Suction In.
Dis
charge In.
170
8 10
4.28 gal.
265
10 10
6.73 "
385 ' 12 10
9.72 "
525 14 10 >3.22 "
700 14 14 18.51 "
1000 16 16 27.62 **
>350 18 16 39.31 "
3 5 5
m 10 10 15
24500
36000 55000
75500 100000 144000 194500
40
40 40
40 38 37 35
55
55 55 66 66 88
10 10
Figures based on the corfdensation of one-third of a pound of steam per square foot of radiating surface per hour, which is a good average condition.
The Goulds Sump Pump (Fig. 3029) is a standardized outfit built in one size. Ratings for this size are given below. When the sump is full the float rises and actuates the switch which in turn starts the motor. When sump is drained, the float falls and the motor is stopped. Electric current is used only when pump is running and the pump is always submerged ready to start work instantly.
Ratings--Fig. 3029 Sump Pump
l H.P.--1725 R.P.M. Motor Gals, per Min.. 10 15 20 25 30
15_.with % H.P.--1450 R.P.M. Motor
35 12
20 25 30
Head in Ft....... 24 22** - 20 18 16 13
15 14 13 11
8
471
Geared
4 to 1 4 to I 4 to 1 4 to 1 4 to 1 4 to 1 4 to 1
Single Pulley
In.
30x4 30x5 30x5 30x5 36x6 36x6 42x8
Goulds Sump Pump
Pumps
Chicago Pump Company
Office and Works
2330 Wolfram Street - - CHICAGO, ILL.
Representatives in Principal Cities
Quality Centrifugal Pumps-{g"n
F&
HORIZONTAL CONDENSATION PUMP AND
RECEIVER
.
Horisontal condensation pumps and receivers are designed for capacities up to 150,000 sq. ft of direct radiation and boiler treasures to suit any job. All units are mounted on
one base and are assembled at the factory. Simple construc tion. quiet operation, and low operating costs are a few of the outstanding features.
VERTICAL CONDENSATION PUMP AND RECEIVER
The vertical condensation pump and receiver is designed particularly to collect the return from heating coils, etc., that come back below the floor leveL No concrete pit is required, the unit being adaptable to ground installation, thus using a minimum of floor space. ASK for Bulletin 133.
U nit No. Maximum Sq. Ft. Direct Radiation Lbs. Press. Pump IwillDisch. Against
Horsepower Motor Furnished Capacity Pump in Gals, per Min. Dia. Receiver, In.; also Floor Space
"Sure Return" Condensation Pump
The "Sure Return" condensation pump and receiver is
especially, designed for low and medium capacities and
boiler pressures up to 10 lbs. All parts are standard and
interchangeable. Delivery can be made on this unit in 24
hours. Bulletin 131.
'
1650
81651
3,000 10 * 17
'A y<
5 "
24
81652 " 22 i "
1654
81655
6,000 10 " 1/
Vi y.
10 "
24
8 81656 22 1 "
8 81658 10,000 10
1659 17
'A
15 "
24 "
1660 " 22 i
81662 15,000 14 % 21 24
1663 " 18
"
81665 25,000 12 y. 35 30
1666 " 16 1 "
1668 40.000
8 81669 "
10 14
>/. 55 1
30
8 8 81670
21 <Vi
Vertical Condensation
Pump
RETURN LINE VACUUM HEATING PUMP AND RECEIVER
The " Condo-Vac" return line vacuum pump and re ceiver for maintaining a vacuum on the return line of a heating system and collecting and returning the condensa tion to the boiler, is constructed with separate motors,pd individual automatic control. The entire outfit is mouq^d on one base. Units for capacities from 5000 to 6500 sq. ft of direct radiation, low and high boiler pressures. Bulletin 137:
F. C. Condensation Pump
The F. C. or Float Controlled type condensation pump and receiver is designed for low, medium and high boiler
pressures and capacities up to 150,000 GPM. Bulletin 129.
. Horizontal Condensation Pump Capacities, Horsepower and Floor Space
Uiiit No.
H. 650 H. 651 H. 652 H. 653 H. 654 H. 655 H. 656 H. 657
Max imum
Sq. Ft. Direct Radia
tion
3,000 6.000 10.000 15.000 20.000 25.000 35.000 50,000
Horse power Motor
/. >/? Vi
y y.
1 1 i'/i
Approximate Floor Space
Required Inches
43x28 43x30 55x30 57x32 59x32 59x32 61x34 65x36
Highest Water Level in Receiver from. Floor
Line Inches
26 26 30 30. 30 35 39 41
Return Line Vacuum Pump
ENGINEERING SERVICE The cooperation and advice of skilled engineers will be " gladly given to Engineers, Architects, and Contractors in tiie solution of their pump problems. Complete data are available in bulletins on all types of pumps.
472
Pumps
The Nash Engineering Company
South Norwalk, Conn., U. S. A.
ATLANTA--618 Atlanta Trust Co. Bldg.
MONTREAL--807 New Birks Bldg.
BIRMINGHAM--1218 Age-Herald Bldg.
NEW ORLEANS--344 Camp Street
BOSTON--Nottingham Bldg.. Copley Square
NEW YORK--350 Madison Avenue
BUFFALO--317 Chamber of Commerce
OMAHA--706 World-Herald Bldg.
CHATTANOOGA--1226 James Bldg.
PHILADELPHIA--254 South 15th Street
CHICAGO--925-28 Monadnock Block
PITTSBURGH--1430 Oliver Bldg.
CLEVELAND--1629 Union Trust Co. Bldg.
SALES
PORTLAND--224 Pine Street
DALLAS--1020*21 Mercantile Bank Bldg.
RICHMOND--American Natl. Bank Bldg.
DENVER--1226-28 California Street
OFFICES SALT LAKE CITY--204 Dooly Bldg.
DETROIT--Kerr Building
SAN FRANCISCO--Sharon Bldg.
INDIANAPOLIS--821 Hume-Mansur Bldg.
SEATTLE--226 Railway Exchange
KANSAS CITY--208 Mutual Bldg.
ST. LOUIS--4200 Forest Park Blvd,
MEMPHIS--1812 Exchange Bldg.
TAMPA--5601 Miami Avenue
MIAMI--845 N.E. First Street
TORONTO--1123 Bay Street
MINNEAPOLIS--800-6 La Salie Avenue
VANCOUVER--315 Credit Fonder Bldg.
WASHINGTON. D. C.--805-6 Hill Bldg.
Motor-Driven Return Line Vacuum Pump
Jennings Vacuum Pump for Return
.Line Heating Systems
This pump removes air and water from
the heating system, discharges the air to
the atmosphere without back pressure,
and automatically returns the water under
pressure to the boiler or hot-well. Air and water are handled independently, often resulting in a 50% saving in horsepower required for pump operation. Occupies one-third the space of other apparatus of equivalent capacity.
Interior parts bronze. Moving parts revolve without metal-to-metal contact and are supported on radial ball bearings mounted outside casing.
Furnished direct connected to standard electric motors, for belt drive, or for steam turbine drive.
Motor-Driven Condensation Pump
Jennings Condensation Pump and Receiver, Unit Type
No piping between the pump and receiving tank is necessary. The only connections are main return, water discharge, and air vent. Companion flanges are furnished.
The pump has an integral cast bronze impeller mounted on motor shaft sup ported by large motor bearings.
Literature, Recommendations and Proposals on Request
Bulletin 37--Return Line Vacuum Heating Pump.
Bulletin 2.5--Return Line Vacuum Heating Pump
Size M.
.
Bulletin 18--Return Line Vacuum Heating Pump,
Turbine Driven.
'
Bulletin 29--Condensation Pump.
Bulletin 17--Air-Line Vacu'ura Heating Pump.
Bulletin 10--Air and Gas Compressors.
Bulletin 11--Air and Gas Vacuum Pumps.
Bulletin 52--Centrifugal Pump.
STANDARD SIZES AND CAPACITIES. JENNINGS VACUUM PUMPS -
Size
Square Feet
direct equivalent radiation surface
Air Capacity
cubic feet per min.
Water Capacity gals, per min.
10 lbs. pres. 180 F.
Actual Horse Power
R. P. M.
Horse Power of Motor for 10 lbs.
Discharge
M 5,000
A 8,000 B 16,000 C 26,000 D 40,000
E 65,000
F 100,000
C 150,000 H 300,000
3 5
9 15 19
34 60
80 150
8 .6 II .9
22 1.4 35 2.0 60 . 2.8 90 3.9
140 7.
200 9.8 400 19.
1700
1600 1800
1800 1200
1200 1200
900 720 .
|A
2 3 5 71/2
10 20
473
Pumps
TRANE PUMPING EQUIPMENT (See Trane Heat Cabinets on pages 394 and 395. Also Trane Heating Specialties on pages 530 and 531.)
The Trane Company
Za Crosse; Wzs.
BRANCH OFFICES
New York, Chicago, Boston, Cincinnati, Newark, Philadelphia, Buffalo, Cleveland. Detroit, Seattle, Los Angeles, Albany,
Minneapolis, Salt Lake City, Greensboro, N. C., Zanesville, Ohio, Tampa, Fla., Baltimore, Md., Dcs Moines, Iowa, New
Haven, Conn., Sheboygan, Wis., Kansas City, Mo.; England: 22-23 Clerkenwell Close. London, E. C. 1. Canada:
The Trane Co., 21-23 River St., Toronto, 2; Thomas Robertson & Co.; 134 Craig St., West. Montreal, F. S. Murdoch,
310 Breadalbane, Winnipeg; A. B. Madden, 43 Sparks St., Ottawa. Japan: Mitsubishi Shoji Kaisha, Ltd., Tokyo.
China: C. J. Doughty & Co., 8-9-10 Brenan Road, Shanghai.
'
The Trane Systems of Vapor and Vacuum Heating, Patented Heating Specialties, Trane Heat Cabinets, and Trane Automatic Electric Pumps,
For All Purposes
-~>-
The Trane Company
Pumps
Fig. 1. (Center). Cast Iran Tank Style Condensation Pump Pig. t. (Right) Steel Tank Style Canientation Pump .
Fig. S. (Left) Duplex Type Condensation Pump
'
THE TRANE LINE
Trane Vacuum Pumps
Trane Vacuum Pumps are furnished in capacities ranging from 6000 sq. ft. to 100,000 sq. ft. There are at this time over three hundred and fifty (350) sizes, styles, and combinations of Trane Vacuum Pumps, divided into the following general classifications:
The Two-Motor Trane Return Line Special.
The Four-Motor Trane Duplex Special. The Trane Standard Return Line. The Trane Standard Duplex. The Trane Air Line Vacuum Pump.
Trane Condensation Pumps
(Boiler Feed)
Trane Boiler Feed Pumps are furnished in capacities ranging from 4000 sq. ft. to 100,000 sq. ft. There are seventy-seven standard sizes, divided into two classi
fications:
Single Units.
Duplex Units.
Trane Sump Pumps
(Bilge and Sewage)
Trane Sump Pumps are furnished in capacities ranging from 5 . g.p.m. to 1000 g.p.m. Two classifications:
Single Units.
Duplex Units.
Trane General Service Pumps
Trane General Service Pumps are the
standard Trane centrifugals used with or without receiving tanks. Capacities range
between 5 g.p.m. to 5000 g.p.m. against pressures ranging from 0 to 200 pounds.
There are many sizes, divided into two
broad classifications:
Circulating Pumps. Booster Pumps.
Special Air and Gas Pumping Apparatus
Trane Air and Gas pumps handle from 3 c.f.m. to 125 c.f.m. They are classed as
Compressors
Agitators Core-Suckers
Exhausters
Gas Pumps Priming Pumps
474
Fig. 8. Trane Vertical Split Shell Pump, Capacities available up to 1500 G. P. M.
Fig. 9. Trane Horizontal Split Shell Pump, Capacities available between 100 and 5000 G P M
Fig. 10. Intertor of Trane Horizontal Split Shell Pump.
`
GUARANTEE pressure for which it is sold, in aaaiuon it is guaranteed against j for a period of one year.
ueiecis
475
Pumps
Skidmore Corporation
1535 Dayton Street
General Offices and Factory x
CHICAGO, U. S. A.
The New Type "B"
SKIDMORE HYDRO TURBINE VACUUM AND BOILER FEED PUMP
Where a self-contained unit reliable and quiet in operation is desired the Skidmore
will be found.
'.
Positive removal of air and water from the heating system and the return of water
to the boiler.
...
.
A unit of pleasing design of large capacity and maintained efficiency, occupying less
than half the floor space of pumps for simitar service, self-contained, all on one base with
return connections close to floor with strainer arranged so that connections can be made
to one or both sides as desired. Furnished with direct connected motors for 10 and 20
lb. pressure, or up to 60 lb. if desired. For continuous service or with automatic vacuum
control or automatic float control or both. A strictly high grade product, bronze rotors and bronze fitted throughout, shaft
carried on oversize ball bearings, no close clearances or rubbing parts.
CAPACITIES FOR 10-in. Vacuum--10 and 20 lb. Pressure
Size Capacity Cal. of Motor of Sq. Ft. of Water H. P.
Pump Radiation per min. 10 lb.
0 5.000 8 3A
1
8,000
II
i
2
16.000
22
l'/2
3 26,000 35 2
4 40,000 60 3
5
60,000
90
5
6 100.000 . 150 10
Motor H. P. 20 lb.
. Size of Companion
Flanges for Returns
Size of Discharge to Boiler
Approx. Floor Space
Shipping Weight
lb.
1 l'/2 2
rl'/2* 2"
3 iVi"
5 21Vi
l'/i r
15 4"
r i vr i 2l'"/2* 2"
V/i
I8'*34' 18**46* 18**48' I8'x48' I8'*52". 20'*54" 20'x60"
500 600 700 775 800 1200 1400
R. P. M. 1800 for all sizes. Above weights are for continuous service, add 100 lb. for automatic control.
476
Pumps
WORTHINGTON PUMP AND MACHINERY CORPORATION
113 BROADWAY. NEW YORK CITY
BRANCH OFFICES
Atlanta----------------------- ------------- Wynn Claughton Bklg.
Birmingham ........ ...... ....................1725-31 Fust Avenue
Boston....... ................................. Boston Safe Deposit Bldg.
Buffalo.............. ...................................... ....... .......Iroquois Bldg.
Chicago^.....
............Old Colony Bldg.
. Cincinnati--...............................First National Bank Bldg.
Cleveland-.
Rockefeller Bldg.
Dallas.--.--..... .........
Magnolia Bldg.
Denver.-.--
_
__ 437 Seventeenth Street
Detroit----------------------------
Majestic Bldg.
El Paso----------------------------------------------------- .Mills Bldg.
Houston^.......... --............................................ Electric Bldg.
Kansas City.............
Los Angeles New Orleans........
Philadelphia___ __
Pittsburgh St. Louis_________ Sr. Paul. Salt Lake Citt__ _ San Francisco____ Seattle__ ____ ___ Tuiaa___ ________ Washington, D. C.
--------------------- Scarritt Bldg.
--2424-2426 Enterprise Street
______ 340-344 Camp Street
______North American Bldg.
--......... --..... --Oliver Bldg.
_________ Laclede Gas Bldg.
-- ......
Commerce Bldg.'
________ Walker Bank Bldg.
______________ Sharon Bldg.
.................L. C. Smith Bldg.
......424 North Boulder Street
............
Homer Bldg.
Steam Pumps--Centrifugal Pumps--Power Pumps--Deep-well Pumps--Water Meters--Compressors--Feedwater Heaters--Automatic Feed Pumps and Receivers--Steam Heating Vacuum Pumps
WORTHINGTON
Manufacturing all types of pumps and Sump Pumps
air compressors used in the building trade, Worthington engineers hold no
Centrifugal and "Axiflo" types.
brief for any particular kind. Let them assist you in specifying the correct machinery for the purpose. The Worthington Line includes:
Water Meters
Hot-water boiler-feed; cold-water meters of the disk, turbine and compound types, with a range of
Steam Pumps Simplex and duplex types; simple,
capacities from the smallest flow to the largest service; also oil meters.
compound and triple expansion; condensing and non-condensing; in all sizes and designs to meet every service requirement.
Compressors
Air and ammonia; single-stage or two-stage, vertical and horizontal; bejt driven, direct-connected motor
. Centrifugal Pumps
or uniflow steam drive.
Open or closed impeller,, volute and multi-stage pumps, in all sizes and capacities for all heads.
Feedwater Heaters
'
Open type, vertical and horizontal. Serves as feedwater heater, purifier,
Power Pumps Single-cylinder, duplex and triplex;
condensation receiver and feed water softener all in one.
horizontal or vertical; single-acting
or double-acting.
*
Automatic Feed Pumps and Receivers
Deep-well Pumps Single-plunger, two-plunger and
For returning condensate from heat ing coils.
three-plunger' reciprocating types and "Axiflo" and " Coniflo" ro Steam Heating Vacuum Pumps
tating types.
Both steam and power driven.
7583-10
477
Pumps
Iffotmcfr Pump Compamy
Dunham Building--450 East Ohio Street, CHICAGO, ILLINOIS , Factory
Michigan City, Indiana Agencies in All Principal Cities in U. S.
Canadian Office and Factory C. A. Dunham Co., Ltd.. 1523-41 Davenport Road. Toronto, 4, Ontario
THE YOUNG CENTRIFUGAL VACUUM AND BOILER FEED PUMP Patented December 10, 1918
The Young Pump is a reliable Vacuum System pump for handling both gases and
liquids efficiently.
The units are completely assembled (including electrical equipment) at the factory
and tested before shipment. They are ready to run when the feed wiring is connected
to the unit.
The unit consists of a Centrifugal Pump, bronze fitted, of enclosed impeller and high
efficiency type, an approved make of motor and electrical equipment, mounted with a
heavy welded tank on a substantial cast iron base.
.
The motor used is of 40 rating, of more than ample power for the maximum load
that will come on the unit. A safety factor insuring freedom from motor trouble.
All Standard Units are built to discharge against a pressure of 20 pounds at the pump, except the Standard Unit VOA which is built to discharge against 18 pounds
pressure at the pump. Special pumps can be furnished to discharge against 35 pounds
pressure at the pump. .
Both the standard and special units are furnished for either continuous or automatic
control operation.
TABLE OF CAPACITIES
Size
Sq. Ft. of Direct
Radiation
Horsepower
of Motor
Normal Power Load
Water
Capacity C. P. M.
Air Capacity
Cu. Ft.
Size of Suction
Size of Discharge
"Approx. Shipping
Weight, lbs.
VOA
5.000
V*
.6
8 4.5
i /. 750
VIA
8,000
1
.8 12 6.0 1'/2 l'/2 900
V2A
16,000
\'/l
1.3
25
9.8 m 2
950
V3A
26,000
2
1.8
40 16.0 2
2/2 1,100
V4A
40,000
3
2.7
70 20.0 T>h 3 1,200
V5A
65.000
5
4.1 100 32.0 3
3 1,250
V6A 100,000 m 6.8 160 50.0 5
3'/2 1,670
Crated F.O.B. Michigan City. Indiana.
478
Young Pump Company
Pumps
The capacity rating in square feet of equivalent direct radiation given in the table
is for a properly laid out and equipped vacuum system that is tight. The air capacities
are ample and standardized to produce under these conditions 10 inches of vacuum
with reasonably tight vacuum traps, and temperature of returns not to exceed 180
deg. Fahr.
The principle of the
YOUNG ACCUMULATOR TANK
vacuum producing element
is the oldest and most
efficient in practice--that
of the ejector. Whenever
the pump is in operation,
water is supplied under
pressure to the ejector noz
zle, which causes the ejector
to pull a strong suction
on the return line of the
heating system. This suc
tion produced by the ejector
is particularly positive.
Where the returns come back at a low level an accu mulator tank is recom mended in preference to an ordinary lift connection, with all the returns gravita ting into it.
The accumulator tank is
equipped with a float switch control wired to the other control. Air and the water of condensation flow into the accumulator tank from which they are pumped by
the pump unit. Should the YOUNG CONDENSATION PUMP AND RECEIVER accumulator tank fill with
water, the float control will function whether or not there is vacuum on.the re turn line of system. The snap switch between the vacuum regulator and starter can be used thus operating the pump as a . condensation pump and re ceiver. This insures water being returned to the boiler at all times. `
This accumulator tank . equipment is particularly
valuable where blast or other radiation is at a low level which must always be drained when vacuum is hot required on other parts of A Complete and Assembled Unit Ready for Piping and Wiring Connections the system.
479 . .
Pumps
Yeomans Brothers Company
(established in 1898)
1440 Dayton Street - CHICAGO, ILL.
Manufacturers of a Complete Line of Pumps
Yeomans automatic elec-
PRODUCTS
The type HCS horizontal
trie Condensation Return
Pumps are designed for returning condensate from gravity heating systems
to boilers where the re turn lines are too low to drain by gravity. They
are built in horizontal type, suitable for return
Shone Pneumatic Sewage Ejectors
Yeomans Centrifugal Sewage Ejectors
Sewage Pumping Plants for municipalities
Bilge or Sump Pumps. Electric or Steam
Driven. Single or Duplex
Emergency Flood Pumps
Condensation Return Pumps
Centrifugal Pumps for all purposes
.
machine, though compact, durable and economical in operation, is of lighter con struction, being equipped with steel receiver, light type enclosed float switch and without knife switch.
The type V vertical unit is
lines above basement floor '
similar in construction to
level, and vertical type for return lines close to or the Yeomans Electric Bilge Pump, being equipped
below floor level.
with cast iron receiver or basin, cast iron cover,
vertical direct connected motor and enclosed auto
The type HCC horizontal pump includes a heavy matic control.
"
cast iron receiver mounted on same cast iron base
with pump and motor and equipped with carbon Special pumpa for larger capacities and higher
preaaurea can be.furniahed on order.
STANDARD SIZES--TYPE HCC .
Pump No.
Max.
Sq. Ft. Direct Radia
tion
Cals.
per Min.
1 1,000 5 2 3,000 10
3 6,000 15
4 10,000 20
5 15,000 30 6 30.000 60
Size of
H. P. of Motor
Approxi mate
Shipping
10 Lbs. 20 lbs. Weight
20x30 vf 1
20x30 'A 1
20x30 V. ivi
20x40 20x40
y.
1
2i'/S
20x40 2
3
1,000 MOO
1,200 1,400 1,500
1.600
STANDARD SIZES--TYPE V
Pump No.
Max. Sq. Ft. Direct Radia
tion
Cals. Size per
Min. ......
H. P. of Motor
Approxi mate
10 lbs. 20 lbs. Weight
HCC Condensation Pump and Cast Iron Receiver
butt contact enclosed automatic float switch, enclosed knife switch and protective device, all built to meet the most exacting demands and for service where dependability is of vital importance.
1
2 3
4 5 6
Standard Sizes--Type H. C. S.
1,000 3,000 6.000
10.000 15,000 30.000
5 10
15 20 30 60
24x48 V? 1
24x48
'h 1
24x48 % 1/z
24x48
Vt Ivi
24x48
2
24x48 2
3
1,500
1.550 1.600 1.650 1,750
1.850
Pump No.
Sq. Ft. Direct Radiation
Size of H. P. Motor Receiver 10 lbs. 20 lbs.
2 1000/3000 18*x20* 'h y. 3 4000/6000 I8'x20* Vi y.
4 7000/10000 18"x24" 'h 1 5 11000/15000 WilV 'h 1 6 16000/30000 18"x24* v.; 1 Vi
Type V
7 31000/45000
i I'/z
8 46000/60000 18'x3(r i'/i 2
Type H. C. S.
480
Publications, Trade
Sine timore aut beneficio Published Monthly at 64 W. Randolph Street, CHICAGO
DR. E. V. HILL, Editor
HE policy of the AEROLOGIST is to foster and
Tpromote a better understanding of the real funda mentals of ventilation and to broaden the demand for the same; to discourage the belief that ventilation is merely a matter of opening a window; to encourage careful consideration of the quality of the air as well as the quantity, with proper control over temperature, humidity, etc.
Its interest includes and is circumscribed by more
economical and more efficient methods, air cleansing
devices, humidification; dehumidification, humidity con
trol, temperature control, air moving machines, air
heating or cooling--in lact any of the devices necessary
for conditioning air either for physiological or industrial
purposes. '
.
SUBSCRIBERS INCLUDE:
Engineers Architects Ventilation Contractors Heating Contractors School Officials Manufacturers Theatre Operators
.
No advertising plan can be complete ' without use of the AEROLOGIST
t
'
Rates
'
One Insertion............................................................... $80.00 per page
Tw.elve Insertions.................. ................. .................. 60.00 per page
Subscription $1.00 per Year 481
Publications, Trade
NEW YORK 1123 Broadway
CHICAGO 105 So. Dearborn St.
A Monthly Journal of Engineering Progress
Heating and Ventilation is a special ized branch of engineering. It com prises consulting engineers who design the heating, ventilating, and air con ditioning systems for schools, hospitals, hotels, office buildings, department stores, apartment houses, institutions and industrial plants. They specify or buy the apparatus and material and supervise the installation--the most direct sales contact for manufacturers of such apparatus and material.
Readers
Heating and Ventilating Engineers.
Board of Education Engineers.
Superintendents of Central Station Heating Plants and the big Heating and Piping Contractors throughout the United States.
Calibre and buying power are out standing characteristics of the readers of The Heating and Ventilating Magazine. Their services are required only where high grade material and workmanship are a larger consideration with the architect and owner than mere price.
Reader Interest
The reader interest is keen and genuine. It is maintained by a wellrounded editorial program devoted to progress in the heating and ventilat ing field; The program includes and provides for the publication of original articles by recognized engineers describ ing the latest ideas successfully applied in heating, ventilating and air con ditioning. Another important feature" is the monthly publication of four pages of standard Heating and Venti lating data for use by Engineers in the design and layout of heating and ventilating systems.
Rates
Single insertion.......... $130.00 per page Twelve consecutive
insertions................. 103.00 per page
Over 180 manufacturers of heating and ventilating apparatus and appli ances are using the advertising columns of The Heating and Ventilating Maga zine every month in the year.
Member A. B. C.
THE DIRECT ROUTE to the Specifier and Buyer of Heating and Ventilating Equipment
Subscription Price $2.00 per year. 482
Member A. B. P.
Publications, Technical
JOURNAL
of American Society of Heating and Ventilating Engineers
29 West 39th Street NEW YORK, N. Y.
THE JOURNAL
of the American Society of Heating and Ventilating Engineers is the official organ of the Society, whose purpose is to promote the art of heating and ventilating, to act as a medium for the exchange of engineering experience, to standardize the industry by means of codes of design and testing, and to conduct research investigations for ascer taining the uncertain factors in the art.
The Journal appearing monthly, is read by 3,000 consulting engineers, architects and contractors actively en gaged in heating and ventilating work. It gives them technical articles on important subjects, makes a permanent record of discoveries, experiments and other develop ments in the industry and thereby keeps them in constant touch with the best thought in the profession. The Society's meetings, news of the local Chapter events, and other happenings in the heating and ventilating field are also reported.
An exclusive service to Journal readers is the presentation of the reports, made by the Society's Research Laboratory, reference data which is invaluable to the engineer, contractor and manufacturer in his daily work.
The Journal offers manufacturers the opportunity of placing, their equipment before a large group of discriminating
buyers at a minimum cost. The fact that it is devoted exclusively to heating and ventilating engineering in all its branches makes it a most desirable advertising medium and especially so because of its class circulation. In addition to its proven merit as an advertising medium, its use by manufacturers indicates their desire to co operate with the Society in advancing the interest of heating and ventilating.
ADVERTISING RATES PER ISSUE
Space
Six One Year Insertion
Contract
Half-page.................... Quarter-page..............
$50.00
35.00 20.00
$60.00 45.00
25.00
Single Insertion
$75.00 55.00 30.00
Rates for-colors, inserts, cover and other pre ferred positions on application.
Subscription Rates. U. S. $3.00; Canada $3.25; Foreign $3.50 per year.
483
Radiators
The Bridgeport Rolling Mills, Inc.
Bridgeport, Conn.
SAGE CABINET RADIATORS
Copper Radiation for Direct Heating
Reduces
Boiler Capacity Required
Saves in Fuel
Cost
Heats Very Quickly
More Uniform
Room Temperatures
Ideal
For Concealed
Radiation
Heats from Cannot
Roomside Soil Wall or
Only
Decorations
RADIATORS 18 Inches High
The Sage Radiator is a revolutionary development in radiator construction in recognition of an insistant demand for improvement in direct radiation. Entirely of pure copper and brass construction, the Sage is of the small tube and fin type extended surface. The tubes used are seamless drawn -fa inches diameter of pure copper and as many as 210 are used per radiator. Fins are of high brass 2J4 inches long and % inches wide spaced three to I inch of element length forming channels of air passage. Headers are of cast bronze without baffles. Core plates are of high brass. Steam is in contact only with pure seamless copper tubes. The Sage will not become air bound. Finished in DULL MATT Brass.
Heating Surface: More than 2 sq. ft. of heating surface to each square foot of rated capacity.
Ratings; Based on condensation-- under-rated and not over-rated. Usual estimating rules can be applied.
CABINETS 20 Inches High
Sage Radiator Cabinets must be seen to fully appreciate the unusual high qual ity of the natural wood grained finishes. No greater care could be taken in the finishing of any piece of furniture. Sage Cabinets will enhance the appearance of any room no matter how well furnished. Optional finishes are American Walnut, Red or Brown Mahogany, French Ivory, White, or may be had unfinished with prime coat for finishing by interior decorator. First coats are baked enamel. Finishing coats are in highly polished lacquer. Graining is done by a new photo graphic process from wood selected for beauty of grain and faithful reproduction is assured.
Built from best grade furniture steel. All joints electrically welded. Hinged cover fully insulated and front grill re movable. Cabinets are practically inde structible.
484
The Bridgeport Rolling Mills, Inc.
560 lbs.
Radiators
RADIATORS OF EQUAL CAPACITY
Sage Radiators weigh only 1 pound per foot, very greatly reducing freight, trucking, storage and installation costs. Any ordinary size Sage Radi ator can. be easily handled and connected by one man. Size permits use of one Sage where two radiators of the conven tional types are necessary.
Concealing Sage Radiation . is most practical and inexpen sive. Used covered or concealed as under window seats, etc., with out lossjof heating efficiency.
The accompanying illustrations
demonstrate how the Sage Radiator
is designed to create and facilitate the essential air movements of radiation-- controlling and directing such air move-
ments through the radiator, over all radiating surfaces in channels formed
by fins and giving heated air proper direction of discharge-^-an angle of
60% into the room and from a height of not more than 18" which
has been found to be the most effective for efficient heating.
As steam enters the header of very small capacity it is immediately dis
tributed to all parts of the radiator by the tubes, small enough to compel use of
the entire tubular capacity, producing an effective pressure, evenly maintained
and still ample in size for all volumes of steam or water in circulation.
Entrance of cold air is from the bottom and back or wall side. Sage construction automatically creates such air currents.
A thermometer within one inch of the radiator, in back at top. will register not more than 2 deg. higher than tempera ture at opposite side or center of room. Produces room temperatures that are remarkably uniform.
SAGE Is the pioneer in copper radiation for Direct Heating.
Many Sage Cabinet Radiators have given satisfaction in service for four years. Heretofore in small pro duction. Sage is now available in large quantities and very reasonably priced.
MADE ENTIRELY OF COPPER AND BRASS
AIL HEAT EMISSION ABSOLUTELY FROM ROOM SIDE ONLY--AND ALL HEAT "CONVECTED" HEAT OF LOW TEMPERATURE SAGE Booklet Upon Request 485
Radiators, Wall
Fowler & Wolfe Mfg. Co.
Originators of Wall Radiators
Philadelphia, Pa.
THIRTY YEARS SERVICE WALL RADIATORS EXCLUSIVELY
A LL sizes are made in Vertical
jL\. and Horizontal forms and all
in plain pattern. Bay window wall
radiators may be had to meet any
angle or curve of radius of not less
than 6 feet. Test pressure, water,
regular--100 lb. Special up to
400 1b.
.
Made in Six Sizes
10 sq. ft. section--24 x 1334 x 354 inches; 9 sq. ft. section--24 x 13 x 334 inches.
7 sq. ft. section--24 x 1254 x 3 6 sq. ft. section--21 x 12J4 x 3 5 sq. ft. section--17 x 1234 x.3
inches. inches. inches.
334 sq. ft. section--17 x 934 x 3 inches. '
-
How to Order First.--State number of Radiators and num ber of Sections in each. Second.--State size of Sections, whether 10 ft., 9 ft., 7 ft., 6 ft., 5 ft., or 354 ft- Third.--State whether vertical (B) or horizontal (A). (See illustrations.) Fourth.-- State how many Sections long and how many high. Fifth.--State whether for Steam or Water and if Steam whether one or two pipe. Indicate location of tappings by letter (see illus tration above). Sixth.--State style of Bracket or Support.
RIGHT AND LEFT THREADED NIPPLE CONSTRUCTION
486
Radiator Covers and Shields
Dixie Metal Products Co.
Manufacturers of SHEET METAL SPECIALTIES
Sales Offices in Principal Cities
Main Office and Factory:
BIRMINGHAM, ALA.
Dixie Radiator Cabinets and Shields for steam and hot water radiators are designed to give the full heating efficiency of the radiator and supply an atmosphere, heated and humidified to the proper degree for comfort. TTieir artistic finish in
twenty-one colors, their sturdy construction, high efficiency and utility completely meet the requirements of the architect
engineer, physician and housewife.
.'
Dixie Radiator Cabinets are made of high grade furniture steel with heavy insulated top and back, solid ends and openings at bottom and front to produce the proper circulation of air. A solid copper humidifying attachment is placed
directly beneath the hinged cover and supplies the desired degree ofmoisture and thereby makes the heating plant
more effective. Dixie Cabinets pre
vent injury to walls, furniture,
fabrics, etc., enhance the appearance
of any room and fit any sue or style
of radiator.
_
_ Dixie Radiator Shields are de signed primarily to prevent drafts from blowing upward. and injuring draperies, woodwork and walls. They are built in any size to fit all
radiators and in a finish to harmonize
with any decorative treatment either with full length back to floor or
extending to wall.
Dixie Shields are also made for wall-hung radiators. They fit snugly and when in place make a rigid seat with low radiators or a convenient shelf on high radiators.
flTM.
1 > , .,
egisteir* and ne for wall type registers.
There is a Dixie Cabinet for use
with warm air furnace installations.
___ .
- They are made in two styles, one for
Of furniture steel are provided with a copper vapor pan to humidify the
air, protect the health of the occupants of a house and prolong the life and beauty of the furnishings.
.
- Dixie Radiator Cabinets and Shields are being used
with great satisfaction in homes, schools, hospitals, apart ment houses, hotels, office buildings and other places where protection of health and decorations, economy of fuel and effective heating are desired. Dixie Cabinets are priced reasonably and have no maintenance cosh
Dixie Radiator Shield
HUMIDITY TEST ON DIXIE RADIATOR CABINETS
Test No. 1
Pans Dry
Time
s: _n S3 C >s
Il iJQ Ll. o|
> M
OQ
Time
_D "a d cgu. c&
*CV+*-D~
iiii
u3 LX
8.15 A.M. 67 55 8.30 a.m. 70 57
45 44
9.00 A.M. 71 56 37 9.40 a.m. 72 57 38
Pans Filled
10.35 a.m. 70 56
1 1.00 A.M. 69 56
II.30a.m. 69 56
12.00 u.
66 55
40 43 43 48
12.35 p.m. 62 53 54 1.10 P.M. 62 52 50 1.30 p.m. 63 53 50 6.15 p.m. 72 59 45
Test No. 2
Pans Dry
10.00 A.M. 70 62
II.OOa.u. 74 58 36
Pans Filled
-
2.00 p.m. 3.00 p.m.
75 62 76 63
4487 |!
4.00 p.m. 5.00 p.m.
73 74
61 62
50
47
LIST PRICE ON DIXIE RADIATOR CABINETS AND SHIELDS
Length of Unit
18' 19 25 31 36 42 48 54 61 68 76 84 and to to to to to to to to to to to
less 24 30 35 41 47 53 60 67 75 83 92
8Cabinets 36* hieh and Iras
$31
Cabinets 38* High and higher .
34
Shield Price with back to wall. Solid color
$34 38 10
$38 42
12
$42 46
14
$46 50
16
$50 55 18
$55 60 20
$60 65
22
$65 71
24
$71 77
26
$77 83
28
*83 91 30
Prices on Cabinets includes all crating and boxing. F. O. B,, Birmingham.
93 105 119 to to to 104 118 134
$91 $101 $115 101 115 130 34 37 40
487
Radiator Covers
Art Metal Radiator Cover Company
General Offices and Factory 1732 N. Kolmar Avenue
Chicago, 111.
marrwouwmycuo*v*w*"i
Eastern Division 1520 Broadway, New York
New York
Representatives in All Principal Cities
Trico De Luxe Cane Type Grille. (Note exclusive round corner top and leg design.)
PRODUCTS.--Exclusive manufacturer of Trico Humidifying Radiator Covers and Shields--also Grille Fronts for recessed radiators, and Tricolator Warm Air Heat
Cabinets. Trico Humidifying Covers are installed to keep walls clean, transform unsightly radiators into attractive pieces of furniture, humidify the air, and save fuel.
TYPES.--Standard and Grille. Grille in two designs, Rod and Cane. The top,
humidifying water pan and back shields are the same on all types.
^
"STANDARD" TYPE COVERS.--Top is made of 14-gauge furniture steel with
water filling door, finished with six coats of baked enamel, to match any sample sub
mitted with order. Humidi-
____________
fying water pan and back
shield is of 24-gauge. Front and ends of radiator exposed.
Dji&Sxs&sswsisiT
sBIB
'lHHflUMlilMilElli iTM |
Left--Trico De Luxe Rod Type Grille
unM |
^ MfetittlMiLiudktt b ib H Vi. .
.' S' i .4
gJQUUmj^
:r W
Rod Grille
Right -- Tried DeLuxe Standard Cover
488
Standard Cover
Art Metal Radiator Cover Company
Radiator Covers
Detail of Dimensions Required, Trico Humidifying Radiator Shield (Standard)
A--length, B--width, and C--height. State dimensions in inches. In measuring length do not include nut (bushings) if any.
Detail of Dimensions Required, Trico Humidifying Radiator Cover (Rod or Cane)
D--length.
width, and C--height. State
dimensions in inches. Give control valves upper or
lower, right or left.
Indicate type of grille as follows: C--cane.
R--square rod.
"ROD GRILLE" TYPE COVERS.--Top is of 14-gauge and frame or border 16-gauge furniture steel with water filling door, finished with six coats of baked enamel to match sample furnished with order. Top, back shield and humidifying water pan same as "Standard" Type. Front and ends of radiator enclosed with Grille of quarter-inch
channel rods, separated by quarter-inch ornaments. All joints carefully spot welded, not soldered.
"CANE GRILLE" TYPE COVERS.--Top is 14-gauge and frame or border 16-gauge furniture steel with water filling door finished with six coats of baked enamel to match sample furnished with order. Top, back shield and humidifying water pan same as "Standard" Type. Front and ends of radiator enclosed with perforated steel imitation cane.
SPECIAL INSTALLATIONS.--Regular Trico Covers rest 2^ inches above the top of the radiator, unless otherwise . specified. Special covers can be made where there is less than 2^ inch clearance. A ^-inch clearance behind the radiator is sufficient to make installation. For radiators partly recessed, an offset can be made in the back so as to throw the top forward. Curved and angle shaped radiators can be covered with either Standard or.Grille types^
Tricolator (Wall Type)
SPECIFICATION DATA.--Write for Trico File Folder with engineering data for specifications. Our local representative will be glad to call and
show models, metal finish samples, give estimates etc., at your request.
TRICOLATOR FURNACE HEAT CABINETS.--Made in two types--Wall and
Seat. Both types are finished in the following standard finishes: Walnut, Mahogany, Oak, Ivory, White and Prime Coat.
"WALL" TYPE TRICOLATOR FURNACE HEAT CABINET.--Top is of 16-gauge furniture steel with water filling door. Grille front and ends of 20-gauge furniture steel
in imitation cane pattern. Water pan is of 24 gauge galvanized iron. Adjustable damper for wall opening made to fit all sizes of'outlets. Convenient damper adjustment is arranged on side near top.
"SEAT" TYPE TRICOLATOR FURNACE HEAT CABINET.-- Top is of 16-gauge furniture steel with water filling door. Grilled front and ends of 18-gauge furniture steel in both imitation cane and scroll design furnished to suit all sizes of warm air and cold air openings.
Tricolator (Seat Type)
Wall Type and Seat Type Tricolator Hfeat Cabinets are also built for return of cold air on pipeless systems, with a boot for warm or cold air furnace connections.
489
Radiator Hangers and Sleeves
The Modem Manufacturing Company
Manufacturers of Specialties
.
For the Steam and Hot Water Trade
4734 Hough Avenue
CLEVELAND, OHIO
No. 1 Wall Type Patented
Supports 7' and 9' Vertical Wall Radiation
No. 2 Wall Type Patented
Supports 57' and 9' Hori zontal, and 5' Vertical Wall
Radiation.
Double Row Type Patented
Same measurements as No. 1 and 2
Measurements:
A---4"
B--3ff
( Tie Bolt \ \ Adjustment/
C--8M"
D--2"
/ Vertical \ \ Adjustment/
E--18M1
F-1M" (
Wall to Radiator
\ /
G--3J4" ( Wall to Center\ of Shoe /
H--4"
Measurements:
A--4"
R__ - ( Tie Bolt \ a " \ Adjustment/
C--5 X" n__ n,, ( Vertical \
\ Adjustment/
. E--13.fi"'
PF--1^3//f (V
Wall to Radiator
\ )
n oi/- / Wall to Center\ V of Shoe /
H--4"
Modern All-steel Adjustable Radiator Brackets are strong, simple and economical. Brackets need not be disturbed after anchoring to the wall. Tie Bolt Adjustment is made by moving Tie Bolt along slot in top angle. Vertical Adjustment is made by turning Bolt Head at bottom of shoe. We also make similar Brackets-'-which hold radiation--2]A inches from wall.
490
The Modern Mfg. Co.
Radiator Hangers
> 1
CO
&
1
|il HI
rip
/ Lateral \ B~m" ^Adjustment/
D-2" / Vertical \ \Adj ustmentJ
/ Wall to \ ^ Radiator J
sftB i m,
1 sIJHLL^/ i jP j!
H
Column Type
Patented
' '
Only one Anchor Bolt required for ordinary installations.
Lower Anchor Slot used on,ly fcor special installat,ions.
Made for all types of Column Radiation.
This type does not provide for Baseboard Adjustment.
Similar Bracket is made that holds radiation 2^ inches from wall and provides for Baseboard Adjustment.
Toggle Bolt
Style No. I
Made up'to
* 6'
Write for Catalogue showing our line of HEA TING A CCESSORIES
491
Radiator Hangers
Healy-Ruff Company
St. Paul, Minn.
AGENTS IN THE FOLLOWING CITIES
UNITED STATES
..
Atlanta, Ga., Charlotte. N. C,, Richmond, Va.. Pittsburgh, Pa.. Indianapolis, Ind.. San Francisco, Calif.. Seattle. Wash., Spokane, Wash., New York City, Denver. Colo Des Moines. Iowa., Detroit. Mich., Amsterdam, N. Y.. Chicaco. III., Cincinnati, Ohio Toledo. Ohio. St. Louis, Mo., Birmingham. Ala.. Kansas City, Mo., Omaha, Neb., Wichita, Kan., Dallas, Texas, Milwaukee. Wis.. Buffalo, N. Y.. Davenport, Iowa, Philadelphia. Pa.. Boston. Mass.. Cleveland. Ohio. Columbus, Ohio. Los Angeles, Calif.. Baltimore. Md.. Washington, D. C,, Memphis, Tenn., Chattanooga. Tenn..
Ironwood. Mich., Nashville, Tenn., Butte. Mont.
CANADA
.
.Toronto, Vancouver, Halifax, Montreal, Winnipeg, Ottawa. Calgary
Manufacturers of E-Z Radiator Hangers
Write 781 Hampden Avenue
E-Z -Radiator Hangers are designed to hang all Wall and Column Radiation of any make. They have both vertical and horizontal adjustments, and are de signed to anticipate the use of tempera ture control valves.
Only one bolt per hanger. No accu rate placing of anchor bolts required. Hanger absolutely invisible, including washer at top.
Style "R",shown below, places radiator 1in. from wall, but is not adjustable for baseboard. Convertible, with parts No. S and No. 8, into Style "H", which places radiator `lYi in. from wall and provides for baseboard adjustment.
TYPICAL SPECIFICATIONS
Where Baseboards Are Used .
All radiation, unless otherwise noted, shall be supported on. wall by means of E-Z Radiator Hangers, Style "H" as manufactured by the Healy-Ruff Co., St. Paul, Minn., or equal and approved in writing by the Architect arranged to support the radiator 2J in. from the wall and with baseboard adjustment.
Where Baseboard Adjustment is
Not Desired
.
All radiation, unless otherwise noted,,
shall be supported on wall by means of E-Z
Radiator Hangers, Style "R," as manu
factured by the Healy-Ruff Co., St. Paul,
Minn., or equal and approved in writing
by the Architect, arranged to support the
radiator 1 in. from the wall.
.
Style "R" Hanger, Without baseboard adjustment .
Style "H" Hanger, with baseboard adjustment. *
492
Specialties, Heating
Thames lJones
. 5 Melrose Street, Boston, Mass.
Modulating Vapor and Vacuum Steam Heating Apparatus--Modulation and Thermostatic Return Valves--Condensators, Blast Traps, and Vent Traps
Barnes & Jones modulation sys tems, - either^ gressure or vacuum, are applicaHefj to every heating problem fiurrethe smallest house to the largest,-.office building. They have many.i.special advantages in construction and design which have
been developed as a result of our 25 years of experience with steam heating problems.
Barnes & Jones Modulation Valve
Barnes & Jones modulation valve completely controls the heat of each radiator, allowing it to be heated wholly or partially, independently of every other radiator.
It can be opened in less than a full revolution of the handle, and can be forcibly closed to the seat so as to be tight under any operating condition. It does not require repacking. Has renewable disc seat.
' Size* and Model*--Made in the angle type, in
sizes from X to 1M in. Standard model has lever
handle. Other models include:
.
Wheel Handle--With indicating dial.
'Extension Stem--With indicating dial, for use with enclosed or concealed radiators.
Chain Operated Type--Modulation valves on radiators and coils located overhead on walls, ceilings, and in skylights can be equipped with chain
extensions to permit operation from floor.
Lock Shield Model--For corridors, toilets, etc.
Barnes & Jones Thermostatic Radiator Trap
The successful operation of open return line vapor systems and vacuum systems depends on the
efficiency of the radiator traps. These must be sensitive, so as to close in the presence of steam and open as soon as air or water of condensation begins to accumulate. Their action must be independent of pressure conditions.
Barnes & Jones radiator trap is of. the Ther mostatic diaphragm type, its moving power being obtained by the expansion and contraction of a volatile liquid enclosed in a hermetically sealed diaphragm. Its double diaphragm of tempered phosphor bronze allows wide range of travel with minimum strain. Each trap is factory adjusted and tested to rigid standards.
Type* and Size*--This valve is made in X". 1" and 1M" sizes. The W and X" sizes are made in four types--angle, straightway, right hand corner and left hand corner patterns. The 1" and l.K" are made in the angle pattern only. The H" size, unless otherwise specified, is made with X" outlets, thus avoiding the use of all >$" pipe and reducing fittings.
Construction Details
Both valves made of best grade cast composition throughout. Cover and trimmings are highly polished. Tail piece and union nut extra heavy to prevent breakage; tail piece made long for easy connection. Lugs located under threads.
r
H*3 .--y 1
I [ 3/2B 1 VALVC.
3/4
/' /%' /%'
Modulation Valve
Thermostatic Radiator Trap
Dimensions
A 3 cD 3k /%
3 /% 3% /% Jit /$ 3% /% 3% /% 4%T - /%
CAPACITIES
1Wco&iron Broet/otron
Size LbxtadZr
VAtVf
Cl.Ood
60 I * too I 3/4' too J
|r
30 00 200 400
125 320 800 1600
too
240 GOO 1200
DIMENSIONS
Size VAUIt
A
8
C
D
H' 3^ /% 3* * 2
P 3k
44'
i% 3k %
3k
/' it. % 2% sk
1 '%'\i* n 4k
493
Specialties, Heating
The Bishop & Babcock Sales Co.
General Offices: 4901--4915 Hamilton Avenue, N.E., CLEVELAND, OHIO
Amsterdam. N. Y______ F. E. Dwyer, 447 Guy Park Ave. Baltimore, Md.........Building Service Co., 404 St. Paul St.' Boston, Mass................... Tierney Wilson Co., Little Bldg.
Chicago, III., The Bishop & Babcock Sales Co.. 112 W. Austin Ave.
Cincinnati, Ohio, C. R, Lingo Eng. Sales Co., ' 320 Central Office Bldg.
Denver, Colo.............-...The Daly Co., 1425 Sixteenth St. Detroit. Mica., Wolley Eng. Sales Co., 506 Donovan Bldg.
Ltnchbijbg. Va---------------- Cleland Eng. Co., 208--5th St.
Minneapolis, Minn., Continental Sales Co.,
924 Metropolitan life Bldg. Nashville, Tenn____ Ryan Sales Co., 922 Stahlman Bldg. New York, N. Y., The Bishop & Babcock Sales Co.,
444 Lafayette St. Oklahoma Citt, Okla., Federal Steam Specialty Co.,
120-2 E. Main St. Philadelphia, Pa., Alexander & McDevitt, 1725 Sanaom SL Richmond, Va............--.Virginia Equipment & Supply Co. San Francisco, Caltp., Walter S. Leland. 532 Natoma St.
Spokane, Wash., R. L. Nelson, 507 Empire State Bldg.
Heating Specialties--Temperature Control--Ventilating Equipment
Bishop & Babcock
manufactures a complete
line of Heating and Ven
tilating Equipment. Its
products comprise all
Special Modulation Valve
devices and apparatus used in up-to-date vacuum and vapor Heat-
B. b3 B. Multiflex Trap No. 0
mg Systems, Temperature Control arid Ventilating Systems. It is
entirely practical for an engineer and architect to standardize with
Bishop. & Babcock apparatus--every device for the entire system can
be a B. & B. product.
Bishop Jk. Babcock has been manufacturing heating, ventilating
and temperature control apparatus for many years, its installations including many of the most prominent buildings in all parts of the country,
Seamless one-piece Multiflex Metal Bellows are a fundamental part of Bishop & Babcock Heating Specialties and Temperature Regulation. In the manufacture of these vital parts for the construction of Ther mostatic Traps, Valves, and other devices Bishop & Babcock exercise the same care and rigid adherence to high standards that characterize
all their products.
Our Engineering Data Book, pocket edition, will be mailed upon request. Separate catalogues are issued on- Bishop & Babcock Temperature Control Systems and Massachusetts Fans, Blowers and Air Washers --copies of which will be furnished upon re-
All Metal Thermostat
quest.
494
Single Width Squirrel Cage Fan
Specialties, Heating
Combustion Specialties Corporation
Walter S. Timmis, past president of the American Society of Heating and
Ventilating Engineers has written an extensive
report on COMBUSTO Draft System from which
the following paragraphs
are quoted. (Complete re port will gladly be for warded on request.)
Manufacturers of
250 West 54th Street, New York
For Heaitoc Plants
Saves coal and labor,
maintains even heat
with less draft.
'
For Power Plants
Higher evaporation per pound of coal eliminates smoke
Mr. Timmis states, "To secure the most eco nomical results in combustion for heating it is necessary to use the proper amount of air under the fuel bed for the distillation of the gases and the correct amount of air properly diffused, preferably heated and delivered over the fire bed in order to complete the combustion by burning the distilled gases--in brief--an efficient boiler is a gas producer having means for consuming gas produced.*'
WHAT COMBUSTO IS To quote Mr. Timmis further. "Combusto is
a system carefully studied, tested and developed for each individually different case and provides means for supplying the necessary diffused and heated air (oxygen) over the fire to properly com plete in the second stage the combustion begun in the fuel bed by distillation of gases."
UNIQUE AND FUNDAMENTAL REQUIREMENT FOUND IN COMBUSTO
"Perhaps the most important feature of Com* busto is the resistance to the flow of air through
the apparatus itself, which is made to equal, the resistance of the fuel bed. thus producing a balanced condition above and below and through the fuel bed--a fundamental requirement for correct and economical combustion which is ignored in regular furnace and boiler design.
WHAT COMBUSTO DOES (See illustration of COMBUSTO
equipped plant below.)
"Combusto is of cast iron cellular structure, the air is heated on passing through this structure and is then discharged through a large number of small apertures over the fire bed. The amount of air thus admitted having been carefully computed for the required conditions, the result is practically perfect combustion, which to the user of Combusto results in--
Economy of fuel Fewer filings
Complete combustion of fuel, hence-- A finer ash and reduction of clinker Elimination of coal gases Means for producing a steady even heat."
COAL WASTED (Left)
Without Combusto, a checked fire produces no dependable results. The gases that distill from fuel bed are a total loss. Heat can be produced only by speeding up stack draft. This is wasteful and re quires frequent attention.
COAL SAVED (Right)
With Combusto, all gases are burned completely with Bunsen blue flame with stack draft continu ously checked to minimum. Hence, amount of gas made can be regulated to amount of heat needed by simple adjustment of the ash pit damper.
SPECIFICATION: The following clause adopted since 1916 by one of the largest railways in the United States is suitable as a standard specifica tion in connection with low pressure hot water orheating boilers or warm air plants.' "Equip all boilers (warm air furnaces) with Combusto of size recommended by Combustion Specialties Cor poration's engineers."
STYLES: Combusto is manufactured in 28 basic
styles--each style is capable of adjustment tb'ifieefc specified conditions. Suitable styles are manu factured for practically any type of heating;.plant and for all sizes and grades of fuel. '. _ '? ' .
PRICES: Prices range from $25.00 on; small house-heating -plants to $200.00 on largest' low
pressure heating boilers. Definite estiraatesipanipt once be submitted if manufacturer's natite and number of boiler is sent to us. together with size of grate and number of fire doors.
495
Specialties, Healing
C. A. Dunham Co.
Administrative and General Offices: 450 East Ohio Street, Chicago Factories at Marshalltown, Iowa, and Toronto, Ont., Canada
BRANCH SALES OFFICES:
.
Birmingham, Bouton, Cheyenne, Chicago, Cincinnati, Cleveland, Dallas, Davenport, Denver, Des Moines, Detroit El Paso,
Indianapolis Kansas City, Loo Angeles. Louisville, Milwaukee, Minneapolis. New Orleans, New lark. Omaha, Philadelphia,
Pittsburgh, Portland (Ore.), Rochester, St. Louis, Salt Lake City, San Francisco, Seattle. Spokane. Troy, Washington.
C. A. DUNHAM CO., LTD., General Offices and Factory, Toronto, Ont.
BRANCH SALES OFFICES: Calgary. Montreal, Ottawa, Toronto, WBnipog, Vancouver, Halifax
FOREIGN SALES OFFICES: London, England: St. John'si^CTfBimdland Distributors: Munsing & Co., Paris, France, 47 Rue Foiitaine-au-roi
.
Manufacturers of Specialties for The Dunham Systems of Heating
^HEATING SERVICE
This Service is delivered through over 60 Branch and Local Sales Offices throughout the United States and Canada. These branch and local sales offices bring Dunham Heating Service as close to your office as your telephone. Consult your telephone directory for the address of our office in your city.
Products Specialties for use in connection with ' The Dunham System of Heating, known according to its several adaptable forms as The Dunham Home Heating System; The Dunham Return System and The Dunham Vacuum System--all two-pipe systems, and The* Dunham Air Line System for use in connection with one-pipe steam systems. These specialties are Radiator Traps; Float and Thermostatic Traps; Air Line Valve; Return Traps; Medium Pressure Traps; Packless Radiator Valves; Pressure Reducing Valves; Vacuum Pumps; Vacu um Pump Governors; Air Eliminators; Air Check; Oil Separators; Suction Strainers; Air Vents; Damper Control; Gauges.
Sectional View of No. I Trap
Dunham Radiator Trap The Dunham Radiator Trap first put into service' in 1903 completely revolu tionized Steam Heating. The Dunham Thermostatic Trap con sists of two major parts, a body, and a cover. I n the cover the operating member, the Dunham Thermostatic Disc, is securely placed. It has an exceptionally large valve opening. There are no detached
loose parts in the path of flow, no sliding
contacts to gum up, and no guide or pin
to obstruct the valve opening or cause the
valve to wear unevenly. The position
and design of the valve is such that it is
self-cleaning, and the closing of the trap
will be tight even where the water is high
in incrustants which deposit oh the interior
of the piping. The action of the disc is
positive and the floating valve seats
squarely, like a globe valve. The body is .
standardized, also the cover and disc,
giving the further advantage of inter
changeable parts.
The traps conform with the standard
dimension of 3K in. from center of trap to
end of'union nipple, as adopted by The
Heating and Piping Contractors' National
Association for one-half in. radiator traps.
The working part of the Trap, the Ther
mostatic Disc, is fully exposed to the-
actual conditions within the. radiator and
it, therefore, responds instantly to any
change taking place therein, preventing
waste of unused steam, backing up of
water and air binding.
.
It is made in five sizes and for varying
pressures not to exceed 10 lb. gage.
These traps are used principally in steam
heating work where they are attached to
all forms and types of radiation, and to
steam piping and risers for dripping pur
poses. The Nos. 1 and 2 Traps are used
almost exclusively on radiators. The No.
3 Trap is used for large radiators, for
. medium size pipecoils, and is particularly
adaptable for dripping risers and short
runs of steam piping. The Nos. 4 and 5
Traps are used where traps of large capac
ity are required on large pipe coils, for drip
ping main steam risers, and steam mains.
496
C. A. Dunham Co.
Specialties, Heating
DUNHAM RETURN TRAP
Used to separate the air and water discharged into the dry return piping by the Radiator Traps, to release the air, and to automatically return the water to the bbiler.. For use on installations where the boiler steam pressure does not exceed 10 Ib.gage.
` L. This em
DUNHAM MEDIUM PRESSURE TRAP
bodies the
principle so
successfully
used in the
Dunham Ra
diator Trap,
and is just as
simple and
satisfactory.^ Designed for steam pressures higher than those used in heating systems.
It handles air and condensate. Adapted for process work, hospital sterilizers and
distilling apparatus, steam tables and kitchen equipment where a steam pressure of from 0 to 60 lb. is used.
Dunham Packless Radiator Valve
This valve is really "packless." Neither packing of any kind nor any
springs are used in its construction. It is built in two specific styles.
The lever handle valve is furnished in angle
pattern only and recommended for hot water type
radiators with top inlet connection in keeping with
the most approved modern
steam heating practice. The
low bonnet is one of the at
tractive features of the valve.
The wheel handle valve can
be used on any steam system
and is furnished as follows:
Type 140-Wheel Handle angle pattern, straightway pattern, right Type 100-Lever Handle
hand pattern and left hand pattern.
Only the best of materials are used. Both types are neat in appearance, and are
quick opening and closing valves.
`
. The valve is made packless by means of the bellows construction, consisting of a series
of corrugated phosphor bronze diaphragms which permit the free up and down move
ment of the spindle and valve disc. This construction obviates the use of springs, packing
or stuffing boxes of any kind and entirely prevents the leakage of steam, air or water.
Made in following sizes: Lever
1,
Type 100 made only in angle pattern.
in. Wheel
I, 1X, iyi, 2 in.
Type 140 made in angle, straightway and corner patterns and can be supplied
with wheel or lever handle.
--
The valves can be supplied with lock and shield, and special extension stems for use on radiators behind grilles, seats, etc., or on ceiling of the room.
. 497
C. A. Dunham Co.
Specialties, Heating
1
Trap No. 1
2
Trap No.
No. 1. All Patterns
Tapping
Capacity 100 sq. ft. Rad.
No. 2. A11 Patterns , Tapping W', Capacity 350 sq. ft. Rad.
No. 3. All Patterns Tapping ; Capacity 800 sq. ft. Rad.
No. 4. Angle and Straightway
Tapping
Capacity 1500 sq: ft. Rad.
No. 5. Angle and Straightway Tapping 1"; Capacity 3000 sq. ft. Rad.
4
Trap No. 4
3
Trap No. 3
DUNHAM FLOAT AND THERMO STATIC TRAP
5
Trap No. 6
These traps handle large
volumes of water and sudden
calls for maximum duty. .
They open automatically for
water and air and close for
steam. They are suitable on
either gravity or vacuum
heating systems. The water .
is handled by the float
operated valve which is so
constructed that the opening
is always sealed with water
with no opportunity for steam
leakage. The air is handled by the thermostatic valve. They combine the Dunham Thermostatic Principle
with the float. They automatically open for air and water and close for steam. This trap adjusts itself
Jyprn
slowly like a thermometer to the temperature con ditions present and permits a continuous flow, at a
*
Aiv/ars USE Supplv And RctuRnOn pppos.rc Cnos Of Stack
rate within its capacity limits, to keep the heaters free . from air and water, without waste of steam. .
They may be applied to any type or make of cast
iron or pipe coil blast heater. They are unsurpassed
for dripping low-pressure steam mains and risers,
vento heaters, unit heaters, blast coils, domestic hot .
water heaters, dry kilns, milk condensers, evaporators,
paper machines and any industrial heater in which
low-pressure steam (not exceeding 10 lbs. gauge) is '
Vento HfATCP
used as a heating medium.
.
This type of trap not only drains the heater of its
water of condensation' but automatically releases the
air, thus obtaining as nearly 100 per cent heating
efficiency as may be obtainable, which results in the
{Xnham NQ l Ta*s> Omu The sc AndVcnT I'nc On Stacks Hav
operation of the equipment at its maximum potential
output. In many industrial processes, it is desirable to
Lt 55.ing 'G Sections Or
^
operate on a vacuum, a condition that is fully met in this type of trap.
/OCM-HM FlOATAl
Thermostatic TSap
Size
Pipe Connection.
Capacity.
In. Direct Radiation, Sq. Ft.
UtTuRN-- Typical connections using Thermostatic and
Float Trap on a Vento Heater '
No. 22 No. 23 No. 16 No. 17 No. 18 No. 19 No. 20
3/4
1
3/4
.1
l Vi l'/2 2
3,000 4,000 6,000 7,000 9,000 11,000 16,000
498
C. A. Dunham Co.
Specialties, Heating
Dunham Pressure Reducing Valve Made only in standard weight fora pres sure range of 125 lb. down on high side, to 10 lb. and atmosphere on low side, in straight and expanded outlet patterns.
Dunham Vacuum Pump Governor Used on steam driven vacuum pumps to control vacuum in vacuum return lines. Made in all sizes from ^ to 2 in., inclusive.
Dunham Damper Control The Dunham Diaphragm Damper Regulator controls the steam pressure in ounces. It operates check and draft damper with chains.
Dunham Air Eliminator Used in connection with the Dunham Home Heating System for venting the air from the system. Two types. Capacities respectively 2000 and 6000 sq. ft. radiation.
Dunham Oil Separator Made in all sizes from 1J^ to 6 in. Flanged connections.
Dunham Strainer Has a large brass screen basket for catching and holding the dirt; easily ac cessible for cleaning and at once commends itself for this purpose. Made in all sizes from % to 6 in.
Dunham Air Line Valve The principle of operation is identical, and design similar, to the Dunham. .Radi ator Trap. Its efficiency is high, and^ser vice in connection with air line systems invaluable. Can be furnished with either
or J4-in. radiator connection. Air piping is required in connection with its use. It must not be subjected to steam pressures exceeding 10 lb. gage.
Dunham Air Line System This is a one-pipe steam system using a Dunham Air Line Valve on each radi ator, with a system of air line piping which may discharge the air by gravity, or be attached to an air. line Vacuum Pump. This system is particularly adapt
able in making old one-pipe heating sys tems more efficient. It is easily and eco nomically installed, and insures the quick removal of air from the radiators.
The Dunham Home Heating System
This is specially for the home or small building. It uses steam at very low pres sure. Steam is admitted into the radiator by the Dunham Packless .Radiator Valve, where it is retained by the Dunham Radi ator Trap until it has given off its heat, when, as water, it passes through the trap together with the air, and back to the boiler through the return piping. The air is released by the Dunham Air Eliminator, and the water returns naturally to the boiler. The design is such that a partial vacuum can be obtained on receding fire, with water continuing boiling. Hot water pattern radiators with top inlet connec tions are required. The end of each steam main is vented through a Dunham Trap into the return piping, and is dripped through wet or dry drip pipe directly back to the boiler return header.
The Dunham Return System
This System differs from the Home Heating System in that it makes use of the Dunham Return Trap in place of the Dunham Air Eliminator, which introduces the added feature of a positive automatic return of water to the boiler when it is desired to raise the steam pressure.
The feature of a positive return under varying steam pressures makes this Dun ham^ System particularly, adaptable to apartment houses, small hotels and me dium size commercial buildings, schoolsand churches. This System makes possible the modernizing of old one-pipe and two-pipe gravity systems, and eliminates the sput tering, leaking air valves which are such trouble makers in these old heating jobs.
The Dunham Vacuum System
Simplicity is the key note of Dunham design. There is the system of steam mains and piping to supply all radiation, and the return piping to carry away the air and water of condensation by means of a vacuum pump. Steam may be sup plied direct from boiler, or through a Dun ham Reducing; Valve, where boiler pres sure is too high for direct service. Or ex haust steam may be used, supplemented by live steam through a Reducing Valve.
Bulletins
Bulletins of standard architectural size
with- detailed information covering each
System; and ^1| products, including rough-
ing:iri: dimensions, will be furnished on
request.
r,;
Specialties, Heating
The Fulton Company
NEW YORK Hudson Terminal Bldg.
Knoxville, Tennessee
50 Church Street
SALES OFFICES:
CHICAGO
Wrigley Bldg. Michigan Boulevard
PHILADELPHIA
Drexel Bldg. 4th and Chestnut Streets
DETROIT Book Bldg., Washington Boulevard
Representatives in All Principal Cities
BOSTON
Federal Bldg. 136 Federal Street
Patentees and manufacturers of Sylphon products. Sylphon Automatic Air and Vent Valves; Packless and Leakless Valves, Thermostats for regulating tem peratures of homes by warm air furnaces, steam, vapor or hot water boilers; Temperature and Pressure Regulators, Temperature Regulating Radiator
Covers; and other Heating Specialties.
Advantages
No. 527 Quick Vent Valve
All Sylphon devices em body the seamless, one-piece bellows of drawn metal shown at right. There is not a bit of solder throughout its length --no chance for leaks or breaks. It is a feature found exclusively in Sylphon Prod ucts. Sylphon diaphragms or bellows are made in sizes rang
For venting mains, long runs of pipe, indirect stacks, drop risers,
and all low-pressure steam jobs where a large amount of air must
be expelled quickly. Vents entire piping system and
thereby heating radiators quicker under less pressure. No adjust ment. Does not close against water. Venting port fy in.
diameter. Valve connection in. pipe thread. Ask for Bulletin RAV-3. x
ing from 1 }ri to 12 in. O. D.
No. 304 Standard Pressure Packless Valve A special alloy Sylphon bellows surrounds
the stem and turning parts,
SPECIFICATION--The ends of long runs of pipe, risers or loops shall be vented with a No. 527 Sylphon Quick Vent Valve, as
manufactured by The Fulton Company. Knoxville. Tenn.
, _. Lu/ Open View
forming an ever-tight bar
rier to leakage of steam
around the stem, no packing,
hence no need of repacking.
This valve is largely used
for hazardous liquids and is
approved by the Under writers' Laboratory (No.
M. H. 988.) Made in valve sizes % in. to 2 in. inclusive. For pressures up to 150 lbs. Cut Open View
SPECIFICATION--Install where shown on plans, a Sylphon Standard Pressure Packless Valve, as manufactured by The Fulton Company. Knox ville, Tenn., known as No. 304. Si2e (state size).
No. 410 Sylphon Air Line Valve
An automatic, non-adjustable air line valve that will silently expel air and condensation, but close against steam. Has as its basic principle the Sylphon thermostat, which will quickly and effectively distinguish between steam and air, freely allowing the air and con densation to pass, but pre venting the passage of steam. This means that every inch of radiating surface becomes 100 per cent efficient. Ask for Bulletin RAV-3.
SPECIFICATION--All
No. 510 Sylphon Vent Valves for Primary Heating Coils
For venting air from large heating coils
radiators to be equipped with Cut Open View Sylphon Air Line Valves known as (either No. 410 or No. 410-A). as manu
factured by The Fulton Company, Knoxvil.e, Tenn.
used in stacks and in indirect heating
with fan blowers, where
No. 22 Steam Damper Regulator
low-pressure steam is
used. Venting port -fo
in. dia. Has a powerful
Sylphon bellows as ther
mostat which closes
valve immediately steam
reaches it. Does not close against water. Can
be installed in any posi
tion. Made entirely of cast brass; rug
gedly constructed. AskforBuIletinRAV-3. SPECIFICATION--Heating Coils, where shown
on plans, shall be vented with No. 510 Sylphon Vent Valves as manufactured by The Fulton Company. Knoxville. Tenn., and installed in accordance with instructions furnished by the manufacturer.
Used to control the dampers on steam heating boilers. A simple, accurate regulator which will control the draught so as to maintain a con stant steam pres sure up to 5 lb. This regulator is sensitive, positive in action and will last a life time, due to the Sylphon one-piece, seam less, solderless, flexible metal bellows which it contains as diaphragm. Ask for Bulletin RD-3.
. SPECIFICATION--The boiler shall be equipped with a No. 22 Sylphon Steam Damper Regulator, as manufactured by The Fulton Company. Knoxviller Tenn., and installed in accordance with instructions of the manufacturer.
500
The Fulton Company
Specialties, Healing.
No. 22 Junior Steam Damper Regulator
This Regulator is identical in construction with No. 22
except that it contains a smaller Sylphon bellows as its
diaphragm and is
therefore suitable for
small steam boilers
or those having light
dampers which do
not require much
power for their op
eration. Will main
tain a constant steam
pressure up to 8 Ibe.
gauge.
Ask for Bulletin RD-3
SPECIFICATION--The boiler shall be equipped with
a No. 22 Junior Sylphon Steam Damper Regulator, as manufactured by The Fulton Company, Knoxville. Tenn., and installed in accordance witn instructions of the
manufacturer.
No. 924 Steam Damper Regulator
For tow pressure steam boilers where extra sensitiveness and greater power are required to op erate the damper. Is identical .in con struction with No. 22 except that it containsa larger Sylphon bellows as its dia phragm, and dis tance between rocker pivot and plunger pivot is greater. Will operate with pressures up to 3 lbs. gauge.
Ask for Bulletin RD-3
SPECIFICATION--Boiler shall be equipped with a No. 924 Sylphon Steam Damper Regulator as manufac tured by The Fulton Company, Knoxville, Tenn., and installed in accordance with instructions of the manufacturer.
No. 925 Vapor Damper Regulator
Specially designed to control dampers on boilers used with vapor heating systems. Extremely powerful and sensitive. Has extra large flexible Sylphon bellows as dia phragm. One ounce change in vapor pressure produces a 6K lbs. force to open or close damp ers. Operates from 2 osa. to 1 lb. gauge, perfectly smoothly and will not "flutter" under any condition.
Ask for Bulletin RD-3
SPECIFICATION--The boiler shall be equipped with a No. 925 Sylphon Vapor Damper Regulator, as manu factured by The Fulton Company, Knoxville, Tenn., and installed in accordance with instructions of the manufacturer.
No. 45-A Hot-Water Damper Regulator
Used to control the dampers on hot water heating boilers.
Simple, accurate regulators
which will control the draft so
as to maintain a constant tem
perature of the water at any
point between 120 deg. and 220
deg. fahr. They prevent the
temperature of the water from
rising higher than necessary,
insuring faucet water of even
temperature every hour of the
day. Installed on domestic hot-
water heaters they prevent the
generating of steam - in the
system, thus eliminating, the
disagreeable sputtering and blowing-off when the faucet
is open.
Ask for Bulletin RD-3.
No. 45 Hot-Water Damper Regulator
Same as No.
45-A exceptbulb is 4 in. instead
of 2 in. long-and
rocker does not
have adjustment. The longer
bulb permits the use of this
regulator in a pipe fitting.
. Ask for Bulletin RD-3
No. 46 Hot-Water Damper Regulator
This regulator with bulb 1 in. long, is designed especially for small hotwater-heating boilers, or those having light dampers, also, domestic hotwater supply heaters. Construction same as No. 45 except that it contains a smaller Sylphon bellowB as its diaphragm, as it requires less power to operate the light dampers of such heaters. Also suitable for laundry heaters, garbage burners, garage heaters, etc. Ask for Bulletin RD-3.
SPECIFICATION--(Boiler, heater, or tank heater) shall be equipped with a No. (45, 45-A, 45-B or 46) Sylphon Hot-Water Damper Regulator, as manufactured bv The Fulton Company, Knoxville. Tenn., the regulator to have a temperature range of (specify temperature range. No. 45 and 45-A have temperature range of 120 deg. to 220 deg. fahr.: No. 45-B has temperature range of 100 deg. to 200 deg. fahr. No. 46 has temperature range of 130 deg. to 200 deg. fahr.) and to be installed in accordance with instructions furnished by the manufacturer.
Nos. 42, 43, 44, Hot Water Damper Regulators
These regulators are used where conditions require side instead of direct connections. The hot water circulates around an inner bulb containing a volatile liquid, which in turn causes the Sylphon bellows to expand or contract as the temper ature of the water rises or falls, thus closing or opening the draft dampers. Ask for bulletin RD-3.
SPECIFICATION--(Boiler heater or tank heater) shall beequipped with a No. (42, 43, or 44) Sylphon Hot Water Damper Regu lator, as manufactured by The Fulton Company, Knoxville, Tennessee, the regulator to have a temperature range of (specify--No. 42 controls from 120 to 180 F.; No. 43 from 160 to 220 F.; No. 44 from 190 to 240*F.) and to be installed in accordance with instructions furnished by manufacturer.
501
w
The Fulton Company
Specialties, Heating
No. 930 and No. 931 Temperature' Regulators for Control of Liquids
Used to automatically con
trol temperatures of liquids
heated by steam, and es
pecially for hot-water supply
tanks in apartments, hotels,
clubs, etc., and regularly fur
nished with a temperature
range of 140* to 180 F.
Special regulators can be fur
nished with adjustment for
20 above or below the oper
ating point for temperatures
not lower than 10 nor higher
than 315 F.
No. 930 has lever and weight
method of adjustment; No.
931 has spring type. The
extreme' sensitiveness, posi
tive action and simplicity of
these regulators place them in
~
a class by themselves and make them
applicable in many ways. No. 931 is
made in valve sixes Hi in. to 2M in-
inclusive, and No. 930 in sixes in. to
8 in. inclusive.
Temperature Ranges Nos. 930, 931, 934, 935, 980, 981
No. Range
21.. 10 to 50 F, 22.. 20 to 60 F. 23.. 40 to 80" F. 24.. 60 to 100 F, 25.. 100 to 140 F. 26.. 140 to 180 F. 27 .. 160 to 200 F.
No. Range
28.. 180 to 220 F. 29.. 190 to 230 F. 30.. 210 to 250 F. 31. .220 to 260 F. 32.. 230 to 270 F. 33 .245 to 285 F. 34 . .275 to 315 F.
For service water heating.
No. 831
Nos. 932 and 942 are 10 degrees higher.
On special order at 82.50 net additional cost, regulators
Nos. 930, 931, 932, 935, 942, 980 and 981 will be furnished
with reversed valve interior for controlling cooling mediums.
No. 980 and No. 981 Temperature Regulators for Control of Air
Used to automatically control tem
perature of air in dry rooms, etc., and regularly furnished with tem
perature range of 140 to 180 F. Other ranges upon application. The thermostatic bulb, of our special "star-shaped design, gives greatest
area of exposed surface to mass of any design known.
It may be placed at any point in room, and is con nected with operating valve by a flexible tube of re quired length.
Furnished in either lever and weight type (No. 980) or spring adjusting type (No. 981). No. 980 is made
in valve sizes H in. to 5 in. inclusive and No. 981 in sizes H in.
to 2H in. inclusive. Valve s--Double-seated, balanced
type, bronze disc and seats. Bronze - bodies fitted into bronze unions, in
sizes H in. to in. inclusive. Sizes 2 in. and above have iron bodies, bodies flanged and drilled standard. Com panion flanges furnished at extra cost. Flexible metal tubing 8 ft. long.
Supplied longer on order. Upon application a chart will be
furnished showing how to determine size of regulator needed for any given condition. Ask for chart and Bul
letin RTR-110.
SPECIFICATIO N--Install
where shown on plans, a Sylphon Temperature Regulator (Nos. 930,931,
No. 981
980 or 981) as manufactured by The
Fulton Company, Knoxville, Term.; regulator to have a
temperature range of (specify) degrees F. and valve of
(specify) inches in size, ground for steam pressure of (specify)
lbs. with tubing (specify) ft. long.
Principal Dimensions, Prices, Etc., of No. 930, No. 931, No. 980 and No. 98i Sylphon Temperature Regulator
Valve Sizes, Inches 1 Vi
y.
1'/, l'/2 2 2%
m
St prices 930
$60 $65 $70 $75 $80 $ 90 1$ 95 $100 $110 $120 $175 $225 $275
st prices 931 st prices 980
$60 $70
$65 $75
*70 $80
*75 $85
$80 $90
$ 90 $100
$$19150
$125' $140
$150
$225'
st prices 981 ilb thread IPS930 ilb thread IPS 931
$70 $75 $80 *05 $90 $100 $110
I"
1"
1" I"
1" I"
I" .1" 1" 1"
IV." w i%" i%" W IV." w
W
21/2"
w
db length 930
16" 16" 16" 16" 16" 16" 16" 24"' 24" 24"' 24"' 24"' 24"
ilb length 931 and 961 16" 16" 16" 16" 16" 16" 16"
ilb length 980 sver bar length 930
16" 16"
24" ` 24"
16" 24"
16" 24"
16" 16" 24" 24"
16" 24"
16"' 16"' 16"'
16"
36" 36" 36" . 36"
36"' 36" *
sver bar length 960 eight A+L 930 ' eight A+O 930
eight A+L 931 and 981 eight A+O 931 and 981
41"'
M'/i"
18%"
41" 15'/,"
IW
41" I6%"
IW
41" I7W
20%"
41" I7W
20%"
41"
41" 26%" 22%"
43" 23'//
43"
24Hn
43" 25HB
43"
27ii"
29Hn
3W
eight A+L 980
eight A+O 980 ice to face 930 ice to face 931 and 981
ice to face 980
idth incL ) Q 980 verbar f R 980
IW IW IW IW 17V
(E)5W<E)5'/" (E)6'/2n <E)7y," <EjW (N)7" <E)5y," (E)6V," (E)7V,"(E)W (N)7n (E)5W (E)6'/i" <E)7y," (e) 8y," (N)7n
26" 26" 26" 26" 26" 26" 14!/," I4%" I4W 14V," 14%" 14V,"
20%" 23'// 24U" J 25H" 27tf"
(N)7%" (N)8%" (N^TO^O'//KN) 12'// (N) 141// (N)18>//
(N)7V/
(N^y/C!,N)8%'
27%"
.. 27%'
"
(N) I01//
271//
(N"27.)1/142"'//
14%" 15V/ I 15V/ 15V/ 15V/
502
The Fulton Company
Specialties, Healing
No. 932 Sylphon Temperature Regulator
Detachable Tube Type: This is the latest development in self-contained regulators, and on account of its flexibility
of installation is very popular with the heating trade. This regulator is composed of three distinct and separable units:
Assembled
Unassembled
Valves--Double seated balanced type, with bronze discs and seats. Bronze bodies fitted with bronze unions in
sizes H to 1H in., inclusive. Sizes 2 in. and above have iron bodies, bodies flanged. Fitted with companion flanges on order at additional cost. Ask for Bulletin RTR-110.
SPECIFICATION--Install in duct where shown on plans No. 942 Separable Transmission type Sylphon Tem
perature Regulator as manufactured by. The Fulton Com pany, Knoxville, Tenn, Regulator to have a temperature range of (specify) degrees fahr. with valve of (specify) inches
in size ground tor steam pressure of -- lbs., a transmission tubing of (specify) ft. long and extension stem of (specify) inches long.
No. 934 Sylphon Temperature Regulator
valve, bulb, tubing. Each unit may be separately installed, removed or replaced as the case may be. If the flexible tubing should become damaged or broken, the power trans mitting unit may readily be replaced by loosening two lock nuts, and the repair part slipped into place. Movement is
transmitted by liquid pressure acting between two small Sylphon bellows and is frictionless. Liquid is non-freezing.
These features are patented and possessed by no other
regulator. One transmission unit fits all regulators having
valve sizes H in. to in. inclusive; another unit for valves 1H in. to 4 in. inclusive. Ask for Bulletin RTR-110.
SPECIFICATION--Install where shown on plans No. 932 Sylphon Temperature Regulator as manufactured by The Fulton Company, Knoxville, Tenn.; regulator to
have a temperature range of (specify) degrees F., and valve of (specify) inches in size, ground for steam pressure of (specify) lbs. with tubing (specify) ft. long.
No. 942 Sylphon Temperature Regulator Separable Transmission Type: For control of air tempera
tures in ducts of fan and blower heating systems where valve must be at some distance from therm06tatic head. Easily installed, as valve, transmission unit and thermostatic head
are separable parts.
- ... Assembled
Standard length of
stem is 12 in., made
longer on order at ad- ^
ditional cost. -- i
Regulator | H |
may be in
stalled in any
position --
either from
top, bottom
orside ofduct.
Thermostatic
head remov-
I able from
stem, so that
hole cut thru auct wall need
Unassembled
be only large enough to pass a ZA inch pipe. Standard. length flexible tubing is 8 ft., longer on order at additional cost. Made in valve sizes 33 to 4 in., inclusive.
For control of liquids. Made in valve
sizes of % and in. only, and for steam pressures under 100 lb. For controlling temperature of steam tables, pasteurizing and sterilizing apparatus, size box on slashers, tempering tanks, percolators,
glue kettles, and small tanks of all kinds where a minimum amount of steam, ac curacy of control, and compactness of
instrument are required. Valves are all bronze, single seated, needle type with screw ends right-handed threads. Ask for Bulletin RTR-104.
SPECIFICATION--Install where shown on plans for control of (specify) No. 934 Sylphon Temperature Regulator, as manufactured by The Fulton Company,
Knoxville, Tenn. Regulator to have a temperature range of (specify) degrees fahr., with valve of (specify) inches in size, ground for steam pressure of (specify) lbe. and tubing (specify) ft. long.
No. 934
No. 93S Sylphon Temperature Regulator
For control of liquids or air. Made in valve sizes A to 133 in*, inclusive. (Sizes % and 33 in- are for steam pressures under 100 lb. only.) For controlling temperatures of open
liquor vats, tanks, dryers, dry rooms, warming ovens, proofing rooms, etc. May be install3 in any position. Extension stem is regularly furnished 12 in. long, but can be made any length on special order. Valves are double seated balanced type with bronze discs and
seats and fitted with unions, except 3 and 33. in. sizes, which are all-bronze single seated, needle type, with screw ends right-hana threads. Ask for Bulletin RTR-104.
No. 935-Z for Control of Cold Storage Rooms and Boxes or Drinking Water
No. 935
When used for control of calcium chloride brine, valves are
33 to 133 in., inch, balanced piston type made entirely of
bronze and fitted with
________ __ 68WTtfT,
bronze unions.
Temperature ranges: 10 to
50; 20 to 60; 40 to 80 F. Ask
for Bulletin TR-106.
No. 943 as installed in Duet and on Rehealing and Tempering Coils
SPECIFICATION
--Install where shown
on plans for control of
(specify) No. 935 (or
935-Z) Sylphon Tem
perature Regulator as
manufactured by The
Fulton Company,
Knoxville, Tenn.
Regulator to have a
temperature range of
(specify) degrees fahr.
with valve of (specify)
inches in size, ground
for steam (or brine)
pressure of (specify) - _
.
lbs. and extension stem No. 935-Z--Sylphon Regulator' on
of (specify) inches long.
open type water cooler
503
The Fullon Company
Specialties, Heating
No. 11 Sylphon Liquid Transmission Regitherm
The latest development in automatic control of air tem peratures for industrial uses. A'simple, self-contained, sturdy instrument without complicated mechanism to con tinually get out of order. Valve is mounted in steam line, Regitherm placed on wall or column 5 ft. above floor, power transmission unit is joined by means of T-elot connections.
Transmission Unit
. ... No. It Regitherm Assembled
The power trans mission unit consists of two Sylphon bellows
joined together by flex ible tubing of the desired length, completely
filled with a non-freezing liquid. Tubing regularly furnished
25 ft in length, but can be made any length required. Made in valve sizes M to 2)4 in., incl. Regularly furnished to operate from 60 to 80 F. Other ranges on application.
Valves--Double seated balanced type, bronze discs and seats. Bronze bodies fitted with bronze unions in sizes Yi
to 1H in., inclusive. Sizes 2 and 2Yi in. have iron bodies; bodies flanged, and drilled standard. Companion flanges
furnished at extra cost Ask for Bulletin RTR-5. No. 11-Z for Control of Cold Storage Rooms
For control of calcium chloride brine furnished with fol lowing temperature ranges: 20 to 40; 35 to 55; 40 to 60;
45 to 65; 55 to 75 F. Ask for Bulletin RTR-106.
SPECIFICATION--Install where shown on plans
for control of (specify) No. 11 (or No. Il-Z) Sylphon Iaauid Transmission Regitherm as manufactured by The Fulton Company, Knoxville, Tenn. Regitherm to have a tempera- '
tore range of (specify) degrees fahr., a valve of (specify) inches in size, ground for steam (or brine) pressure of (specify) lbs. and transmission tubing of (specify) ft. Jong.
No. 955 Sylphon Interlocking Valve A safety appliance designed to protect oil fired boilers or
furnaces by automatically shutting off oil supply when atom izing pressure fails, or is reduced below required minimum.
Valve is installed in fuel line and pressure of atomizing supply is ad mitted to Sylphon' bellows chamber through a jq in. pipe connection at top, so that under normal condition atomising pressure is on the bellows. Pressure acting upon bellows or diaphragm holds valve open. Should pressure drop to Dredetermined mini
mum, the latch holding valve open will be immediately released, allowing weighted lever to close valve, thus
shutting off fuel supply to burners.
Regardless of return of atomising pressure the valve will remain closed until opened by hand. Made in
valve sizes from.)4 to 2Yz in., incL
Required by Laws and Ap proved by Insurance Companies--Some states required safety shut-off valves by law, and they are recom mended by all insurance companies. The Sylphon interlock ing valve has been submitted to test by the inspection Department of the Associated Factory Mutual Fire Insurance Companies, and has been approved.
Adjustment for Different Pressures--Adjust ment is obtained by rotating spanner nut upward to increase and downward to lessen atomising pressure.
Valves--Globe pattern, single seated, with bronze bodies and discs, screwed ends, with Briggs standard righthand pipe tapping in both ends. Valves from H to 1)4 in., inclusive, are suitable for 125-Ib. oil pressure. Valves 2 and 2)4 in. arefor 100-lb. oil pressure. Ask for Bulletin RTR-100.
Type
PRESSURE DATA
Range of Adjust Maximum Allow ment of Tripping able Atomizing
Pressure Pressure, Lb.
No. 955-A No. 955-B No. 955-C No. 955-D No. 955-E
3 oz. to 5 lb.
V/i lb. to 15 lb. 5 lb. to 25 lb. 10 lb. to 40 lb.
30 lb. to 100 lb.
25 50
50 50 125
SPECIFICATION--Install where shown on plans for control of fuel oil supply to (specify) No. 955 Sylphon Interlocking Valve Type (A, B, C, D, E). as manufactured by The Fulton Company, Knoxville, Tenn. Size of valve to be (specify) inches, ground for fuel oil pressure of (specify) lbs. at point where valve is to be installed. Connect atomizing (steam or air) to K in. connection at top of instru ment; atomizing pressure (steam or air) to be (specify) lbs.
No. 952Sylphon Pressure Regulators
For controlling the pressure of steam, air and other gases. Useful as a reducing valve or to insure delivery of uniform pressure on a line supplied from a source of variable pressure.
This regulator is extremely sensitive and will reduce pressure to as low as 2-lb. Control pressure may be taken from any desired point. Made in valve sizes K to 4 in.
Valves--Style H valve is double seated balanced type for pressures up to 100 lb.; H to 1)4 in., inclusive, bronze with screw ends; 2 in. and above have iron bodies.
Style D valve is double seated balanced type for pressures up to 150-lb.; )4 to 1)4 in., No. 952 inclusive, bronze with bronze unions; 2 in. and above have iron bodies.
Style S valve is single seated needle type for pressures up to 100 lb.; bronze with screw ends. Ask for Catalogue RTR-200.
RANGE OF OPERATION OF NO. 952
Initial i N ot less than | for all sizes
Style
and No. of
Regu lator
Maximum Pressure
Lbs.
"O It *j CC-v
Minimum Reduced Pressure in Fractions of Initial Pressure. Lb.
Valve Size. In.
V. Vi IV. 2 and V.
3
% 1 tyl 2Vi
4
952 AH 100 25 2
1/50 1/40 1/17 1/15 1/10
952 AD 150 25 2
1/50 1/40 1/17 1/15 1/10
952 AS 100 25 2 1/50
952 BH 100 40 3
i/k> 1/40 1/17 1/15 1/10
952 BD 150 40 3
1/50 1/40 1/17 1/15 1/10
952 BS 100 40 3 i/50
952 CH too 100 10
i/io 1/0
952 CD 150 100 10
1/10 I/O
952 CS 100 100 10 1/10
SPECIFICATION--Install where shown on plans No. 952 (AH, AD. AS, BH, BD, BS, CH, CD, CS) Sylphon Pressure Regulator as manufactured by The Fulton Com pany, Knoxville, Tenn. Valve to be (specify) inches in size for maximum initial (steam or air) pressure of ^specify) lbs. and reduced (steam or air) pressure of (specify) lbs.
*The Ja-Nar Radiator Cover Made of fine furniture steel, lined with heat insulating
material. Completely covers either high or low hot water and steam radiators. Can be installed in old homes as easily as in new. Furnished in light or dark oak, mahogany, walnut ami various tinted enamels, or to match wood work.
Furnished in three types: 1st, Automatic Temperature Control; 2nd. Manually Operated Temperature Control; 3rd, Uncontrolled Type.
The controlled type is equipped with a thermostatic device which automatically opens or closes the shutters to regulate the heat sent out into the room. Can be set to operate at temperature desired. Ask for Pamphlet on the Ja-Nar.
SPECIFICATION--Install where shown on plans, a Ja-Nar Radiator Cover as manufactured by The Fulton Company, Knoxville, Tenn. The contractor will furnish to The Fulton Company information as to size of radiator and other measurements necessary to build the Ja-Nars. (Specify finish for each room. State whether to be of auto matic control type, hand control type or uncontrolled type.)
504
Specialties, Heating
G. M. Davis Regulator Company
407 MILWAUKEE AVENUE
CHICAGO, ILL.
New York Office, 71 Fulton Street
Manufacturers of Automatic Valve Specialties
Fig. SSI--Back Pressure Valve Horizontal end Vertical
Fig. 805--Pressure Regulator Piston Type
EVERY problem in automatic pressure regulation finds a solu
tion in Davis Valve Specialties.
Engineers. and con tractors specify and use them because of their well earned reputation for unusually good and long reliable service.
On the next job that you expect to get par ticularly good results from the pressure regu lating devices, let the Davis have a chance to prove their worth.
Fig. 888--Slop and Check Valve Globe and A ngle *
Fig. 811 --Pressure RegulatorDiaphragm Type
505
Fig. 898--Steam Trap. Continuous Flow
Specialties, Heating
Hoffman Specialty Co., Inc.
Waterbury, Conn.
GENERAL SALES'DEPARTMENT
25 West 45th Street
NEW YORK, N. Y.
Hoffman Valves and Controlled Heat Equipment
HOFFMAN VENTING VALVES
In the Hoffman line there is a specially designed venting valve for every type of
steam heating system. The basic principle used in the design of all Hoffman venting
valves is that of an all-metal thermostatic member, with one or more flexible diaphragms,
containing a volatile or heat sensitive fluid which causes valve action upon slight tem
perature changes.
.
Hoffman valves have a wide pressure range in which they operate with the same'
degree of accuracy, for the internal fluid pressure in the thermostatic member maintains
a constant relationship with the external steam pressures throughout the whole range of
pressure for which each valve is intended.
Hoffman valves are automatic, non-adjustable and guaranteed to properly function--
for a period of five years from date of installation when installed and operated under
normal conditions for which designed.
VENTING PORT. FLOAT VALVE PIN>
AIR CHECK
FLOAT (g>
RIBS
FLEXIBLE DIAPHRAGM (2
VACUUM DIAPHRAGM
FLOAT DSUPPORT
CHAMBER
TO) PORT
ip BASE
chamber No. S Hoffman Siphon Air and Vacuum Valve
HOW THE NEW HOFFMAN No. 2 VACUUM VALVE OPERATES
Normally venting port (2)
through which air escapes is wide
open until steam comes in contact
with the float (4). Then, the heat
sensitive fluid in the float, the ther
mostatic member, is changed to
gaseous state expanding the flexible
diaphragm (7), raising the float and
closing vent port.
.
If the radiator is shut off or- for any reason steam contact ceases, the diaphragm contracts, and the float drops. . But no air can re-enter the valve because the air check (l) makes the port a one-way street-- air can go out but none can come back. So with the continuation of condensation of steam and preven tion of air return.a vacuum is formed in the system. Atmospheric pressure exerted through chamber port (10) causes diaphragm (8) to lift the float (4) and keep port closed.
In other words, the air check acts as a vacuum starter, prevents return . of air for a short period until the vacuum formed in the valve permits atmospheric pressure, acting through port (10) to force dia phragm (8) upward, raising the float and doubly closing the vent port.
506
Hoffman Values
Specialties, Heating
HOW TO VACUUM-IZE A ONE-PIPE STEAM SYSTEM
To enjoy the comfort and economy of this new heating system all that is neces sary is to equip the radiators all over the house with these new No. 2 Hoffman Air and Vacuum Valves, and if there are one or more air valves on the piping in the cellar, these must also be changed. The No. 6 Hoffman Vacuum Valve is best suited for this purpose as it allows those radiators furthest from the boiler to heat up just as quickly as the nearest one.
The use of even a single No. 2 Hoffman Vacuum Valve on the worst radiator will enable that particular radiator to stay warm after steam pressure has diminished, but with air leaking in at other points complete heating comfort and economy will not be secured unless every valve is a No. 2 Hoffman.
Heating contractors and engineers appreciate that while the big air leak in any steam heating system is through the air valves (this leak is stopped by the No. 2 Hoffman) there are liable to be other leaks which must be stopped if the system is to be fully efficient. Complete instructions as to what to do and how to do it are sent with the valves and should be carefully observed to get the best service.
Write for Descriptive Circular--Locking the Door Against the Heat Thief
507
Hoffman Voices
Specialties, Heating
ALL METAL--NON-ADJUSTABLE--THERMOSTATIC
The No. 1 Hoffman Siphon Air Valve is designed for systems of the one-pipe gravity type, to vent alt air from radiators without
loss of steam. After contact of water with the valve the siphon drains all water from the valve and venting occurs without the slightest "spit" even if. the radiator is under pressure.
Radiator connection, H in. Maximum guaranteed operating pressure, 10 lb.
The No. 2 Siphon Air and Vacuum Valve is similar in con struction to the No. 1, but in addition, when the radiator is once freed from air, return of air through the vent port is prevented. Through its use an ordinary one-pipe steam system may be changed
into a vacuum type. See page 506. Radiator connection. H in. Maximum guaranteed operating pressure, IQ lb.
The No. 3 Hoffman Air Line Valve is specially designed for Air Line, or as they are
frequently termed "Paul" Systems. It is sensitive in action and closes the instant
steam fills the radiator.
.
Radiator connection, M in.; Air Line connection, in. Maximum guaranteed operating pressure. 10 lb.
The No. 4 is used in venting mains, risers, vento stacks, coils, etc. All air is freely vented through a % in. vent port without steam loss, but valve does not close against
water. Standard connection. % in., can also be supplied with in.
connection. Maximum guaranteed operating pressure. 10 lb.
\
No.S
No. 4
The No. 5 is particularly adapted for use in venting:
Ends of stea m mains; Ends of dry return mains; I ndirect
radiators; Blast or "Vento" stacks; Hot-water gen-
ators; Dryers and drums, etc.
The basic principle is the same as the No. 1 Valve,
No. 6
having separate channels for air and water which are
only found in Hoffman Valves. Pipe connection, H in.; vent port for less than 3 lb. is $6 in.; for
3 lb. and over is >6 in. Unless otherwise ordered, will be shipped with in. port. Maximum guaranteed operating pressure. 10 lb.
The No. 6 is similar in design and application to the
No. 5 with the additional feature of the Air Check or
Vacuum starter above vent port and vacuum dia
phragm in base.
.
' Pipe connection. M in.; vent port for less than 3 lb. is 16 th-l for
3 lb. and over is ,`is in. Unless otherwise ordered, will be shipped
with in. port. Maximum guaranteed operating pressure, 10 lb.
The No. 10 Hoffman Vapor Valve is used for vent
ing the return mains in vapor systems or for other
conditions where a large venting capacity is required.
The vent port is % in. in diameter.
Pipe connection, ii in. Maximum guaranteed operating pres
sure, 15 lb.
'
The No. 11 Hoffman' Vapor Vacuum Valve is
similar in construction and application to the No. 10
valve with the addition of a vacuum check on the vent
port which prevents the return of air to the system
through the vjnt port. Pipe connecti*. % in. Maximum guaranteed operating pres
No. 10
sure. 15 lb.
Write for Descriptive Circular- -The Watchman of the Coal Pile
508
No. 6
Hoffman Voices
Specialties, Heating
The No. 17 Hoffman Radiator Valve
Valve Body and Tail Piece--
Casting of First Quality Steam
Metal.
Bonnet--Hot Brass Forging.
Stuffing Nut--Rod Brass.
Stem--Drawn Brass Rod.
Lever Handle--H a r d Black
Fibre.
Disc Holder---Drawn Brass
Shell.
,
Disc--Genuine Jenkins Bros. 1
Packing--Special MetallicFibre.
Finish--Rough Body, Nickel-
Plated.
Made in % in.sizeonly. Capacity
200 sq. ft. C. I. Radiation.
The No. 17 Hoffman Radiator Valve
No. 17 Hoffman Radiator Valve (Quick Opening Valve) This valve is made in in. size only, suitable for radiators up to 200 sq. ft. The valve may be turned from open to shut position or vice versa, with one turn of the lever handle. The valve action is very free, with little friction due to the novel construction of the disc holder and its extension or lead screw for raising and lowering the disc.
- No. 18 Hoffman Return Line Radiator Trap
The thermostat consists of one chamber made by two diaphragms separated by a
space ring to which they are fastened. In the center of the bottom diaphragm, the
valve pin is attached, the joint being expanded and made absolutely tight. The ther
mostat is held in its cage by a pin expanded and attached to the top diaphragm, this
pin extending through the cage and engaging with the boss on the cap.
The thermostat contains a small quantity of thermostatic fluid, sealed under vacuum
insuring extremely sensitive valve action. The fluid is such that its pressure maintains
constant relationship with steam pressure and consistency of valve operation under
varying pressure is thus obtained.
Chief Features
.
The valve consistently operates under a pressure range from vacuum to 15 lbs.
steam pressure. Water at a temperature of approximately 12 deg. less than the tem
perature corresponding to the steam pressure causes full valve opening and free discharge
of condensation.
These valves are absolutely non-adjustable and thermostats can be changed from one
body to another.
:"
The No. 18 Valve is made in ]/? in. size only in Angle, Straightway, Right and Left-hand
and Offset Patterns. Normal capacity is 100 sq. ft. of direct cast iron radiation, port
diameter in. in all sizes, operating pressure from vacuum to 15 lbs.
. Write for Descriptive Circulars
509
Hoffman Valoes
Specialties, Heating
HOFFMAN "CONTROLLED HEAT" EQUIPMENT
Hoffman Valoes
Specialties, Heating
For use in Vapor or Vapor Vacuum systems, is made in % in. size only, having a range of adjustment up to 200 sq. ft. of direct cast-iron radiation.
After installation, whether the system is in operation or cold, the port of each valve is adjusted for the size of the radiator to which it is attached. Adjustment is simple; loosen a locknut; turn valve handle until proper number of graduations are visible on the dial plate; then tighten locknut. The valve handle may then be moved to admit sufficient steam to heat a quarter, half, three-quarter, or entire radiator. The valve stem stuffing box has a frictionless metallic fibre packing that will last indefinitely and require no attention, giving at the same time, a valve action so free that the pressure of only one finger is required to open the valve.
The No. 7 valve is regularly supplied with lever handle. On special orders, it can be furnished with wood wheel, lock shield, closed top, extension stem and handle, or
chain pull.
POSITIONS OF TOP DIAL PLATE FOR VARIOUS SIZES OF RADIATORS
Alt Graduations exposed
too sq.ft.
15 Graduations exposed 150 sq.ft.
10 Graduations exposed 100 sq. ft.
5 Graduations exposed 50 sq.ft.
CORRESPONDING POSITIONS OF ROTARY SLEEVE SHOWING PORT AREAS FOR ABOVE GRADUATIONS
The visible adjustment enables the designing engineer and heating contractor to make a final accurate adjustment which compensates for slight irregularities in pipe sizes, failure to ream pipe, installation of extra fittings not forseeri in original layout, etc. The advantages of an adjustable port in forced hot water systems to secure proper balance makes the No. 7 Valve especially adaptable for such use. .
Write for Descriptive Circular--Hoffman Controlled Heal
510
The Nos. 8 and 9 Hoffman Return Line Valves These valves are automatic, non-adjustable, thermostatic and relieve all air and condensation without the loss of steam from radiators, pipe coils, indirect radiation, steam mains and risers, steam kettles, sterilizers and other devices where it is desired to get full efficiency and economy without waste of steam. In service, they have established a reputation for efficiency and consistency of opera tion with the same degree of sensitiveness under either high or low pressure. The body of the valve is made of cast steam metal; cap and tail piece are hot brass forgings; the thermostat of a special Hoffman alloy. In continued operation the ther mostats will not break, stretch or lose their tension, giving long life and perfect operation.
Chief Features The valve consistently operates under a pressure range from 13 in. of vacuum to 50 lbs. steam pressure. Water at a temperature of approximately 12 deg. less than the temperature corresponding to the steam pressure causes full valve opening and free discharge of condensation. The thermostatic member is removable and may be changed from one valve to another of the same size without adjustment. This feature is appreciated by engineers who require the removal of the thermostat from the valves, until the system is thoroughly cleaned, and likewise by contractors complying with this practice. The No. 8 Valve has 3^ in. pipe connections, ^ in. port and is furnished in Angle, Straightway, Right and Left-hand Offset Patterns. The normal capacity is 200 sq. ft. of cast iron radiation. The No. 9 Valve with 34 in. connection is made in Angle and Straightway Patterns only, and is suitable for 600 sq. ft. of cast iron radiation. For pressures up to 15 lbs. valve has % in. port, for higher pressures ^ in. port.
STYLE
DATA AND DIMENSIONS
Size Inches
Diameter Maximum Valve Port Capacity
Inches Square Feet
DIMENSIONS ABc
No. 7 Angle................. No. 17 Angle................. No. 0 Angle................. No. 8 Straightway.......
No. 8 Uttset................. No. 18 Angle..................
No. 18 Straightway.......
No. 18 Offset................. No. 9 Angle.................. No. 9 Straightway.........
y. y<
Vi Vi Vi 'h Vi Vz
y y.
*No. 9 Valve furnished with
200 m iy
200 m I'A V* 200 m 1*
'A 200 2R H 'A 200 m
100 2V. l'/4
'A 100 2V. % 100 i`A 'A
% 600 3A IR
y* 600 3>/e %
in. port for pressures above 15 lb.
Itt
iy iy.
1 Vi
Write for Descriptive Circular--Hoffman Controlled Heat
511
Hoffman Voices
Specialties, Heating
The No. 12 Hoffman Blast Trap is especially well adapted for draining con
densation from:
Indirect Radiators
Dryers and Drums
Blast or "Vento" Stacks
Hot-Water Generators
Ends of Steam Mains and Risers Unit Heaters, etc.
Where the operating pressure is not in excess of 30 lb.
this valve will take care of large amounts of condensation.
In functioning it distinguishes between steam, heated
air and water of condensation giving free discharge of
air and condensation.
The Trap embodies the desirable feature of open
No, It Hoffman Blast Trap
bucket or float traps in that it relieves condensation immediately upon its arrival at the trap regardless of the
water temperature. Coupled with the float is a thermostatic member which positively
overcomes the chief difficulty with float traps by automatically relieving air as well as
condensation from the system.
The normal position of the valve is open and this is held until steam reaches it when
closure takes place. If small quantities of condensation flow to the trap the thermostat
functions and relieves the water but if larger amounts of condensation, beyond the
capacity of the thermostat reach the trap, the float lifts the thermostat from its seat
and maximum capacity is obtained.
Table of Nominal Capacities No. 12 Hoffman Blast Trap
Pressure. Ibs. per sq. in........................
Capacity lb*, per hr.............................
Capacity in sq. ft. of radiation or ' the basis of '/ tb. of condensation
per hr. per sq. ft.............................
Vi 800
3,200
1,000 4,000
2 1,500
6,000
3 1,800
7,200
4 2,000
5 2,500
8,000
10,000
Maximum Operating Pressure. 30 lb. Capacities for over 5 lb. pressure, furnished on application. With Strainer; inlet connection. 1 in.; outlet 1 in. With Strainer; inlet connection, 1 yi in.; outlet, 1 in.
The New Hoffman Ther-Kompo Gage is used on Hoffman Controlled Heat installations or One-Pipe Gravity Steam Heating Systems, equipped with Hoffman No. 2 Vacuum Valves.
It accurately indicates the temperature of the vapor produced' in the boiler, whether operating under pressure or vacuum conditions, measuring pressures up to 30 lbs. and vacuum to 30 in.
The Hoffman Ther-Kompo Gage is made in one style only--with pressed steel case, 5 in. diameter dial pressure and vacuum readings in black and temperature readings in red. Pipe connections are H in.
When used with the Hoffman Damper Regulator, results in marked fuel economy through more efficient firing of the boiler.
Write for Descriptive Circular--Hoffman Controlled Heat
512
Hoffman Voices
Specialties, Heating
Hoffman Damper Regulator
One of the most important features of the Hoffman Damper Regulator is the accurate control that only sufficient pressure is maintained to insure circulation to all radiators.
It is extremely sensitive in its action and accomplishes control so efficiently that when inlet valves are turned on or off, the fire is accelerated or retarded to meet the change in demand for vapor. A low constant pressure is therefore maintained so that vapor enters the radiator as soon as a valve is turned on.
The compensating or balancing plate is like a pair of scales. It is practically frictionless, remarkably sensitive and operates on slight changes in pressure.
It has an additional feature for the convenience of the installing fitter, in that the fulcrum on which the lever is suspended may be turned at different angles, permitting a straight chain connection with the dampers instead of at an angle, which might cause the dampers to bind.
Fig. 1 shows Damper Regulator under no pressure. Compensating plate is in its uppermost position, the bottom of the plate being in line with bottom of inlet. The space above diaphragm is filled with water up to the inlet. Weights on lever are to be so placed that they will hold the diaphragm against the perforated plate. Drafts are held open until the predeter mined pressure is generated, when through diaphragm action which in turn is trans mitted to the lever, drafts are closed.
rU. REGULATOR WITH WATCl BEFORE STARTING FIRE
'Adjustable saddle,
Fig.
"-position or lever under pressure
Fig. 2 shows position of Damper Regulator when drafts are closed. Vapor pressure has overcome upward force exerted by the weights on lever arm and forced diaphragm downward. The water on the diaphragm lowers with it and like wise the compensating plate until top of the plate is level with the bottom of the inlet, thus preventing any addition to the water above the diaphragm. With a slight drop in vapor the weights force the diaphragm upward and drafts are opened.
In making steam connection to boiler, locate Damper Regulator so that chain to "E" and "F" operate freely. Regulator should be set level. Remove plug on top of Regulator and fill with water.
With no pressure on boiler and weight " B " in position on lever, connect chain between "D" and "E" so that draft "E" 'will be open as wide as required for suf ficient draft. Connect "G" over pulley to "F" leaving just enough slack to chain "G" so check draft "F" is closed.
Set weight " B " so lever 1 ` D '1 tilts when steam is raised to pressure to be main tained.. If pressure increases, draft "E" will close and check fire. If fire is clean and pressure continues to increase, lever "D" moves downward, opening check draft "F," completely checking fire. As pressure decreases, "F" will gradually close and if pressure falls below the desired amount "E" will open.
Connections should be made so that draft "E" opens slightly and check draft "F" opens wide.
Write for Descriptive Circular--Hoffman Controlled Heat 513
Hoffman Voices
Specialties, Heating
Hoffman Differential Loop
The Differential Loop is the safety device for maintaining a steady water line in vapor and vapor vacuum systems. It is entirely automatic, non-adjustabie and has no moving parts to stick at a critical moment.
. Through its use water is permitted to rise in the return, main a certain predetermined amount when the loop functions, blowing over a small quantity of steam which closes the No. 10 or 11 Valve installed on the loop for venting the system and then compresses the air which is "bottled up" in the return main and builds up a pressure which prevents further rise of water in the vertical part of the return beyond the predetermined amount. As soon as this is accomplished, and the action is alnjost in stantaneous, the loop reseals and no more steam is blown over until the differential pressure is not maintained. It will be readily seen that, by the alternate blowing over and resealing of the loop, a constant differential
pressure will be maintained between the steam main and return main and also that by the main tenance of this differential regardless of how high the boiler pressure goes circulation will take place in a radiator which is turned on with the return main vent closed through loop action.
Differential Loops are made in four sizes, having a capacity up to 15,000 sq. ft. of radiation. For larger systems the No. 4 Loops can be installed in a battery or the return mains divided so as to have their load come within the capacity of stand ard loops.
No. 1 and No. 2 Loops should not be used where the low point in the dry return is less than 24 in. above boiler water line; with the No. 3 and No. 4 Loops this distance must be at least 30 in.
Loop No.
DIMENSIONS AND CAPACITIES OF HOFFMAN DIFFERENTIAL LOOPS
Capacity A B C D E F G j K L Sq.Ft.
Rad.
1
% I'/.' 1%' w
xh" I/.*
26' 30H' m' 3'
2000
2
%' w 1'/.' w
y,* 18'/.'
26' 30M" 7X' 3'
3500
3 %' Wi' \'h' V
1' 23'
32' 37%' io'
3%'
7500
4 %' 2' . 1* 2"
1' 25'
32' 37%' 10*
%'
15000
Write for Descriptive Circular--Hoffman Controlled Heat 514
Hoffman Valves
*
Specialties, Heating
TYPICAL INSTALLATIONS HOFFMAN "CONTROLLED HEAT" EQUIPMENT
OR* RETURN MAIN GRADING OOWN FROM BOILER
ALLOWANCE FOR* GRADE OF MAIN
LOOP
CAMCirv S4Pi.no
ATDKWJT LLSJ Than
VPIPING
CONWtCHON
eooo 24' iy4*
N* 3500
N3 7500 H?4 15000
24 30 30
l'/4 l'/t 2
$L0W OFF YALVC*
Write for Descriptive Circular--Hoffman Controlled Heat
515
Specialties, Healing
Illinois Engineering Company
General Offices and Factory: CHICAGO
Atlanta Baltimore Birmingham Boston Buffalo Canton Cedar Rapids Cincinnati
Branches and Representatives
Cleveland
Houston
Columbus ' , Indianapolis
Dallas
Kansas Crrr
Denver
Los Angeles
Detroit
Memphis
Grand Rapids
Milwaukee
Harrisburg
Minneapolis
Montreal . N^w Orleans New York Crrr Omaha Peoria Philadelphia
Pittsburgh
Portland Providence Richmond (Kt.) Richmond (Va.) Rochester St. Louis St. Petersburg
.
San Francisco Scranton Seattle Shreveport Spokane Toledo Toronto Tulsa
PRODUCTS--Illinois Heating Systems--Eclipse Steam Specialties
Illinois Heating Systems
Successfully installed in thousands of buildings--the result of over 25 years of special work in this line, and the ultimate in efficiency and economy.
Illinois Thermo Trap
The original vertical seat trap. Dirt
does not lie on seat--self cleaning, non-
adjustable, posi
tive in opera
tion ; durable,
will stand 50 lb.
steam pressure
which shows the
great strength of
the diaphragm,
which is the
Thermo Trap
reason for the . long life and
durability of these Traps. Thousands in
operation for over 15 years without
diaphragm replacements.
Illinois Modulating Supply Valve
Quick Opening--only a half turn of handle from open to closed position.
Packless, Bake lite handle,
steam tight on 50 lbs. pressure. Large diameter of thread spool and machine cut threads make
valve.easy of operation.
Modulating Valve
The improved
. Bakelite handle
insulates the hand from heat.
The graduated dial shows the open or
closed or any position of the valve.
Furnished with Lock Shield and Key,
or with Bakelite Wheel handle, upon order.
Illinois Vapor Systems
Illinois Vapor Systems are capable of operating automatically on any pressures possible in a low pressure heating system ;--from 10 lb. to 20 in. of vacuum. Our improved equipment actually insures oper- i ation under vapor--less than atmospheric I
pressure--with only two or three firing periods per 24 hrs. The advantages are healthful, modulated heat, and a fuel sav ing of S5-S0 per cent over other systems of heating. This result is secured by the ILLINOIS HEAT RETAINOR--Browne Patent, a device which marks an epoch in the heating art.
Illinois Heat Retainor
This improved device not only vents
air from the System on }/& oz. pressure,
but it abso1u t ely-pre vents air pull ing back into
the System,
thus allowing
the System to
remain under
vacuum for
Illinois Heat Retainer
hours a t a time.
Nodirtorscalecan reach the valve of the
Retainor, and even the air passing through
same is washed, so this device will remain
in operative condition over long periods. Our Bulletin No. 22, describes the opera
tion in detail--Copy sent upon request.
Illinois Retorn Trap or Altem.tiag Receiver
This device automatically . puts the
water back in the boiler against any boiler
pressure possible in
a low pressure heat
ing system.
The float trips
the weights which
in turn positively
operate the valves.
The operation is
Illinois Return Trap
forceful and posi tive and this mech
anism cannot be caught on dead centre by
water half filling the tank. No external
parts to be adjusted or tampered with.
No stuffing boxes--all working parts enclosed in the tank.
Our Sales-Engineering Organization will
be glad to give detailed technical infor
mation regarding our products and to
advise as to their proper installation.
516
Illinois Engineering Company
Specialties, Heating
ILLINOIS PRODUCTS--Eclipse Steam Specialties
Eclipse Steam Specialties
The old John Davis Co. Eclipse Steam Specialties
have been on the market for over 40 years, and
embody the improvements and refinements sug
gested by this long period of service. These
Specialties are quality products, having bronze
and monel metal pistons, seat'rings and valve
parts, the bodies are extra heavy, and every piece
of apparatus is carefully steam tested--under
working pressure where same is given--before
shipment.
Pressure Reducing Valves, for all pressures and
services.
'
Back Pressure, and Atmospheric Relief Valves.
Separators. Oil and Steam, Cast Iron and Steel.
Steam Traps, all pressures.
Non-Return or Stop and Check Valves.
Pump Governors, Balanced Valves.
Float Valves, Expansion Joints, Pipe Strainers.
Reducing Valve
Reducing Valves. In general use on Vacuum or low pressure Heating Systems. Will reduce to 4 oz. pressure from even 150 lb. initial pressure.
The large diaphragm insures sensitive opera tion.
Made in both straight way and expanded outlet bodies.
Sizes $ in..to 12 in.
Eclipse Master Reducing Valve
Eclipse Steam Trap (Patent Applied for)
Something new in Steam trap design. The valve and stem are sepa rate from the bucket and only operated by the bucket at its extreme top and bottom travel --Result--
Valve is always either full open or tight closed.
No wire draw ing or cutting of valve and seat, which are of Monel metal. Steam tight and long lasting. Bulletin No. 302 describes in detail.
Horizontal Oil Separator
A pilot type valve
will reduce from any
pressure up to 250 lb.
down to 10 lb. and
hold reduced pressure
constant at alt times --even against a "dead end" pipe.
Made of Bronze
These Separators have a baffle removable with out disturbing the piping. Occasional cleaning is necessary for proper elimination of oil.
The port areas are over 3 times the diameter of the pipe area, hence these separators are effective.
with monel valves and trimmings.
Sizes H in- to 6 in.
Illinois Expansion Joints - Single and Double Traverse
Eclipse Back Pressure and Combina
tion Relief Valves
Made in Vertical and Horizontal types, straight^ way or angle pat tern. for condensing and non-condensing engines.
It is noiseless and works equally well on pressure or va cuum, air cushioned by back pressure in dashpot. Con
structed entirely of metal with no
Heavy duty joints, the liners are cast bronze-- TM BEHS
3S8B
springs, wearing
not brass tubing. Theboltsarethroughbolts.no
,O
parts ot special
stud bolts used.
*
bronze.
_
. Tapped for service connections in anchor section
size 4 in. to 36 in.
if desired.
1
Catalog and Bulletins--Illinois Heating Systems--144 pages
BULLETINS
No. 12--Heating Specialties. No. 22--Vapor System Details. j>j0. 45 Non-Return Valves
No. 102--Pressure Reducing Valves. No. 302--Steam Traps No. 202--Back Pressure, and Relief No. 502--Separate--Oil and team.
Valves, Exhaust Heads. No. 703--Float and Balanced Valves.
517
Specialties, Heating
Klipfel Manufacturing Go.
2641-59 West Harrison St.
Chicago, 111.
Manufacturers of Pressure Regulating Appliances--for the Automatic Control of Steam, Air, Water or Gas
Nos. 1 AND 2 PRESSURE REGULATORS
Piston Type
.
Automatically reduce any initial steam, air or water pressure to any desired reduced pressure down to 2 lbs.
and maintain reduced pressure constantly regardless of fluctuations in the initial pressure, or changes in the demand for steam.
When specified for control of air or water, piston is pro vided with special leather cup packing at no additional charge. Working parts removable while valve body remains in pipe line.
Sizes, to 14 in., inclusive.
Bronze bodies in sizes 1H in. and under, screwed ends only. Iron bodies in sizes 2 in. and above; 2 to 6 in., inclusive, screwed or flanged ends, but screwed ends will be furnished
unless otherwise specified; sizes 7 in. and above flanged ends only.
No. 2 PRESSURE REGULATORS
Piston Type-Expanded Outlet
Similar to No; 1 except have an expanded outlet, allowing use of low pressure pipe of larger size than high pressure supply pipe.
Nos. 3 AND 4 PRESSURE REGULATORS Diaphragm Type
Automatically reduce any initial steam pressure to any desired reduced pressure, either below atmosphere or up to 5 lbs. above atmosphere, and constantly maintain re duced pressure regardless of initial pressure fluctuations or changes in the demand for steam. Includes no stuffing
box, thus eliminating leakage and friction on valve stem. Diaphragm of ample area insures very close regulation of reduced pressure. Inner valves and seats are bronze, bevel seated, requiring minimum diaphragm movement.
No. 2 Pressure Regulator-- Piston Type--Expanded Outlet
Sizes, 1 x 2 to 12 r 24 in. in
clusive. Bronze bodies in sizes
1M x 2}> in. and under. Iron
bodies with bronze inner valves
and trimmings in sizes above.
Unless otherwise specified. Nos.
2 and 4 will be shipped with
inlet screwed and outlet flanged
in sizes 1H x 3 to 4 x 6 in., in
clusive, although they can be
furnished with other style ends;
sizes 4x8 in., and above, both
ends flanged only.
'
No. S Pressure Regulator, Diaphragm Type
Made in same sizes and style of ends as No. 1 Pressure Regulator, Pis ton Type.
No. 4 PRESSURE REGULATORS Diaphragm Type--Expanded Outlet
Similar to No. 3 except have expanded outlet, allowing use of low pressure pipe of larger size than the high pressure supply pipe. Made in same sizes and style of ends as No. 2 Regulator.
Our 80 page Catalog No. 26 with new sectional illustrations, roughing-in dimensions and valuable engineering data is ready for distribution.
Write for your Copy--TODAY!
518
Klipfel Manufacturing Co.
Specialties, Heating
No. 28 NOISELESS BACK PRESSURE VALVES
Automatically and noiselessly
maintain any desired back pressure,
so that exhaust steam may be used for heating, drying and other pur
poses. For use with non-condensing
engines. Because of patented con
struction, inner valve is effectively
stabilized, and cannot pulsate in unison with stroke of engine. . Can
No. 28 Noiseless Back Pressure Valve
be operated either horizontal or ver tical, but horizontal position is pre ferable. Iron bodies, bronze inner valves and trimmings.
Sizes, 2 to 24 in., inclusive. All sizes made flanged ends; sizes 2 to 8 in.,
inclusive, also made screwed ends. Unless otherwise specified, sizes 0 in.
and under will be shipped screwed ends, while sizes 8 in. and above will be
shipped flanged ends.
No. 25 IMPROVED PUMP GOVERNORS
No. 2,5 Improved Pump
Governor
Automatically control any type of steam pump, and maintain dis charge at a constant pressure. Simple; compact; direct acting; Monel metal stems; bronze inner valves and seats, semi-balanced and taper seated. Made angle and globe patterns in all sizes.
Sizes, H'to 12 in., inclusive. Bronze bodies in sizes 1% in. and under, screwed ends only. Iron bodies in sizes 2 in. and above. Sizes 2 to 6 in. inclusive, made screwed or flanged ends, but screwed ends will be shipped, unless ordered flanged. Sizes 7 in. and above made flanged ends only. Made angle and globe patterns in all sizes, and for any steam or water pressure. Angle patterns will be shipped, unless ordered globe.
No. 6 BALANCED FLOAT VALVES
Automatically control the supply of hot or cold water to open tanks and maintain practically a constant water level. Made angle and globe patterns in sizes up to 14 in. inclusive; sizes 16 to 20 in., inclusive are made globe patterns only. The inner valve consists of two perfectly balanced straight side plunger discs and consequently is un affected by water pressure. The swivel yoke and float level on all sizes can be turned to any desired position. A rosette at the end of lever permits ample adjustment of the seamless copper float. Inner valves and seats are bronze and are fitted for cold water working pressures up to 200 lbs., unless specified for hot
water. A special right angle bent lever is furnished when valve is specified for in stallation in a vertical pipe line.
No. 7 SINGLE SEATED FLOAT VALVES
No. 7 Single Seated Float Valve
Sizes,
to 8 in., inclusive.
Bronze bodies in sizes 1H in.
and under, screwed ends only.
Iron bodies in sizes 2 in. and
above; 2 to 6 in. -inclusive,
screwed or flanged ends, but
screwed ends will be shipped
unless specified otherwise; size
8 in., flanged ends only. All
sizes are made angle or globe
patterns, but angle pattern will
be shipped unless specified globe;-
Automatically maintain a constant level of hot or cold water in open tanks. Single seated, auxiliary operated. Seat area equal to pipe size. Will not leak. Swivel guide yoke allows float to be located in any position. Angle and globe patterns. All bronze working parts. For working pressure up to 200 lbs.
519
No. 6 Balanced Float Valve
Sizes. ^ to 20 in., inclusive.
Bronze bodies in sizes
in.
and under, screwed ends only.
Iron bodies in sizes 2 in. and
above. Sizes 2 to 6 in. inclu
sive, made screwed or flanged
ends, but screwed ends will be
shipped unless specified other
wise. Sizes 7 in. and above,
made flanged ends only.All
sizes up to 14 in. inclusive are
made angle or globe patterns,
but angle pattern will be
shipped, unless ordered globe.
Sizes 16 in. and above are made
globe patterns only.
Specialties, Heating
Kieley & Mueller, Inc.
34 West 13th Street
NEW YORK CITY
Steam Specialties for Power and Heating
The Kieley Special 98 Pressure Regulator
The Kieley Special 98 Pressure Regulator.-- Adapted for reducing steam to vapor and vacuum for heating systems. Other types spring controlled.
Damper Regulator.--Step Action Regu lators for high and low pressure. Designed to adjust the Damper position and control the Draft according to requirements.
Stop Check Valve
A[u t o m a t i c Cushioned Valves and positive clos ing. -- Constructed in Horizontal and Angle Patterns.
Steam Trap
Rapid Type Water Feeder
Rapid Type Water Feeder. -- Constructed with valve on outside and with large water space. Made in sizes up to 2 inch.
Steam Trap, Bucket and Ball Float Types.-- Constructed of cast iron or steel with Monel valves. A by-pass valve is fur nished integral with Trap.
Represented in all Large Cities 520
Specialties, Healing
The McAlear Mfg. Co.
1901-1907 So. Western Avenue
CHICAGO
Power and Heating Specialties for Controlling Pressures and Flow of Steam, Water, Air or Gas
Pressure Reducing Valves--used in Low Pressure, Vacuum or Vapor heating
systems or any other service where close regulation and absolute con trol isrequired.
USE
Fig. 155 for ini tial pressures up to 150 lb. and re ducing to service pressures 0-10 lb.
Fig. 185 Single Seated Valves on dead end service where reduced pressure is below 10 lb.
Fig. 235 Spring Weighted type for initial pressures up to 200 lb. and reducing to service pressures above 10 lb. Fig. 255 Single Seated Valves for dead end service such as cooking tables, kitchen utensils, laundry mangles, etc.
Steam Traps--For draining water of condensation from any steam apparatus or steam mains.
No. 785--Low Pressure, up to 15 lbs.
Air Elimi
nator and
Return
Traps-- De
signed for automatical ly returning
water of con densation
from low
pressure
steam or
vapor sys tems direct to boiler and
to exhaust the air to at mosphere.
CAPACITIES
Size No.
1 2 3
Inlet In.
i'/. l Vi 2
Outlet In.
V/, i'/i 2
Steam In.
1 1 1
Vent. In.
y. V* V,
Capacity Sq. Ft.
6,000 12,000 24,000
McAlear Direct-to-Boiler Water Feeders
For maintaining constant water line in steam boilers.
McAlear Automatic Water Feeders prevent boiler
Iractures from low water, decrease Inel consumption and
reduce maintenance expense.
C
SPECIFY Fig. 685 for pressures up to 250 lb. Fig. 715 for special low pressures.
D
For oil burner installations--Feeders are equipped if desired, with LOW WATER ELECTRIC CUT-OUTS.
The McAlear line of Power, Heating, Gas and Oil Specialties include: Thermo static Radiator Traps, Packless Radiator Valves, Air Vents, Grease Extractors, Dirt Strainers, Vacuum Pump Governors, Damper Regulators, Steam Separators, Back Pressure Valves, Water Regulating Valves, Tank Controllers, Gas Regulating Valves, Liquid Level Controllers and many other devices. General Catalogue No. 28 illustra ting our complete line, will be gladly furnished upon request.
521
Specialties, Heating
Jas. P. Marsh & Company
Established 1865
114-124 S. Clinton St. - CHICAGO, ILL.
Sales Agencies In Most Principal Cities
No. 7 Thermodisk Air Eliminator
Free and unlimited vent of all air, hot or cold, cannot water-log, do not spit or leak water, and close instant ly for steam or vapor.
Sizes and capacities for every requirement.
No. 6 Thermodisk Rapid Vent
No. 8 Thermodisk Air Line Valve
Marsh Automatic Syphon Return Trap
No. 1 Reflux Trap
, Marsh Reflux Traps for instal lation on return of radiators of any two-pipe re turn steam heatingsystem. Also for pipe coils in Refining, Cook ing and Drying apparatus. .
No. 8 Reflux Trap
Marsh Blasts Traps for Direct or Indirect Coils and for any loca tion where large quantities of water are to be discharged.
522
No. 8 Reflux Trap Marsh Blast Trap '
Jas. P. Marsh & Company
Marsh Indicating Gauge
Marsh Gauge Board
Specialties, Heating
Marsh Recording Gauge
Low Pressure Ounce Gauge
Marsh Gauges for every requirement of indicating Pressure, Vacuum, Altitude, etc. . Marsh Recording Gauges where a high grade, accurate instru ment is required and where" it is desired to match other instru ments on Gauge Boards, etc.
We specialize in Gauge Board outfits complete with all in struments.
Compound Ounce Gauge
Show exact pressure in ounces and pounds.
A necessity for the intelli
gent, economical and proper
operation of "Vapor," "Vacu
j
um," "Semi-Vacuum," and "Atmospheric" Heating Sys
tems and for any low pressure
boiler.
Marsh Altitude Gauge and Hot Water Thermometer
Combined Alti
tude Gauge and
Hot Water
Thermometer.
The two indica
tions, altitude
and tempera
ture, at a glance.
The ideal and
logical instru
ment to specify
foranyhotwater . Foiany hot water heat-.
, . , .,
ing boiler where the sepa-
heating boiler, rate Altitude Gauge and
Hot Water Thermometer are preferred.
Architects and Heating Engineers will find illustrated and described a Marsh Gauge, Radiator or Steam Trap, Automatic Air Valve, Vent and Heating Specialty for each service requirement--in literature which we will be pleased to send upon request.
523
5
Specialties, Steam
Mason Regulator Company
Boston, Mass.
San Francisco, Calif. Montreal, Canada Manufacturers of
Pressure Regulators and Steam Specialites
No. tt9. Spring Type Sices H"-tW
No. tl. Lever Type Siut 2"-16"
PRESSURE REDUCING VALVES FOR HEATING SYSTEMS
Vacuum Regulating Valve
Sices W-k"
For regulating the amount of vacuum on separate branches of a main vacuum system.
The new Mason Re ducing Valves for heating systems are rapidly at taining the same popu larity as the well known Mason high pressure reducing valves so widely used industrially.
These valves are up to the Mason standard of quality but areexceedingly
moderate in price. For economy as well as lasting satisfaction it' is very much to your advantage to specify Mason. '
Vacuum Pump Regulators Sices Vi'-V
For regulating the supply of steam
to the requirements of a steam driven
vacuum pump and thereby automatic
ally maintaining a uniform vacuum On
the system.
. *.'
Household Water Pressure Regulator ; Sices
Designed for domestic service where the city water pressure is too great for economical house use. Eliminates noise 'in bathroom fixtures, leaking faucets and splashing in bowls and tubs.
Standard Reducing Valve Sices W-8"
For High Pre38ure Service.
Damper Regulator
Made in various sizes for handling damper equipment on -both, high ana low pressure boilers, operating on forced, induced, or natural draft.
CATALOG--Write for Pocket Catalog and Handbook No. 62. It contains complete information
.-
. about these and other Mason Regulators.
524
Specialties, Heating
Monash-Youriker Co., Inc.
ESTABLISHED 1900
CHICAGO
NEW YORK
MONASH THERMOSTATIC RETURN LINE TRAPS
No. SS-A-H in. '
No. S5-B-H in.
No. SB-B
The distinctive feature of the MONASH Thermostatic Line of Traps, is the Dia phragm, a separate and independent unit, so constructed and so held in place that friction and strain on the Diaphragm is reduced to a minimum: overcoming the hazard of fracture and rupture of the Diaphragm.
The No. 35-A has a vertical seat with the Diaphragm out of the Steam Chamber, while the No. 35-B is built with a horizontal seat and the Diaphragm in the Steam Chamber. These Traps are 56,in. pipe size, capacity 200 sq. ft., 65 lb. of water per hour.
MONASH No. 36-B Traps--As illustrated, is built with a diaphragm in the steam chamber and in the following sizes: Guaranteed for 10 lbs. pressure.
No. 36-B--H in. pipe size; capacity, 350 sq. ft.; 108 lb. water per hour, in angle only. No. 36-B--54 in. pipe size; capacity, 500 sq ft.; 160 lb. water per hour, in angle only. No. 36-BX--54 in. pipe size; capacity, 1000 sq. ft.; 350 lb. water per hour, in angle only.
Monash Thermostatic Heavy Duty or Drip Traps for 25 lbs. Pressure
MONASH thermostatic .special heavy duty or drip traps are made with dirt-
pocket, clean-out and by-pass. Vertical seat and diaphragm outside the steam chamber. Especially suitable for blast colls, dry kiln coils,' main drips, dryers;
laundry machinery and all points where
large quantities of condensation is to be handled.
No..............................
Size............................ Sq. Ft. of Radiation Water per Hour.... pounds Net Weight.............. pounds
40
&
108 3.25
42 Va 1500 475 5.00
44y 1:
5000 1560
7.50
Monash Guaranteed Automatic Air Valves
MONASH No. 1, all metal, non-adjustable automatic air valve in which the base and nipple are in one casting-- no soldered or sweated joints to come apart.
MONASH No. 6, fourway-drain, lock-shield, automatic air valve with all working parts above opening to radiator. .Self cleaning; no flooding' of floors and other damage.
Specify Monash Valve holder with valve.
Monash Quick Venting Valves
For mains and risers the MONASH No. 27 thermostatic quick venting valve is desirable. Has heavy brass body and cover, phosphor bronze thermo static diaphragm.
Operates.-automatically at all pressures up to 10 lb.
Insures rapid steam circula tion. Closes against steam, but does not close against water.
Connections are H in., 1 lb.
Monash Thermostatic Air Line Valves
for drip or air line systems; also for venting vento stacks and blast coils.
Is rapid in action and positive in results, passing all air but closing tightly against steam. -
Made of' brass. white plated; the No. 2 is in., the No. 3 is 3x$-$ in. 1 lb. net weight.
No. 2
Specialties, Heating
O-E Specialty Mfg. Co.
5-7-9 Keefe Ave., MILWAUKEE, WIS.
(#a
X*SBr
Packless Graduated Valves, Ball-Check Return Elbows, Thermo-Nickel Return Traps, Air Exhausters, Vacuum Valves, Vacuum Pressure Gages, Differential Return Traps and Balanced Swing Check Valves.
The operation of the "O-E" Perfect Vapor
The "O-E" Improved Perfect Packless Gradu
Vacuum-Pressure Sys tem is very simple: vapor generated at boiler passes up through main supply pipe and is admitted to radiator at top through the "O-E" Packless Grad
ated Valve is absolutely
packless and never requires packing. It is tested by air and water test before ship ment. It is quick opening, little more than one-half turn fully opens or closes it. Sand blasted and nickel
uated Valve. Water of condensation is returned to boiler through a J^-in. "O-E" Elbow. In pass ing through the Elbow
the water is first trapped by means of a wall or diaphragm cast in the
plated. The handle being made of hard rubber, will not crack and is always cool and easy to operate. The graduated dial and pointer admit of partial opening so that just the amount of heat desired can be obtained. All valves are fitted with
Elbow, outside of the radi
ator, making a water seal which holds the vapor in radiator and prevents it from short circuit
composition disc on a swivel seat without extra charge. Graduated Supply Disc will be attached when specified, at slight additional cost.
ing into the return main. Should the
Supply Valve of radiator be closed
and condensation fprm a vacuum any
water that might be in the return
pipes is prevented from returning to
radiator by the "O-E" Patent Elbow,
which is equipped with a small brass
ball operating on a smooth guide or
track, and so arranged that when
a vacuum takes place in radiator
ball will immediately roll against
port and close it. Elbow is noiseless
in operation, as water seal is below
ball, which is an important feature.
As soon as Supply Valve is again opened ball rolls off of seat allowing condensation and. air to pass easily and freely into return mam.
An air vent is tapped in the slot of the screw stop in the return elbow which not only allows air to es cape freely into return system when Supply Valve is
open, but also equalizes the pressure on both sides
of Water Seal, thus preventing it from syphoning out,
which it might otherwise do. All air and condensation
pass through main return pipe in basement to a point
above boiler where air is separated from water by means
of "O-E" Patent Air Exhauster and Vacuum Valve.
The "OE" Perfect Ball-Check Water Seal Union El bow with Adjustable Air Vent is made in two sizes, ^*-in. Ca pacity 250 sq. ft. &-in. Capacity 500 sq. ft.
The "O-E" Improved Air Exhauster and
Vacuum Valve is simple and very sensitive,
operating as follows:
'
Being connected at a high point above where the
return main enters boiler, all air in the system seeks
outlet at the Air Exhauster, which is open when
there is any air in the system, and as soon as all air is
exhausted and heat comes in contact with the Expan- *
sion Member in Exhauster, same expands and forces
the Special Bronze Ball against the seat, closing the
port. When closed system will cool slightly causing
a vacuum which will hold ball on seat. As soon as
vacuum is lost ball will roll away from seat and
permit air to escape freely and quickly. The
Improved cap locks the expansion post after it is
properly adjusted and also holds post in a rigid hori
zontal position. All Exhausters are set for ordinary
use, but can be adjusted to suit any particular system
to which they are attached. All Exhausters are
threaded for 1-in. I. P. both inlet and outlet. .
Made in one size only, 1 in. x 1 in. Capacity
2,000 sq. ft.
We also announce the O-E Thermo-Nickel Return Trap, a combination thermostatic trap with a ball-check and many new features. Ask for descriptive bulletin and general catalog.
52^-
4:* aj
Specialties, Heating
Stickle Steam Specialties Go.
Main Office and Works, INDIANAPOLIS, IND.
New York Office 48 E. 41st St.
Boston Office 52 Sudbury St.
Manufacturer of the STICKLE Open Coil Feed Water Heaters and Purifiers, STICKLE Steam Traps high and low pressure and vacuum, Pressure Regulators, Damper Controls, Back Pressure Valves, Standard Balance Valves, Vacuum Heating Specialties, Blast Coil Heaters, Heating and Ventilating Equipment, Triplex Oil and Steam Separators.
STICKLE THERMOSTATIC RADIATOR TRAP
The special feature of the STICKLE Thermostatic Radiator Trap is the dia phragm; with box shape inverted heads, side walls reinforced with seamless drawn brass tubing, a solid disc protecting each head and so constructed that the diaphragm cannot get out of place. The diaphragm is so reinforced that there is no possible chance foi it to become distorted or ruptured. The flat leal bronze spring makes a positive opening action supplementing the spring action of the diaphragm.
STICKLE THERMIC VACUUM TRAPS
Designed for draining steam headers and risers on low pressure heating systems. A Thermostatic trap will close on hot water and for this reason they will not drain a steam header. This trap-*is mechanically operated with positive air release. No matter what the temperature of the water this trap will handle it. This is the ideal trap for Blast Coil Service, made in sizes up to 2 inch. Send for the descriptive matter.
STICKLE VAPOR VACUUM HOT BLAST HEATER
Primarily designed to operate with the condensation from the dryers of a paper machine, for heating air to ventilate the machine room. When connected to the return line of a vacuum heating system it will maintain from 10 to 15" of vacuum on the pump without the use of cooling water.
Write us regarding this heater. It has no equal. Cold air is heated and used, instead of using cooling water which goes to the sewer, the heat being lost.
527
Specialties, Heating
Sarco Co., Inc.
Boston PACKLESS
Buffalo INLET
183 Madison Ave., NEW YORK
Philadelphia
Cleveland
Detroit
RADIATOR, BLAST AND STEAM TRAPS, VALVES, TEMPERATURE CONTROL AND
Chicago STRAINERS
SARCO STEAM TRAP No. 9
For industrial purposes, hospitals, laundry and kitchen
equipment.
Sarco Steam Trap No. 9 consists of a heavy bronze body with a powerful motor element of helical seamless bronze tubing containing an expansion fluid.
Is of the balanced pressure type, suitable for any steam pressure from 0 to 100 lbs. without readjustment.
Has unusually great capacity, large valve area and quick, high lift when discharging. Closes instantaneously. No live steam can escape. Cannot air bind.
Small in size and low in price.
Write for Booklet No. 261.
'
List Prices F. 0. B. Bethlehem. Pa.
Dimensions
Capacity
<Z/i,' l'
$ 8.50 U.50 14.50
P4* inlet to outlet
inlet to outlet 2* inlet to outlet
500 lbs. of water per hour 600 lbs. of water per hour 800 tbs. of water per hour
For Steam Pressure from 0 to 30 lbs. Type 9-1 can be used. It has the same capacities as Type 9-2 but is furnished with brass composition valve heads and seats at >*"-$7.50; K"-%10.50; 1"-$13.50 list.
SARCO HIGH AND LOW PRESSURE
BLAST TRAPS
This Heavy-Service or Blast Trap is for draining steam coils of hot-water tanks, vento stacks and main drip lines; also where a large capacity trap is required such as for draining coils in dryers, vacuum pans, heating coils, cooking vessels, etc.
Will handle great flows of condensation without loss of steam. Is entirely thermostatic, so removes the air as well as water.
Operates on the same principle as the Sarco Steam Trap No. 9-2.
No. 9-3. Pressures 0-30 Lbs. Brass Composition Valve Head and Seat
No. 9-4. Pressures 0-100 Lbs. Monel Valve Head and Seat
List Prices
`
F. 0. B. Bethlehem. Pa.
Capacities Lbs. per Hour
. List Prices
-
F. 0. B. Bethlehem. Pa.
Capacities Lbs. per Hour
IV.' IV?" 2'
$25.00 27.50 30.00
35.00
1,000 1,000 1,500 2,000
Can be furnished in offset patterns at same prices.
1'
IV/ IV,' 2*
$30.00 32.50 35.00 42.50
1,250 1,250 3,250 5,000
------
'
Write for Blast Trap and Heavy Service Booklet.
SARCO TEMPERATURE REGULATOR
For hot-water service tanks, and cold storage plants; also for manufacturing purposes and dry room or kiln control. Write for Booklet No. 91.
SARCO SELF-CLEANING STRAINER
For Steam, water and oil lines.
Write for Booklet No. 204
528
Specialties, Heating
Sarco Co., Inc.
Boston
Buffalo
183 Madison Ave., NEW YORK
Philadelphia
Cleveland
Detroit
Chicago
RADIATOR, BLAST AND STEAM TRAPS, PACKLESS INLET VALVES,' TEMPERATURE CONTROL AND STRAINERS
SARCO RADIATOR TRAP
For vacuum, vapor and low-pressure
heating systems. The Sarco is of the
thermostatic type, using Seamless
Helical Bellows and a volatile liquid filling. Its positive action keeps
radiators thoroughly drained, prevent
ing water hammer and air binding.
Helical Bellows is phosphor bronze.
It has a high lift, insuring free dis
charge, a maximum closing pressure and an unusually long life.
Sectional View
The motor element is not attached to the body and can be lifted out to wash out scale and dirt in new installations without affecting adjustment. Body is heavy brass, nickel plated.
Is factory adjusted and can be used on all pressures up to 25 lbs. without adjusting.
Write for Booklet No. 116.
List Prices F. 0. B. Bethlehem, Pa.
CAPACITY--DIRECT RADIATION
Vapor System
Vacuum System
W $ 6.00 y/ 8.00 r I5.oo
>>>
B I'/;' BP/4' B 2'
200 Sq. Ft. 600 Sq. Ft. 1500 Sq. Ft.
250 Sq. Ft. 800 Sq. Ft. 1800 Sq. Ft.
Angle, straightway and offset types are furnished at same prices.
SARCO PACKLESS INLET VALVE
For use on vapor and vacuum heating systems.
This valve cannot leak as it is of the true Packless type.
By the use of the Sarco Helical Tubing
sity for packing any kind.
Valve opens or closes with a three-quarter turn
and the pressure is always even, smooth and
regular. Easy to turn.. Dial is distinctly
marked.
:
Has heavy brass, well-nickeled body. Fur nished with lever or round moulded handles.
Write for Booklet No. 151.
of
Section of M* ond %m Valve
List Prices F. 0. B.
Bethlehem, Pa.
Center Inlet to Outlet
CAPACITIES Feet Direct Radiation
W y/
r--
!//
45.50 6.09
7.50
9.50
3V.' 3V.' 3V.' A" -
up to 40 sq. ft. 41 to 75 sq. ft. 76 to 125 sq.ft. 126 to 200 sq. ft.
529
Specialties, Heating
. TRANE HEATING SPECIALTIES (See Trane Heat Cabinets on pages 394 and 395. Also Trane Pumps on pages 474 and 475.)
The Trane Company
Za Crosse, Wis.
. BRANCH OFFICES
New York Chicago Boston, Cincinnati, Newark, Philadelphia, Buffalo, Cleveland, Detroit, Seattle, Los Angeles, Albany,
Minneapolis, Salt Lake City, Greensboro, N. C., Zanesville, Ohio, Tampa, Fla., Baltimore, Md., Des Momes, Iowa, New
Haven Conn Sheboygan, Wis., Kansas City, Mo.; England: 22-23 Clerkenwell Close, London, E, C. 1. Canada:
The Trane Co 21-23 River St., Toronto, 2; Thomas Robertson & Co.; 134 Craig St., West. Montreal, F. S. Murdoch,
310 Breadalbane, Winnipeg; A. B. Madden. 48 Sparks St., Ottawa. Japan: Mitsubishi Shop Kaisha, Ltd., Tokyo.
China: C. J. Doughty & Co., 8-9-10 Brenan Road, Shanghai.
.
The Trane Systems of Vapor and Vacuum Heating, Patented Heating Specialties, Trane Heat Cabinets, and Trane Automatic Electric Pumps,
For All Purposes
The Trane Company
Specialties, Heating
3 Trane Heavy Duty Float Vent * Valves have an enormous venting capacity. They are used on extra large wet mains and are designed to quickly eliminate air, but to seal tightly against water, steam, and vacuum.
No. 4 Trane Bellows Packless Valves * are packless in every respect.
Contain genuine Trane bellows. Brass body. Nickled, highly polished trimmings. Practically indestructible handle. Especi ally designed as companion product for use with Trane Bellows Traps (No. 7) in connection with Trane Vacuum Pumps. (See Trane Pumps in Pump section of this Guide). Valves furnished in )4 in., % in., 1 in. and 1 Vi in. sizes.
5No. Trane Vapor Regulators are " sensitive to ounces pressure instead of pounds. Two grades, Sensitive and Extra Sensitive, known as Size 1 and Size 2.
No. 6 Trane Pressure-Vacuum " Gauges register to 30 lb. pres
sure and 18 in. vacuum. Also furnished to register to 30 in. vacuum only over entire scale. 4)4-in. face. J-in. pipe connec' tion.
No. 7 Trane Bellows-Type Radia* tor Traps have 14 corrugation bellows. These bellows are made without seams or joints of any kind. Trap bodies are made of. steam brass. Sizes and styles are as listed below. Guaranteed range is from 15 in. vacuum to 25 lb. pressure with out adjustment of any kind. These same traps are also available for high pressure service up to and including 125 lb.
No. 8 Trane Quick Vent Valves do
" the work of Float Vent Valves
(see No. 1). except that they are designed
to close against steam only. M-in. pipe
connection. Contain Genuine Trane
bellows.
'
No. 9 Trane Heavy Duty Blast Traps
" take the place of the bulky steam trap. They are used on blast coils and on large steam mains where a large amount of condensation is encountered.
No. 10 Trane 1-in. . Bellows Trap
" specified for Drip or Blast Trap service. Made with J4-in. bypass as
illustrated. Capacity at 1 lb. pressure difference is 1700 sq. ft. equivalent direct radiation. At 25 pounds, 8500 sq. ft. For large capacities use Trane 1M in. or 1)4 in. Heavy Duty Blast Traps.
TRANE HEATING SPECIALTIES
No 1 Trane Float Vent Valve vents " air but closes tightly against
steam and water. Capacity unlimited for practical purposes. Full M in. venting ports. % inch pipe connection only. Weight 4 lb. Contains genuine Trane bellows.
fi^Q 2 Trane Direct Return Traps " and broken boilers are never
found on the same vapor heating or straight steam job: Two sizes: 2,000 and 4,000 sq. ft. Multiples used for larger requirements.
Style
SIZES, CAPACITIES, ETC., OF TRANE RADIATOR TRAPS
Inches
Capacity in Sq. Ft. at Various . Pressure Differences
4 oz. 8 oz. 1 lb. 21b.
A
DIMENSIONS. INCHES
ELH
1
K
No. B2
Vi 125 175 245 344 i A 3!4 1* 5H 3>/4 i %
No. B3
3/4 375 525 735 1030
3% Ilk 5 K 3%
No. B4* 1
750 1050 1700 2200
3A
1 23 32
Made in angle pattern only. Write for information on Trane V/a' large capacity traps. Sizes conform to recommendations of Healing and Piping Contractors' National Association.
531
Specialties, Heating
ESTABLISHED 1888
WARREN WEBSTER & COMPANY
Pioneers of the Vacuum System of Steam Heating
Camden, N. J.
50 Branch Offices
Manufacturers of Webster Systems of Steam Heating and Webster System Equipment--More Than 37,000 Installations--Also Webster Feed Water.Heaters of Genuine Puddled Wrought Iron
Webster Products
Wbbsteb Vacuum and Modulation Systems or Steam Heating.
Websteb Stbtem Apparatus: Including Sylphon Traps; Diaphragm (No. 7) Traps; Modulation Supply Valve9; Sylphon Quick-opening Packless Valves; Dirt Strainers; Heavy-duty Traps; Double Service Valves; Water Accu mulators; Expansion Joints; lift Fittings; Suction Strainers; Vacuum Governors; Hy-Lo Traps and Controllers; Damper Regulators; Vent Traps and Vent Valves; Boiler Return Traps; Air Separating Tank, Feed-Water Heaters, WebsterLea Heater-Meters, Steam and Oil Separators.
Webster Service
Is an integral part of every Webster System delivered through 50 branch offices. Webster Service places the accurate, comprehensive information resulting from the extensive experience of this organisation at the disposal of heating engineers, architects and heating contractors.
Webcter Service in printed form includes STEAM HEATING, a useful manual of design; SERVICE DE TAILS, a loose-leaf service showing correct connections and saving a substantial amount of the designer's time; CATALOGUE BULLETINS describing Webster apparatus from the standpoint of the engineer.
Webster Vacuum Systems
Operate on exhaust or live steam at very low pressure. Used with direct radiation or in combination with blast coils or unit heaters. Particularly suited for large buildings or where process steam is used.
Webster Type "R" Modulation Systems
A low pressure steam heating system suitable for all types of buildings having little or no demand for process steam and a basement or other means for placing low pressure boiler below the lowest radiator. For installations from 500 to 32,000 sq. ft. of equivalent direct cast iron radiation. Can be operated safely and satisfactorily by unskilled labor.
Operation:--Steam pressure is controlled by the sensitive Webster Damper Regulator. Steam is admitted to radiators thru Webster Modulation Valves or Webster Sylphon Valves. Condensation and air are freely discharged past Webster Return Traps which close on contact with steam, thus avoiding waste. Air and condensation are carried to
the basement apparatus consisting of the Webster Boiler Return Trap and Vent Trap in combination. All air escapes thru the Webster Vent Valve. The Webster Boiler Return Trap provides positive equalization of pressure assuring return of water to boiler.
Webster Sylphon Packless Quick opening Supply Valves
Open with less than a turn of lever or wheel handle. Positively pack less, having flexible lami nated Sylphon bellows com pletely enclosing stem. Body of steam brass, com position disc, hard rubber
handle. Made in M to
lJ4"in.
Ask for Fig.t. Webster Sylphon Pack-
Bulletin 705-51.
<" Quiet-Opening Volte
Webster Modulation Supply Valves
Fig. S. Webster Modulation Supply Volte
Provide by means of the tapered modulating plug, close heat control of each radiator. Particularly well-suited for residence heating systems, as it per mits beating any desired portion of radiator. Sizes, H to \\i in. Ask for Bulletin 705-3.
Webster Sylphon
Traps
,
Effectively discharge all con densation and entrained air from radiators or coils without permitting passage of steam. Operation is by means of a sensi tive volatile liquid contained in a rugged Sylphon bellows. . Factory adjusted, and made in sizes from to IK in.
Ask for Bulletin 701.
Fig. 4-
Webster Sylphon Trap
Fig. 1. Webster Type "H" System Basement Equipment
Webster High Pressure Traps
Webster No. 78 series Thermostatic Traps provide an
effective means for draining condensation and air under
high pressure conditions.
Made in two classes for
service up to 100 lbs. per
sq. in. The cooperation
' of the Webster Sales
Engineering organization
is extended to all those
having high pressure Fig. 6. WAster High Pressure
drainage problems.
Trap, No. 78 Series
532
Stokers
Buffalo
CoKal Stoker Corporation
1010 Wrigley Building, CHICAGO, ILL.
Combustion Engineers
Kansas City
Representatives in
New York City
Philadelphia
and in all Principal Cities
Pittsburgh
St. Louis
PRODUCTS
CoKal Plain Hand Fired Stoker. CoKal Hopper Feed Stoker. CoKal Power Feed Stoker. CoKal CombustiKator for Low Pres
sure Boilers. CoKal Pulverzone Also'CoKal Hang-over Arch for H. R. T.
. Boilers; all standard types of Boiler Arches.
The "Pulverzone" undoubtedly rep resents the ideal method of burning coal, for it burns the fines in suspension and spreads the larger particles of coal accord ing to their weight over the entire grate area. Smokeless at all loads, it meets the strictest smoke ordinances.
The Pulverzone combines the three most approved methods of burning coal:
1-- PULVERIZED COAL BURNING
Instantaneous ignition of the fine particles in suspension without danget of explosion.
2-- SPREAD METHOD
(Light and Continuous) by automatically sep arating. grading and distributing of coal sizes by weight.
3-- COKING METHOD
The Standard CoKal Stoker fuel bed provides the intense heat necessary for burning the fines and the spread coal.
The outstanding features of the Pulver zone are--smokelessness; high efficiencies; quick response to load changes; large overloads; perfect combustion using stand ard screenings (wet or dry); no slagging; eliminates cleaning periods.
A blast passes through the curtain of coal, The Pulverzone is suitable for all boilers
carrying the fines into the furnace space from 100 to 2000 boiler horsepower. The
where they ignite in suspension. Eight CombustiKator is ideal for boilers of the
nozzles are arranged so that turbulence Kewanee firebox type. Ask for full
before, at and after ignition causes particulars about the five types of CoKal
intimate mixing of air and volatile with coal burning equipment.
very high combustion
efficiency and full utiliza
tion of furnace volume
in consequence. By dis
tributing coal particles
over fuel bed according to
their weight, the coarser
coal dropping down
directly in the coking
zone at front while the
lighter pieces pass toward
the rear, a porous fuel
bed of low resistance to
air supply is obtained
while holes in fire are pre
vented. Intensive combus
tion rates with low draft
become possible. Hand
PULVERZONE showing "turbulence before, at and after ignition"
cleaning is eliminated:
and general arrangement of fuel bed
533
Stokers and Automatic Furnaces
'IfeMggp
"FtXI^EY" Underfeed Stokers
`^OJVS" Underfeed Stokers
"HARRINGTON" Traveling Grate Stokers
"MURPHY"Automatic Furnaces
Pulverized Coal Installations
9 Neponset Street. WORCESTER. MASS.. U. S. A.
BOSTON CINCINNATI
NEW YORK CHICAGO
PHILADELPHIA ST PAUL
PITTSBURGH KANSAS CITY
BUFFALO DENVER
CLEVELAND CHARLOTTE
DETROIT OALLAS
Riley Engineering and Supply Co., Ltd., Toronto
COMBUSTION EQUIPMENT FOR EVERY NEED
Riley Stoker Corporation manufactures Riley Multiple-Retort Stokers, Jones Side Dump, Lateral Retort and Standard Stokers, Harrington Traveling Grate Stokers, Murphy Automatic Furnaces, and the Atrita Unit Pulverizer. These stokers are suitable for different types of boilers and can take care of large or small boilers burning anthracite coal, coke breeze, Eastern bituminous, Pittsburgh, Illinois, Indiana, Iowa
coals and lignites. Write for catalogues covering each of these types for your reference files.
Murphy Automatic Furnace
MURPHY AUTOMATIC FURNACE
The Murphy Automatic Furnace is of the overfeed, natural draft type and is particularly adapted for use in office buildings, hotels and schools. It saves 15 to 25 per cent over handfired methods, it saves labor, it is smokeless in operation, it does not emit gases to circulate up through the building. All ash and refuse are removed automatically. . This means a clean fire and high efficiency at all times. The Murphy Furnace does away with the necessity of opening fire doors and thereby eliminates the admission of cold air. The coal supply for the furnace is under absolute control and automatic regulation. It is a natural draft furnace and requires no fan or blower equip ment.
JONES SIDE DUMP UNDERFEED STOKER
The Jones Side Dump Stoker is of the
forced draft, underfeed type and is very widely
used for both heating and power loads in all
types of buildings thruout the country. It is
of the side cleaning type, ashes being dropped
into a shallow ashpit, permitting easy removal.
Only slight excavation is required for the two
shallow ashpits, therefore the installation cost
is low. The stoker gives high efficiency and
responds very quickly to load demands. It
has a fuel burning capacity of 1200 to 1800 lbs.
of coal per hour. This stoker is made in steam
driven type and also mechanically driven type.
Where bigger boilers are used Riley Stokers,
Harrington Traveling Grate Stokers. Atrita
Unit Pulverizers and Lateral Retort Stokers can
be used.
- '
Jones "Side Dump" Underfeed Stoker
THE DEPENDABILITY AND ECONOMICAL OPERATION OF RILEY STOKER CORPORATION EQUIPMENT PARTICULARLY ADAPTS IT TO HEATING REQUIREMENTS A few well-known Installations
Neil House. Columbus. Ohio
Blackstone Hotel. Chicago, 111.
.
Seventy-six Schools in Detroit. Mich..
Maxwell House, Nashville, Tenn.
University of Chicago, 111.
.
Sixteen Schools in Buffalo. N. Y.
Detroit Masonic Temple. Detroit. Mich.
Union Central Life Bldg., Cincinnati. Ohio
Statler Hotel, Detroit, Mich.
New Willard Hotel, Washington, D. C.
Gibson Hotel, Cincinnati. Ohio
Phoenix Hotel, Lexington, Ky.
Thirty-three Schools in Cleveland, Ohio
Intersouthern Life Bldg.. Louisville. Syracuse Hotel, Syracuse, N. Y. Ohio Masonic Home, Springfield, Ohio Wade Park Manor, Cleveland, Ohio Hamm Bldg., St. Paul. Minn.
Ky.
Highland Hospital, Rochester, N. Y.
Chicago & Northwestern Bldg.. Chicago..
111.
534
Temperature Regulation
Honeywell Heating Specialties Company
Wabash, Indiana
Manufacturers of Honeywell Temperature Regulators for Residential or other Heating Plants--Hot Water, Vapor, Steam, or Hot Air.
The Honeywell Tem
perature Regulator is an
automatic device which
opens and closes the
dampers of the heater
(any type) whenever the
room temperature varies
one degree from that for
which the Regulator is
set.
The Honeywell Tem
Fifteen-Day Jeweled perature Regulator has Balanced Clock but two parts, the ther
Thermostat
mostat and the motor.
The thermostat is placed
on an inside wall at some
central location and elec
trically controls the op
eration of the motor,
which is located near
and connected to the
heater. .
The automatic regula
Plain Pattern Thermostat
tion so effected insures a constant temperature,
day and night, minimum
fuel consumption and
maximum comfort and
health. The cost of op
eration, even with the
electric motor models, is
negligible.
The exclusive Honey
well Wall Plate is stand
Wall Plate Used on ard with all Honeywell
All Honeywell Thermostats
Thermostats. Its use simplifies installation to
such a point that the
novice mechanic finds
it easy.
The Regulator is
made in three types,
Gravity Motor, Spring
Motor, and Electric
Motor; and nine
models, three of each
New Type Electric Regulator Motor
type. The first model of each type is equipped with plain thermostat,
requiring manual adjustment for day and
night temperatures. The second model
of each type is equipped with one-day
clock pattern thermostat which auto
matically brings the room temperature to
the degree for which the Regulator is set,
at any predetermined hour. The third
model of each type is equipped with 15-
day automatic clock thermostat which
automatically regulates both the day and night temperatures, at any predetermined degree and hour, without manual adjust ment of any kind.
LIST PRICES--(Subject to Discount) Type DR, Electric Motor--15-Day
Jeweled Clock Thermostat............ $80.00 Type DS, Electric Motor--One-
Day Clock Thermostat................... 77.00 Type DQ, Electric Motor--Plain
Thermostat......................................... 70.00 Type SR, Spring Motor--15-Day
Jeweled Clock Thermostat............. 65.00 Type SS, Spring Motor--One-Day
Clock Thermostat.................. -........ 52.00 Type SQ, Spring Motor--Plain -.
Thermostat.......... .............................. 45.00 Type GR, Gravity Motor--15-Day
Jeweled Clock Thermostat........ 58.00 Type GS, Gravity Motor--One- .
Day Clock Thermostat....................-45.00 Type GQ, Gravity Motor--Plain Ml
Thermostat................--.................. -- 37.00
(Above prices include necessary installation materials).
Oil Burner Manufacturers and Dealers have long felt the need of and will appreci ate such a device as the Honeywell Type A Masterstat.
Designed for use with the intermittent type oil burner, it is a safe means against firing a dry boiler and in addition limits the jfressure or temperature of the heating plant to the desired point.
The Masterstat is applicable to steam, vapor, vacuum, hot water or warm air systems.
Details will be supplied upon request.
535
Temperature Control Equipment
Johnson Service Company
Milwaukee, Wis.
BRANCHES
ALBANY, N. Y.( 4 Ramsey Place
KANSAS CITY. MO.. 411 East Tenth Street
ATLANTA. GA.. 210 Bona Alien Building
MILWAUKEE. WIS., 149 Michigan Street
BOSTON, MASS., 31 Waltham Street
LOS ANGELES. CAL., 607 Van Nuys Bldg.
BUFFALO, N. Y,, 503 Franklin Street
MINNEAPOLIS. MINN., 922 Second Ave., South
DALLAS. TEXAS. 333 Fidelity Union Bldg.
NEW YORK. N. Y.. 28 East Twenty-ninth Street-
CHICAGO. ILL., 1355 W. Washington Blvd.
PHILADELPHIA. PA., 258 S. Van Pelt Street
CINCINNATI. OHIO. 1113 Race Street
PITTSBURGH. PA., 10 E. North Diamond St., N. S
CLEVELAND. OHIO. 2028 East 22nd Street
PORTLAND. ORE.. 404 Failing Building
DENVER, COLO.. 1230 California Street
SALT LAKE CITY. UTAH. 610 McIntyre Bldg.
DES MOINES. IOWA. 1118 Grand Avenue
SAN FRANCISCO! CAL.. 417 Rialto Building
DETROIT, MICH., 427 Brainard Street
SEATTLE, WASH., 473 Colman Building
..
INDIANAPOLIS, IND., 312 E. Ohio Street
ST. LOUIS, MO.. 14 North Twelfth Street
GREENSBORO. N. C., Daily News Building. P. O. Box No. 617
CANADIAN REPRESENTATIVE Johnson Temperature Regulating Company of Canada, Limited
OFFICES
CALGARY, ALTA, 605 Second Street. West
TORONTO. ONT., 147 Church Street
VANCOUVER. B. C., 550-6th Avenue. West
WINNIPEG. MAN., 259 Stanley Street
MONTREAL, 119 Youville Square
.
Products and Services
Engineers and Contractors for the Control of Temperature or Humidity for any purpose and over every range used in manufacturing' purposes or buildings, furnishing and installing:
Temperature Controlling Apparatus for any and all kinds of heating and ventilat ing systems.
Temperature Controlling Apparatus for any industrial process requiring the medium of heat.
Control of Humidity in industrial pro cesses requiring artificial humidity.
Temperature Control of hot water tanks
and all liquids.
'
Control of Temperatures of refrigerating and cold storage plants.
Thermostat Control of electric motors on automatic refrigerating machines.
Manufacturers of Thermostats and Other Apparatus for the Control of Temperatures and Humidity, including:
Pneumatic Room and Insertion Ther mostats and Humidostats.
Electric Room and Insertion Thermo
stats and Humidostats.
.
"Sylphon" Metal Diaphragm Valves.
High Grade Dampers of all Shapes and
sizes.
`
Low Pressure, Limited Capacity, Elec tric Air Compressors.
Low Pressure, Limited Capacity, Hy draulic Air Compressors.
Air and Water Reducing Valves.
Pneumatic Switches or Push Buttons.
536
Johnson Service Company
Temperature Control Equipment
Specific Applications of Temperature Control
Bake ovens for enamels, japans, etc. Core drying ovens. Drying room for paint, varnish, patent leather, etc. Storage room for tobacco, rubber or similar goods. Cold storage rooms, fur vaults, etc. Canning machinery, cookers, exhaus ters, processors. Corn and oats drying apparatus. Fruit drying apparatus.
Johnson All-Metal Thermostats
Every Johnson Thermostat is ALL METAL throughout, having no soft or hard rubber parts to deteriorate and become inoperative. Every thermostat exquisitly made and thoroughly tested for accuracy, efficiency and durability.
Johnson Positive Thermostat
Has a snap action for closing and open ing valves quickly, positively and fully, thereby assuring their durable and satisfactory opera tion. Has an indica tor showing at a glance whether the heat is "ON" or "OFF." Has a con venient means for shutting off the heat when desired.
Johnson Inter mediate Thermo
stat
Has all-metal Model Positive Metal movement, giving Diaphragm Thermostat true graduated motion to mixing dampers for "Blast Heating Systems", and, where desirable, can be used to operate steam valves on a "Vacuum Heating System."
Johnson Compound Thermostat
The Johnson All-Metal Compound Thermostat combines the feature of both the Positive and Intermediate and is applicable for control of valves or dampers where certain units are to be operated positively and others inter mediately at an interval of a few degrees in temperature.
Johnson Dual or Two-Temperature Thermostat
The Dual, or two-temperature Thermo stat provides for a daytime temperature (usually 70) and a night-time temperature (35 to 50), as desired, for all or some of the rooms in a building, simply by the manipulation of a single push button by the engineer or other person in authority. It is a factor for the greatest economy in school buildings, a number of rooms of which are occupied at night as well as day, and for any buildings in which some of the rooms are occupied only at certain times, such as churches, auditoriums, masonic temples and lodges.
Thermostat Covers The covers which conceal the thermostat proper are small, incon spicuous and very neat in design and workmanship.
There are two distinct styles: one called the R type and one called the P type.
The R type is a die-casting, very beautifully de signed and used generally in resi dences and other handsomely dec orated buildings.
Model R. /. Cover 4%"x2"xl}i" deep
The P type is a pressed metal cover, very finely finished but not as orna-
537
Johnson Service Company
Temperature Control Equipment
mental and artistic as the R cover, change frequently the adjustment to op
and used more generally in schools, office erate at different temperatures. It is
buildings, hospitals and places where simple and neat design is desired rather than artistic and ornamental.
operated by compressed air at 15 lb. per ' sq. in., and used to control temperatures
of liquids and air by automatically open
Johnson Pneumatic Insertion Thermostat
Designed to control temperatures with in closed air chambers or ducts. The
ing and closing a diaphragm valve or damper. Graduations made to meet re quirements, limited to a total range of 60 deg.
body of thermostat is a dust-proof case
containing the two working parts and extending outside the chamber.
This thermostat is made either positive or graduated acting.
Multiple Insertion Thermostat
Similar to the insertion duct thermo stat, excepting that one multiple thermo stat takes the place of a number of sepa
Applications
Adaptable for use
in bake ovens for
enamels, japans, etc.;
drying rooms for
paints, varnishes,
patent leather, etc.;
storage rooms for
tobacco, rubber or
similar goods; ster
ilizers or pasteur
izers; cold storage
rooms, fur vaults, etc.; refrigerator machine control; hu
Pneumatic Insertion Thermostat
midity control for
air washers; flue gas temperature con
trol; hot blast heating plants; combi
nation tempered ventilation and hot blast,
systems; greenhouses, turkish bath rooms,
etc.; tempered, ventilation for buildings.
rate duct
thermostats
set for dif
ferent tem
peratures.
The 4-point
multiple
thermostat
shown will
operate four
separate dia-
phrag m
valves at as
many differ
ent tempera-
r
tures. It has
Multiple Insertion Thermostat
become very popular with heating engi
neers for the control of heating and
tempering coils where it is desired to
have these coils turn on at different
temperatures. It is made to work with
positive action when controlling valves;
Johnson Calibrated Thermostat
with graduated action when controlling dampers; or with both positive and
This is an especially high grade insertion graduated action when controlling valves
thermostat for use where it is desired to and dampers.
538
Johnson Service Company
Temperature Control Equipment
Tank Thermostat
Humidity Control
Designed for insertion through 1-in. tapped hole in tank and controlling, in the case of hot water tanks, a diaphragm valve on the supply pipe to the steam coils in the tank. It can be used to control the temperature of any liquid, either hot or cold. It is especially adaptable for con trolling the temperature of water in hot water heating plants by its control of the boiler draft doors.
Humidostats and Humidifiers
The humidostat automatically controls the supply of moisture delivered to the air by a humidifier and maintains a con stant percentage of relative humidity. It operates a diaphragm valve on the steam coils in the pan humidifier. The pan is provided with float box to maintain constant water level and is located in the ventilating air duct leading throughout the building. Steam jet and water spray types of humidifiers are also furnished.
"Sylphon" Metal Diaphragm Valves
This valve
having an in
destructible 1-
piece metal
diaphragm, is
permanentand
requires no
repairs. Its
value for the
control of
steam is ob
vious and par
ticularly so in
connection
with steam
coils, radiators in wall boxes "Sylphon" Metal Diaphragm
where exces-
Valve
s i v e heat
would destroy rubber diaphragms.
The supplying of moisture to the heated air in buildings and the automatic control of the percentage of moisture in this air are recognized by authorities to be as important as maintaining proper tem peratures.
Pneumatic Switch Control
Remote valve and damper control
plays, by means of our pneumatic switches,
a very important part in the economical
operation of
the modern
heatingplant
especially in
schools. It
saves the
janitor'stime
for other
duties, and
makes it possible to ac
Pneumatic S-witch
complish re
sults in the operation of the heating plant
which can not be obtained in any other
way. It makes it easy to operate the
fresh air, return air and vent dampers,
with the corresponding assurance that
these dampers will be economically op
erated as intended by the heating engineer.
The following types of pneumatic
switches for different purposes and dif
ferent conditions are made:
.
Lever Handle Switch,
.
Push Button Switch,
Indicating Switch, to open and close dampers partially as desired.
Electro Pneumatic Switch, to open and close dampers automatically--with the starting and stopping of fan motors.
539
Johnson Service Company
Temperature Control Equipment
How to Specify
Furnish and install a complete system of automatic temperature regulation and humidity control, furnishing all neces sary thermostats, valves, dampers, hu midifiers, special devices, air compressors, piping and fittings, and labor of installing system, except setting valves and dampers in position--all in accordance with the following schedule and detailed speci fication :
Schedule--State the rooms to be con trolled and number of thermostats in each; the manner in which the tempered air, if there is any, is to be controlled; the manner in which the drafts of the boiler are to be controlled; and specify the manner of the control of any fresh air, vent or return air dampers, stating the location and number of switches.
Thermostats--Where the greatest economy of fuel and the most flexible handling of the heating system is desired specify the Johnson Dual or Two-Temper ature thermostat and that it shall operate at all times at one set pressure not less than 15 lbs. per square inch. If dual thermostats are not desired specify Johnson Metal Diaphragm Model Ther mostat, size, 4 x 2 x 1 in.; and state whether it is to have residence or school cover, indicating device, positive shut-off, and whether it is to be positive or inter mediate motion. Specify the number and kind of inserted thermostats.
Valves--Specify Johnson Metal Dia phragm Valve having the "Sylphon" Metal Bellows for its diaphragm. State whether valves are to be plain or nickelplated with or without unions; add: Valves to be placed in position by heating contractor.
Air Compressors--Specify kind of air compressor (steam, hydraulic, electric or power driven), requiring that the air com ' pressor shall be of sufficient size to operate the system, with a factor of safety not less than 3, and requiring that it be provided with all necessary governing devices, fit tings, gage, etc.
Humidostats--Specify Johnson Humidostat and Humidifier, stating the kind of humidifier, whether perforated steam or copper evaporating pan.
Dampers--Specify that dampers shall be made by the heat regulating contrac tor, but installed by the galvanized, iron contractor, and that dampers shall consist of wrought iron frames, sheet steel blades, strongly cleated, with brass bearings.
Guarantee--Require that system be complete in every respect, and that all necessary material and special fittings shall be furnished whether specifically mentioned or not. Require that entire system be guaranteed free from all orig inal defects in material and workmanship, and that any parts proving defective or wearing out within 2 years from date of completion shall be replaced free of charge. Require that thermostats shall operate the valves or dampers to which they are at tached, at a variation of not to exceed 1 deg. above or below any given point.
Contracting
This company contracts to furnish and install in complete working order the Johnson System of Temperature Control, including thermostats, valves, piping, etc., and gives annual inspection and prompt service to all plants constantly.
540
}
Temperature Control Equipment
Minneapolis Heat Regulator Company
Main Office--MINNEAPOLIS, MINN. Service Branches in Principal Cities
MANUFACTURERS OF TEMPERATURE CONTROL DEVICES
The standard line of Minneapolis Heat Regulators is for use in dwellings and buildings of all kinds, using fuel and heating plants of every type except power oil burners, which require the use of Minneapolis Series Ten Controls. All Minneapolis controls operate on a one degree change of temperature.
FOR DWELLINGS
The standard equipment for use in dwellings is the Minneapolis thermostat, equipped with either a one-day clock, or the eight-day, seven-jewel clock; the motor for operating the draft and check; and the limit control, which' operates independently of the room thermostat and acts as a secondary control and safety device.
FOR APARTMENTS AND LARGE BUILDINGS
The same equipment as described for use in dwellings is used in larger buildings and gives thoroughly satisfactory service in buildings of from ten to twelve stories or more.
CENTRAL PLANT STEAM
..
Where buildings are heated with central plant steam, a Minneapolis thermostat, equipped with either the one-day clock or the eight-day, seven-jewel clock, is almost invariably used. It controls the operation of the motor, which opens and closes the
steam valve. FOR OIL BURNERS
For oil burners, there are special controls known as the Minneapolis Series Ten. They include the Series 10 thermostats, relay, Protectostat, and Protectorelay and provide complete and unfailing control for every type of burner.
INDUSTRIAL USES
To control hot water boilers in residences, hotels, or large buildings; enamelling bake ovens, dry kilns; glue, chocolate or paraffin vats; refrigerating systems, etc.
DUAL CONTROL
The Model No. 65 and the Model No. 70 Limit Controls are used in connection with the thermostat. They operate independently of the thermostat, thus giving two sources of control, one working on the temperature at the heating plant and the other on the room temperature. They prevent over heating of the plant and building.
THERMOSTATS
These are made in several types: The Model No. 40, plain thermostat, no-clock;
The Model No. 47, with one-day clock; No. 77 with eight-day, seven-jewel clock, with
automatic day and night temperature change mechanism. These instruments are finely constructed,
operate on a temperature change of one degree from the point at which they are set. and will last indefinitely.
There is nothing to get out of order.
.
LIMIT CONTROLS
These controls are made in two types: The No. 65 is the temperature control for use
on hot water heating plants, domestic hot water supply, industrial processes, steam or
vacuum heating plants; standard scale is 100 to 240; standard extension of the tube 2"; on special order instruments can be furnished with ranges up to 490 and extensions up to 24".
The Model No. 70 is the pressure control for use on steam and vapor plants. The standard range is 0 to 10 pounds, but can be furnished with scales ranging as high as 125 lbs.
MOTORS
' Electric Motor: No. 24 A. C. requires no attention except occasional oiling; the transformer for supplying low voltage through the thermostat is built in. 6 volt D. C.
motor is for use when 110 volt A. C. current is not available. It operates from four dry cells which will operate it for one full heating system. Spring Motor:. Made to operate approximately one week with a single winding with normal use on coal burning domestic heating plants, equipped with safety switch so that in event of the motor being allowed to run down, the draft will always be left closed on the last opera tion of the motor. Gravity Motor: For use with domestic heating plants, using coal or coke as fuel; must be wound daily. It is equipped with a safety switch similar to that used on the spring motor.
Catalogs giving compute detailed information, including prices and trade discounts will be mailed free upon request.
541
Temperature Control Equipment
The Powers Regulator Co.
36 years of specialization in temperature control
GENERAL OFFICES AND FACTORY CHICAGO, ILL.
2719 GREENVIEW AVENUE
GENERAL EASTERN OFFICES NEW YORK, N. Y. 126 EAST 44th STREET
ATLANTA. GA. BALTIMORE, MD. BOSTON, MASS. BUFFALO. N. Y. BUTTE. MONT. CHARLOTTE, N. C. CHATTANOOGA, TENN. CINCINNATI. OHIO CLEVELAND, OHIO
BRANCHES AND SERVICE STATIONS
DENVER. COLO. DES MOINES, IOWA
NASHVILLE. TENN. NEW ORLEANS, LA.
DETROIT, MICH.
PHILADELPHIA, PA.
EL PASO. TEXAS
PITTSBURGH. PA.
HOUSTON, TEXAS
PROVIDENCE. R. I
INDIANAPOLIS, IND. KANSAS CITY. MO.
ROCHESTER, N. Y. ST. LOUIS, MO.
LOS ANGELES, CALIF. MILWAUKEE, WIS. MINNEAPOLIS, MINN.
SAN FRANCISCO, CALIF. SEATTLE. WASH.
THE CANADIAN POWERS REGULATOR CO.. LTD., TORONTO. ONT.
BRANCHES CALGARY, HALIFAX, MONTREAL. VANCOUVER. WINNIPEG
(3306a)
Products
Automatic Temperature Controlling Systems, applying them, under the super vision of Powers engineers, to the heating plants, new or old, in residences, offices, factories, schools, institutions, and to any other conditions of artificial heating where uniform temperature is desired.
Automatic Regulators for ACCU RATELY controlling temperature of Liquids, Gases and Air, Pressure Reducing Valves, High Pressure Steam Traps, Humidity Control Devices. Shower Mix ing Valves, Etc.
and perfection of finish; in size, as small as is consistent with the reliability so neces sary in such instruments; in operation, sure, with gradual or positive action, as conditions require.
Diaphragm radiator valves, diaphragm motors, mixing dampers and other equip ment are especially rugged in construction, dependable and durable; built regardless of expense, for efficiency and long service.
Motive power used in these systems is compressed air. The company builds its
Temperature Controlling Appliances
Powers thermostats are accurate in their working and will maintain their adjust ment. They are. of the vapor disc type, exclusive with Powers regulators, and are not thrown out of adjustment by extremes of temperature or long disuse. For over 35 years the accurate control obtained by this method has been the standard of thermostatic control by which all other methods are measured. In design, Powers thermostats are second to none in beauty
542
Type D Thermostat
The Powers All-Metal Radiator Valve
The Powers Regulator Co.
Temperature Control Equipment
Application of Powers Control to Combination (Split) System of Heating--Direct radiation supplies the heat; fan supplies warm air for ventilation. Thermostats control valves on radiators to maintain proper room temperature. Ventilating
coils are controlled by a thermostat placed in the fan discharge duct.
own air compressors, operated by steam, or electricity, and characterized by their reliability, noiseless operation, perfect control and long life.
Installations
Installations of Powers systems are invariably made by the company. At each branch office is maintained a com petent engineering and erecting force, sparing no expense to maintain the highest efficiency. Powers special devices, how ever, are easily installed by any engineer or contractor.
Prices
Price for Powers regulation covers the
system installed complete, and is only
named after a careful study of the require
ments. Our price is not lowest, but no
other system will be found so efficient and
economical. Customers are served with
the sole aim of getting results for them;
and experience shows that satisfactory
service from a temperature control
ling system is of much more impor
tance than its first cost.
Specifications
Heating systems, and the requirements for temperature control, vary widely in detail. Much of the dissatisfaction ex perienced with some systems of tempera ture regulation is due to the attempt to force a ready-made inflexible* system or device to meet special requirements, taking no account of the conditions peculiar to the situation to be treated.
For these reasons we believe special study should be given each case. We shall be glad to submit to any Architect or Engineer a detailed Specification, accom panied by a guaranteed price, to cover complete system of temperature control installed, the price to hold if specification is used. This guarantees full protection to the client against advantage being taken of a close specification. This com pany will gladly collaborate with Architect or Engineer in preliminary plans*. As specialists in temperature control, The Powers Regulator Company has unusual facilities for solving problems in this particular field.
543
The Powers. Regulator Co.
Temperature Control Equipment
Spring Adjustment
The Powers No. It Tank Regulator
Used on steam heated hot water service tanks in hotels, apartment buildings, offices, schools, shops, hospitals, factories, laun dries, etc. Because this regulator prevents overheated water, it saves fuel and pro longs the life of valves and packings. Self-operating; easily installed. Of great durability, guaranteed accurate and posi tive in action.
Flexible connection tube is 6 ft. long for sizes 134-inch and smaller; 8 ft. for 2-inch to 4-inch, inclusive; and 10 ft. for larger sizes. Additional lengths of tubing will be furnished at 30 cents net per ft. A net charge of $2.00 is made for flexible tubing shorter than standard.
Flanged valves will be drilled standard unless otherwise ordered.
In ordering, always give size of tank, steam pipe size, steam pressure, and tem perature wanted.
The spring type regulator is commonly used for this work, except in sizes larger than 4-inch, when the lever type is used. Smaller sizes will be furnished in lever type if preferred.
' The regulator will be furnished to operate at 160 deg. fahr., with adjust ability 20 deg. above and below that point, unless otherwise specified.
Specification
In connection with the (steam heated) hot water storage tank, furnish and install Powers No. 11 Tank Regulator with (_____ inch) standard valve with standard length of flexible tubing. Regulator shall maintain the temperature of the water at (......... deg.) with steam pressure at (......... lbs.-).
Note--Where installation is to control steam
coil and auxiliary coal burning heater, specify
No. 12 Regulator with chains, pulleys, .etc., for
the control of dampers on auxiliary heater (see
Bulletin No. 129).
.
For coal burning heaters without steam coils, use Powers No. 13 Regulator (see Bulletin No. 136).
For Dimensions, Prices, etc.. See Next Page
544
The Powers Regulator Co.
Temperature Control Equipment
THE POWERS No. 11 TANK REGULATOR--Prices and Principal Dimensions
Valve Size.............................. .Inches
'h
List Price (Standard Valve).
List Price (Monel Valve)...
Style of Body.......................
Material of Body.................
Dimension A........................ Inches
B........................ C........................
D......................... `
*60 . *70
Union ' Brass
1 10
5A` 11
y.
*65 *76 Union Brass 1 10 6 II*
1
$70 *82 Union Brass 1. 12 6% IIM
1'/.
$75 $90 Union Brass 1 14 6H u%
t'/i
$80 $98 Union Brass 1 14
m I2K
2
$90 *113 Screwed . Iron
1 16 8 I4
*95 $122 Screwed Iron
1 16 9
15)*
Valve Size.............................
List Price (Standard Valve). List Price (Monel Valve)... Style of Body...................... Material of Body................. Dimension A.........................
B......................... C......................... D........................
3
$100 ' $130 Screwed Iron
1 18 9)* I5X
3'/2
$110 *145 h ianged Iron
I 20 10!* 15H
45
$120 $160 ' Flanged Iron
1 20 I0K
I5H
*175
Hanged Iron i'/. 20 12 2IH
6
*225
Hanged Iron i'/. 20 13H 23
8
*275
1* Ianged Iron i'/. 24 I6H 24
A Self-Operating Regulator for Control of Compartment Temperatures Between 60 Deg. and 100 Deg. Fahr.
The Powers No. 18 Regulator shown above is a self-contained unit, not as sensi tive in operation as the air pressure types but inexpensive and capable of good general control between the limits of 60 deg. and 100 deg. fahr., where such control can be obtained by the operation of a single valve regulating the heat supply. The control of this valve is gradual and an efficient return line vacuum system is essential.
This regulator is used in shops, offices,
warehouses, storage rooms, low tempera
ture drying rooms, small ventilating units,
greenhouses, etc.
.
It is easy to install and is very DUR-
ABLE. Gives true gradual control. By changing the position of the adjusting weight, different temperatures over a 20 deg. fahr. range at the thermostat may be secured.
The flexible connecting tube may be of any length up to 75 feet or with the smaller valves 100 feet, and is usually of lead closely armored with galvanized steel wire. Armored copper tube can be furnished where conditions of vibration require its use, as in the control of fan ventilating units.
Standard flexible lead connecting tube of 50 feet will be sent unless otherwise speci fied; excess if any, can be coiled up near
. 545
The Powers Regulator Co.
Temperature Control Equipment
-CONDENSATION RETURN
HE*T SUPPIV
Powers No. 18 Regulator applied to Direct Heating System
valve or damper motor. Additional tube length will be furnished at 20 cents net per foot.
For control of ventilating units or under other conditions of vibration, copper tube,, armored, must be used instead of lead-- . such armored copper tube will be fur nished at an extra net charge of 20 cents
per foot for first 50 feet, and 30 cents per
foot for excess.
.*
Always specify desired operating tem perature and steam pressure, and state whether latter is constant or fluctuating.
Bulletin 145 gives complete infor mation.
PRICE LIST AND SHIPPING WEIGHTS OF No. 18 REGULATOR AND VALVE COMPLETE
Size
Price--Low Pressure___ Price--High Pressure... Shipping Weight (Lbs.).
Vi'
$50 60 45
3/*'
*55 65 48
1' i'/.' Vi'
$60 *65 *70 70 75 80 50 55 60
2"
I'/i"
3'
y/i'
V
$90 $i25 $145 *175 $185 65 no 120 160 170
No. 15 Regulator, self-contained, for the con trol of. drying rooms, dry kilns, ovens, etc. Bul letin No. 138.
Dial Thermometers for air ducts and hot .water tanks. Accurate, easy to read, reasonably priced. Bulletins No. 140 and No. 155.
- High Pressure Steam Trap, % inch and H inch sizes only, for pressures from 5 lbs. to 125 lbs. Used on restaurant fixtures, hospital sterilizers, heating coils, cooking kettles, etc. Bigger capacity than any other trap its size. Acts quickly, closes tight. Gives years of dependable service without replacement of thermostatic element. Bulletin No. 115.
Hospital Sterilizer Control Valve--Makes sterilizer noiseless and saves steam. Bulletin
No. 122.
Thermostatic Steam and Water Mixer-- Automatically heats cold water with high pressure steam and delivers warm water at any temperature up to 120 deg. fahr. Bulletins No. 137 and No. 137-A.
Style D Steam and Water Mixer--Small, non-thermostatic mixer; supplies warm water for wash sinks, shower baths, and processes requiring a low cost warm water supply. Safe against scalding, easy to install, noiseless. Heats only the amount of water desired at the time. Capacity 10 gals, per min. with 40 lbs. pressure on supply lines. Bulletin No. 137-A.
Pressure Reducing Valve for steam, air and water. Simple, durable, accurate. Bulletin No. 118.
Complete set of bulletins describing the entire Powers line will be sent upon request.
546 .
Valves
The Dole Valve Company
1913-1933 Carroll Avenue, CHICAGO, ILL. Manufacturers of High Grade Radiator Valves and Brass Specialties
WVENTING 5EAT-
THE DOLE SYPHON AIR VALVE
(7)VALVE CASING
(non adjustable, automatic)
For venting low pressure steam radia
C2)5EATING PIN
tors. Fully guaranteed for five years. It
has the Venting Seat (1) of heavy con
(3) FLOAT-
struction, threaded and brazed into the
valve casing. The Seating Pin (2) of
finely machined hard metal is hydraulically
DINNER CHAMBER
pressed to a perfect radius, while the
OF FLOAT
Float (3) is of light but strong annealed
brass, which rises when water enters the
(5) DIAPHRAGM
valve, positively preventing leakage. The
Inner Chamber of Float (4) contains the
fo) FLOAT
proper amount of thermostatic liquid which forms a powerful gas when steam
comes in contact with the float,
thus the diaphragm is expanded and
the valve closed against the escape
of either steam or water. The
Diaphragm (5) is made from special
spring bronze, convex in shape and cor-
rugated. The Float Rest (6) is one
piece of finely drawn brass open on four
sides to permit water to drain
through the syphon, and the Valve Casing
(7) of beautiful dodecagon design,
fashioned from finely drawn heavy brass
presents an attractive exterior and
at the same time forms perfect air channels
inside the valve. The Base (8)'of
heavy drawn brass threaded on the interior
to meet exterior threading on the
casing is firmly brazed to insure great strength and d..u...r.a...b..i.l.ity. The Connecting,, Nip. p. le
(9)--one piece of extra heavy drawn brass has in. standard iron pipe thread, which
conforms to the requirements of all radiators. A Syphon Lock Collar (10) made from
extra heavy brass firmly brazed to the syphon prevents either accidental or intentional
removal of the syphon from the valve. (Note, the valve can be. removed from the
radiator without the syphon becoming detached). The Syphon (11)--one piece of
annealed brass tubing, is perfectly formed to fit inside the radiator column. Assembled
into the vaive free from obstruction, thus preventing interference when the
valve is attached to the radiator. Regarding the finish, the entire valve is
finely nickel plated, of an artistic design and highly polished. A real
"beauty" and it works.
List Price........................... .................................... :.......$1,50
THE DOLE STRAIGHT SHANK QUICK VENT AIR VALVE
For quick venting the ends of steam mains, specially useful for venting hot water generators and low pressure feed water heaters where a straight shank valve is required. Made from similar material, constructed in like manner and operates on the same principle as the Dole Syphon Air Valve. Made in two sizes--Y arid Y in.
List Price................ ........................................................$2.00
547
Valoes
Jenkins Bros.
Manufacturers of Valves and Mechanical Rubber Goods
80 White Street NEW YORK. N. Y.
PRINCIPAL STORES AND OFFICES
524 Atlantic Avenue
133 North 7th Street 646 Washington Boulevard
BOSTON. MASS. , PHILADELPHIA. PA.
CHICAGO. ILL.
. Factories in ELIZABETH, N. J. and BRIDGEPORT. CONN.
JENKINS BROS., LIMITED
Canadian Works and Head Office: Montreal., Qub., 103 St. Remi Street London Office: 6 Great Queen Street, Kingsway, W. C. 2
The New Modulating Valve--with a vertical seat
. A notable improvement over present day modulating valves lies in Pig. 700 Jenkins Modulating Valve which has a vertical instead of a
horizontal seat, affording these particular advantages: (1) Foreign matter cannot lodge on seat and prevent tight closing of.
Fig. 700% Jenkins Modulating Valve
(2) vSatelvaem. enters at top and condensation drains out at the bottom .of
the seat--an important feature when valve is used on a one-pipe system, because flow of steam is not retarded by the return of
condensation. Gurgling, water-hammer and shock are avoided. (3) Vacuum is under disc holder, which is fitted with Jenkins Rubber
' Composition Disc, with a tendency to draw disc to the seat. Spring holds disc against seat. Seating and tightness do not depend on threaded spindle that needs to be turned down tight to
prevent leakage.
'
This valve cannot leak around spindle. Handle of red Bakelite does'
noMt gaedtehootf, bwroillnnzeo,t cnricakceklopr lcahteipd., $ inch size, suitable for 100 square
feet of radiation. The center to end dimensions conform to the recom mendations of Heating and Piping Contractors National Association and Manufacturers Standardization Society. Write for Bulletin 105
for complete details.
.'
PRODUCTS Jenkins Globe, Angle, Cross, Check, Hose, Blow-Off, Safety and Gate Valves: Radiator Supply Valves: Automatic Radiator Air Valves^
Also, Rapid Action Valves; Steam Traps; Gage Cocks; Marine Valves, Needle Valves--Valve Discs; -Jenkins '96 and Jenarco Sheet Packing, Gaskets, Pump Valves; Compressed Asbestos.
Joisting; and Moncrieff Scotch Gauge Glasses.
RADIATOR VALVES Regularly furnished with black composition wheels, or, if
deLsiorecdk, wshitiehldbrovanlzvee,sw, itroe obreiroopnewrahteeedls.with key, designed to prevent tampering, can be supplied in all the different patterns.
Corner valves are made in two patterns--regular and offset.
Fig. 180. Bronze Offset Corner,
Radiator with Union
Regular styles of finish follow: Rough body, finished trimmings. No. 1 screwed, No. 6 with
Finuinshioend. and polished all over. No. 2 screwed. No- 7 with uni^on. Rough body, nickel-plated trimmings. No. 3 screwed, No. 8 with
Rouungiohnb. ody, nickel-plated all over. No. 4 screwed. No. 9 w_ith
Finuinsihoend. and nickel-plated all over. No. S screwed, No. 10 with
union.
CATALOG
A catalog of all the Jenkins valves, giving sizes, styles and list prices, mailed on request.
Fig. 861, Bronze Radiator
Gate, Screwed
Fig. 168.. Radiator Angle,
with Union .
Fig. 170, ' Bronze Lock Shield
Radiator Angle,
with Union
Fig. 148, Iron 'Body Globe,
Flanged
548
Fig. 826,
Iron Body Gate, Screwed
Fig. 870. Bronze Gate,
Screwed
Valoes
Pierce, Butler & Pierce Mfg. Corp.
!
41 East 42nd Street
NEW YORK CITY
i . Factories
Eastwood and Oswego. N. Y.; Huntingdon, Pa.; Zanesville, Ohio
Branch Offices
Baltimore. Md. Boston, Mass. Brooklyn. N. Y. Cleveland,[.Ohio
. Detroit, Mich. Dover, N. J.
. Jacksonville. Fla. Newark, N. J.
Washington, D. C.
New London. Conn.
Providence, R. I.
New York. N. Y.
Roanoke, Va.
Philadelphia. Pa.
Savannah, Ga.
Pittsburgh, Pa.
Syracuse, N. Y.
Worcester, Mass.
Radiator Valves, High Pressure Valves, Hot Water Valves, Hot Water . Thermometers, Pressure and Altitude Gages
1
'i
j
Fig. 186. Angle Valve with Union (With Genuine Jenkins Bros. Disc)
A Newly Designed PIERCE PACKLESS VALVE for Vapor, Water or Steam
This new addition to the Pierce Packless used. The handle is of the mushroom
( line of Radiator Valves made by the type made of Bakelite, beautifully pol
Pierce, Butler & Pierce Manufacturing ished, which is a perfect heat insulator,
Corporation, is an especially compact and insuring against discomfort in manipulat
pleasing pattern. It is generously pro ing the valve. Lever handle on modulating
portioned and embodies the best attainable valve if desired.
j;
in point of material and workmanship.
It is made in the angle type only, both
plain and with modulating dial and but
ton, in sizes J4.to 2 in., inclusive.
.
The body is sturdy in its proportions, and consequently is not likely to be injured or distorted in the process of installation. The nickel plating is un
Genuine Jenkins Brothers discs are usually heavy and substantial.
549
Valois
Marsh Valve Company
Plant and General Offices: DUNKIRK, NEW YORK
Exclusive Sales Distributors:
APPLETON & LIPTROTT, INC., 1480 Broadway, New York City
- Edward T. Hetherington, 1718 Sansom Street, Philadelphia, Pa. -
United States Radiator Corporation, . General Offices, Detroit, Mich-
Ail territory east of West lines of Michigan and Ohio and north of Virginia, except New York and Philadelphia
John W. Mabbs. 431 S. Dearborn Street, Chicago. Ill,
Jas. P. Marsh' & Company, 118 S. Clinton' Street, Chicago, III.
'
All territory south of Ohio Riper and west of Michigan and -Ohio, except Cook County, Chicago, 111.
We specialize on high-grade Radiator Valves and make the largest line of
anTyhceorme-epnafnoryceidnptahceklewssofrelda.ture o.f our Packiess and Modulated lines both steam an.d water
and the upper seat features of our Union Bonnet, Special and Gate lines are distinctive, scien
tific, mechanical principles, used with these lines exclusively.
MARSH RE-ENFORCED PACKLESS RADIATOR VALVES .
Oval Wheel or Lock Shield
All sizes'and patterns
Globes, Angles Corner and Back Offsets
Flat-Disc
.
.
, ' Fig. IS8
We call particular attentions the scientific mechanical construction of the. Re-enforced Cone. Metal Packless Feature of our Modulated and' Packless Valves. ' These are the only Packless Valves in which the Packless feature is re-enforced or in any way protected against leakage due to wear or cracks of so-called
Packiess parts and are GUARANTEED against wear or defects of Packless construction and leakage
through bonnets.
. QUICK OPENING
A three-fourths turn will fully open a three-quarter inch valve, and from this up to one and one-quarter
turns for balance of line through two inches. These valves, account of low pitch of thread due to large
diameter of cylinder, will seal and lock against any pressure.
MARSH RE-ENFORCED MODULATED LEVER HANDLE RADIATOR VALVES
These Valves
may be hadwith
Oval Wheel
in place of
Lever Handle
same as Fig. 139
Flat-Disc The Modulation or Graduation is accomplished by a double cone disc nut, regulating volume of steam, according to pressure, until indicator registers valve about two-thirds open, when lower cone on disc nut is brought into use and the further turning of lever handle until indicator registers open, will give full valve capacity; a feature of material value in a valve in which.volume or capacity for modulating purposes is choked down, and to meet extreme weather conditions, full pipe capacity is required.
550
Marsh Vahe Company
Valoes
MARSH RE-ENFORCED PACKLESS CONE DISC RADIATOR VALVES
Oval Wheel or Lock Shield
These Discs will not crack or leak
through valve seat.
No clogging or water hammer
from return condensa tion
Fig. 141
Marsh Cone Discs are without question the greatest improvement in radiator valve construction in the past fifty years or. since the composition disc replacing the old style metal-to-metal disc and seat.
This Cone Disc construction combined with the Marsh Re-enforced Packiess Feature is the last word in completing radiator valve maximum efficiency at popular price, all of which will check 100 per cent true upon investigation.
% in. Full Size
Positive Seal
The above views showing cone disc and beveled seat are to actual size of a % in. valve ancl are made to full size to show the following advantages of this construction over the old style flat disc and seat:
First: Through design of disc and protection afforded from disc nut covering
under surface they will not warp and crack as will a flat disc which overhangs
valve seat.
.
. 551
Marsh Valve Company
Valves
Second: The compression is at right angles to face of seat, forcing disc com pound inward to center, making disc more compact and harder instead of scoring and extruding over seat, opening cracks or seams if any, as with a flat disc.
Third: While the life of these cdne discs because of construction, as proven by tests, is three to five times the life of a flat disc, and a CRACKED DISC fS IMPOS SIBLE, the matter of exchange if desired is very simple, as to remove disc nut the disc will drop from disc-holder, while with a flat disc it must be dug out, often destroying disc-holder. Further, these cone discs are reversible and can be turned over or replaced with new at the same cost as for a flat disc.
' Fourth: The beveled seat is low in valve body, giving perfect drainage and will wash free from sand or scale in system, positively providing against leakage through scale or grit imbedding in disc AS IS COMMON with a raised flat seat and flat disc construction.
Fifth: Through this low beveled seat, to return condensation through valve for a one-pipe system, the flow will hold to the outer wall leaving center of valve throat and pipe free rather than shoot out over a raised seat to the center of pipe as is common with a heavy flow over a flat seat, clogging flow of steam, causing hammer . or pounding of system.
The foregoing are all, each and every one, practical points which will prove out in test and practice. Positively a better valve at a less cost than can be had from any other source.
MARSH RE-ENFORCED MODULATED CONE DISC RADIATOR VALVES
Oval Wheel,
Lever Handle or Lock Shield
Fig- H7
The Modulation feature of our Cone Disc Line is the same as with Our union bonnet flat disc Figure 131.
Our Cone Disc Modulated valves unless otherwise ordered are fitted with Oval Wheel, the same as our Graduated Water valve, Figure 139.
With our Oval Wheel Handle you have the same dial and indicator control as with Lever handle and a much stronger and more serviceable CONSTRUCTION than is possible with a Wood wheel as this composition won't break or split as will wood.
Further, this wheel is removable and interchangeable with our Lever handle, effecting a material advantage to customer in matter of convenience of changing from one to the other on job if for any reason change is desired.
552
Marsh Valve Company
Valves
MARSH RE-ENFORCED PACKLESS WATER RADIATOR VALVES
Oval Wheel or Lock Shield
A Genuine Pack less Water Valve
Guaranteed to hold any pressure
required for 'forced
vcirculation
Packless
Fig. 137
Marsh re-enforced packless Hot Water Radiator Valves are not only a boon but the
answer to hot water heating problems, permitting the same ease of operation and com
plete temperature control as with steam.
.
These hot water valves are quick opening, can be operated--opened, and closed--
with perfect ease by a child and positively will not stick or leak.
They will hold high pressure suitable for forced circulation up to any pressure radia
tion will stand, and cost no more than the cheap competition valves.
MARSH RE-ENFORCED GRADUATED WATER RADIATOR VALVES
Oval Wheel, Lever Handle or Lock Shield
Water Graduated
'-
SOMETHING ENTIRELY NEW IN WATER HEAT REGULATION
We have made a special study of hot water heat regulation and control and are pioneers in the matter of individual radiator control, through a graduated valve, em
ploying the same principle as with steam. If you can modulate, graduate, or regulate individual radiator vapor or vacuum steam heat through a valve (and you can), then
why not by the same principle regulate water heat, and, for that matter more consistently than steam, as with water you have something to regulate, while with steam, to allow fire to drop below a given point, you have nothing.
For sleeping rooms, heat regulation with the Marsh Graduated water valves may be
controlled with the same ease of operation and certainty of results as is possible with a
Modulated valve on a steam system, and at a much less cost than for a vapor or vacuum
system installation.
_
Further, water circulation for each radiator, graduating for same or balancing of
system, can be increased from nothing to full pipe capacity and held or locked at any intermediate point, if desired, by simply turning dial so that stop on same will register against indicator or pointer and locking dial in this position, preventing further opening of valve or turning of wheel or lever handle to the left.
These valves cost but little more than our regular water valves and much less than steam modulated valves.
553
Ventilators
The John Call Company
VENTILATING SPECIALISTS
128 North Franklin Streep
PHILADELPHIA, PA.
BRANCHES IN ALL PRINCIPAL CITIES
ROOF VENTILATORS AND WINDOW VENTILATORS
tjberty^-
Products
The Liberty Ventilator. A roof ventilator for any type building or enclosure, such as Schools, Hospitals, Foun dries, Barns, Churches, Armories, Residences and similar structures.
Also highly efficient for
increasing draft in chimneys, flues, stacks,
etc. Back drafts impossible, regardless of
wind conditions. Rain or snow cannot
penetrate. No moving parts to ra'ttle or
require attention. Substantially and'
staunchly built of any metal desired;
Large stocks for prompt shipment.
.
The Pul-Air Impingement Ventilator
The Pul-Air Ventilator
A good practical roof ventilator of the mushroom type, consisting of a double cone top. Scientific storm band and im pingement band. Made in every size and of any metal. Strongly built. Large stocks carried. Will not back draft; maximum of free areas.
THE LIBERTY VENTILATOR
LIBERTY VENTILATOR Cood architectural lines and symmetry
ANATOMY OF LIBERTY VENTILATOR-- showing, positive venturi action. White arrows^ indi-
cate outside winds. Black arrows foul air being
Pulled out
Embraces all four principles of scientific ventilation:--1st, Impingement; 2nd, Positive and Negative sides of Ventilators; 3rd, Siphonage; 4th, Stack
Action. A positive and complete venturi action.
.
The Liberty Ventilator combines the principles of siphonage and air impingement.
This in conjunction with the positive and negative sides of the ventilator creates a
vacuum to which the air is naturally sucked regardless of the direction of the wind.
Stack action, also, is so accommodated as to accelerate this movement. The free areas
of the Liberty ventilator create no resistant constant. Send for copy of tests
conducted by Carnegie Institute of Technology, and Massachusetts Institute
of Technology. Mechanical and Engineering Data, Service Talks, Catalogues and Prices gladly sent
on request.
554
Ventilators
Royal Ventilator Company
415 Locust Street
PHILADELPHIA, PA.
Manufacturers of Ventilators and Exhaust Heads
PRODUCTS:
Royal Double Cone Ventilators of Galvanized Steel, Copper, Toncan Metal, Armco Iron, Etc., Glass Top Ventilators; Rectangular and Square Ventilators; Fire-retarding Ventilators; Smoke-jack
and Combination Ventilators; Insect and Bird-proof Ventilators; Steam Exhaust Heads.
The Royal Double Cone Ventilator is designed to produce maximum ventilating efficiency. The Royal will give effective ventilation during adverse weather conditions; at all times an upward draft is
maintained. Schools, hospitals, theatres, also fac tories, power-houses and. foundries are among the types of buildings effectively ventilated with the Royal. The Royal is 100 per cent efficient.
The principles that have made Royals superior:
Patented Trade Mark Reg. U. S. Pat. Offi.ce
1. Double Tapered Outer Frus tums.--The wind pressure de flected over and under the edges of the frustums constitutes a strong up draft.
.2 The Inverted Cone.--Placed di
rectly in the center of ascending air, which on striking it is deflected directly upward and outward.
3. Radiating Ribs in the Cones.--
These prevent the air from swirl "ROYAL" Rectangular Ventilators, made to any desired size
ing around, and also add to the
Glass or Metal Top, for Schools, MMs, etc.
firm construction.
4. Strenght and Rigidity.--Edgewise galvanized malleable iron braces, lapped seams, wired edges.
5. Graceful Design.---Efficient, Faultless, Storm-proof.
Send for Catalogue.
Dimensions and Technical Information
Vent Size Inches
10 12 14 16 18 20 24 28 30 34 36 40 42 . 46 54 60 66 72
Cu. Ft. Exhaust _per Minute, Wind. 5 Miles per Hour
Temperature Difference in Building and Outside
0 20
141
159 306 388
490 606 874 1186 1364
1765 1961 2424 2673
3489 5414
6665 7851
10682
186 417
426 512
832 9/1
1373
2080
2390 2987 3361
41 it
4680 5987
8304 9721
13346 16910
Height Inches
12 13 15 17 16 21 24 26 26 23 28 34 34 39 42 47 52 54
Outside Diameter
Inches
Area
16 78 19 113 22 164 26 . 201 29 255 31 314 39 453 45 615 45 707 50 908 56 J0I7 61 1257 68 1386 75 1809 84 -- 2390 94 2807 103 3504 108 4071
Cauge Iron
Ounces of Copper
24 24
24 24 24 24
22 20 20
20 20 20
18 and 20 16 and 20 18 and 20
18
18 18
-
16 16
16 16 16 16
18 18 18 18 "18
20 20 20
20 24 24
24
555
Index to
Technical Data Section
(Pages 1-296)
CROSS REFERENCE TO SUBJECTS IN CHAPTERS T-XXVI ALPHABETICALLY
LISTED
Alphabetical Index to Technical Data Section
A Page
B Page
Air
199 Back unit system, with return
65
amount of new
202
changes
23
changes, number of
202
circulation, effect of
49,
cleaning of
255
conditioning and cooling
249
conditioning, definition of
249
conditioning, use of refrigeration
in 251
cooling
217
distribution
199,204,211
Bacteria
211
Building, heat losses from
5
insulation of
187,195
insulation, resistances of
196
materials, conductivity co-efficients
for 13
warming-up by recirculation
205
Burner control gas automatic oil automatic
184 184 183
drying, principal losses in
264 Boiler
59
duct, construction of for mechanical
connections
59
draft
288 demand for heating up
49
ducts, design and construction of 239
heating
107
sizes of
241 rating
108
filters, rating of flow of in ventilators
friction of in ducts handled by forced draft humidifying of leakage leakage, calculation of . measurement of flow
method of taking
248 Boilers
107
292 code for testing low pressure steam
241 heating
115
287 cross connecting coal and gas 175
255 steam and hot water
107
24 steam method of testing
115
28 type of
107
244
213 C
ozone and mixtures of percentage of recirculation pressures and velocities of dry processing recirculation of
269 Capacities of ventilators
206 240
Capacity of return risers-
261 Carbon dioxide
205 method of sampling
292
65
.211 214
required by mechanical draft fan 287 Ceiling coils
46
required for ventilation supply supply duct supply, hospitals and hotels supply per person
202 Central station heating control auto
199 matic
185
150 202
Chain grate stokers
287
202 Chart, use of friction
242
supply, schools and theatres
202 Chimneys, construction of
153
supply systems
synthetic chart
.
temperature
types of washers and filters
228 Chimney sizes
112
209 199
Coal boilers, cross connecting with gas 175
245 Coal, burning with mechanical draft 285
velocity at different pressures and
Co-efficients conductivity for building
temperatures
240 .
materials
13
velocity, effects of on losses from
surface for various building materials 12
insulated surface
192
velocity, effects of on surfacelosses 191
velocity in exhaust and selecting
system
275
- velocity, standard in public buildings 239
washers and filters
255
washers, rating of
248
washers, steam requirements for 247
Coils cold wall and ceiling
251 . 251
46
Collecting hood, air handled by
278
Combustion chamber designed for oil
fuel
164
Comfort chart
224
washers, temperature control in 179
examples of use
224
Analysis of flue gas
287 how to use the
. 216
Apparatus
174 Comfort
gas and coal burning orsat ratings of ventilation
174 conditions of maximum-
209
287 effective temperatures for maximum 210
201 how humidity and air motion affect 215
Appliances, gas heating--rating of Application of fans
173 227
how relation of temperature and .
humidity affect
216
Atmosphere, vitiated
197 Compartment dryer
262
Automatic heat control in industry 185 Cgnductivities of insulating materials 190
558
Alphabetical Index to Technical Data Section
Conduits heating important installation in styles and construction
.
Page
192 192 192 193
Dust count, method of taking effect on ventilation removal
Page
211 214 206 247
Connection method of for boilers
'
. 59,175
E
method for vacuum pump and feed
water heater pump and receiver 132
grinding and pumping wheel
276
wood working machinery
276
storage tank
74
typical kitchen and hospital equip
ment
74
typical for vapor and vacuum
system
71
Economical thickness of insulation
Elbows, frictional resistance of
Equipment classifications of ventilating dryer, design of ozone, capacity of
Exhaust and collecting systems design
191
280
201 201 263 270
277 274
Continuous dryer
Control applications of automatic automatic type of double thermostatic temperature and humidity
Coolers design of pipe conduits
Cooling air conditioning and coil and spray
262
179 179 177 184 246
282 282 193
249 249 255
F
Fans
air delivered by
233
application of in heating and venti-
,
lating
227
mechanical draft
285
mechanical draft, air handled by 287
mechanical system of
227
selecting for exhaust system
279
Filters and air washers
245
Fittings lift
134
Flow of steam in pipe
60, 66
D Definition, warm air furnace
Flue gas analysis
143 venting
287 287 234
Design, duct systems rules for
239
Dewpoint, definition of >
250
Direct-indirect radiators temperature
control automatic
181
Distribution, air
211
Draft importance of mechanical oil burner installation
111 111 285 168
Drawings, standard symbols for
3
Drum dryer
262
Drying
.
air required for
classes of
high temperature
methods of
steam required for 1
261 263 261 261 261 264
Duct
'
air supply
design and construction of air
forced draft
heating and ventilating
losses in system
material for
noises in
recirculating
rectangular sizes of .....
suction hints on
150
239 288 241 241 243 239 150
241 243
Forced draft
286
Friction head, curve for
80-81
Friction in round pipes
241
Frictional resistance of elbows
straight conveyor pipes
280 280
280
Fuel
168
oil construction
168
oil for industrial and domestic
heating
163
oils, data on
164
requirements for gas heating
174
sampling
117
F urnace
143
heating
143
performance
152
size of
151
standard code for regulating in
stallation
157
G
Gas
175
boilers cross connecting with coal 175
combustion of
_ 169
consumption, average heating
174
flue, analysis
.
287
heating
169
heat value and efficiency
170
heating appliances insulation of 173
heating appliances, types of
169
559
Alphabetical Index to Technical Data Section
H Page
Head, pressure and friction
77
Health, effects of ventilation per
fection
209
Heat
177
automatic control of
177
automatic control in industry
185
by single column radiators
35
control automatic in industry
185
emission of pipe coil
46
losses from building
5
losses from bare surfaces
187
losses from insulated surfaces
189
losses from surfaces exposed to air
velocity
191
sources
29
transfer of, in air conditioning
251
transmission, calculation for losses 21
transmission co-efficients of
9
transmission, doors and partitions,
wood
19
transmission, effect of humidity on 48
transmission, floors and ceilings 18
transmission from wall construction 16
transmission, rate of through in
sulation
189
transmission, roof
19
transmission through windows
18
Heaters
173
rating gas
173
tempering, temperature regulation
. of
179
Heating
1
appliances, types of gas
169
boilers, code for testing low pressure
steam
115
by radiation
33
central plant, by gas
172
central station temperature control 185
conduits
192
ducts for and ventilating
241
forced circulation hot water
85
fuel requirements for gas
174
gas 169
green house system
89
hot water service automatic' tem
perature control
183
insulating of gas appliances
173'
oil fuel for
163
plant, chimney size for
112
pipe sizes, steam
55
warm air furnace
143
warm air, temperature control of 182
season
1
steam system
53
system, hot water
75
Height, capacity at various pitches 69
Hood construction required
277
Hot water
183
heating, temperature control
183
radiators, automatic temperature
control
181
Page
Humidity
215
air motion and effect on human
comfort
215
control of temperature and
246
effect of on heat transmission
48
effect of high temperatures and 204
I
Indirect
33
Induced drafts, types of
286
Industrial heating, oil for
163
Industrial plants, unit system of
heating
236
Infiltration calculations for
22 28
Installation of air ducts
243
Insulated surfaces
192
effects of air velocity on losses from 192
heat losses from
189
Insulated tile conduits
193
Insulation
191
economical thickness of
191
for piping in buildings
187
importation installation
192
proper thickness for maximum
saving
190
resistances of various buildings
196
value of
187
variation with pipe size of rates of
heat transmission
189
L
Leader pipe, capacity of Lights, heat given up by Losses in duct system
144 29, 30
241
M
Material drying temperature of insulating conductivities of
Measurement of air
Mechanical stokers Mechanical draft value of
Moisture, removal of
263 263 190
244
288
285
263
O.
Odors
211
Oil burners, control automatic
183
Oil '
168
combustion of
168
fuel data on
164
fuel for industrial and domestic
heating
163
storage tanks for
166
One-pipe steam system
54
Ozone
capacity of equipment
chemical properties of
composition of
.
265 270
266
265
560
Alphabetical Index to Technical Data Section
concentration of deodorizing germicidal properties of
physical properties of uses of use of in ventilation ventilating unit
Page
269 267 267 265 272 265,270 271
R
Radiating surface of pipes
189
Radiation calculating conversion factors
direct for various room temperatures four column heat emission of--cast iron
heat emitted by heating by
hospital hot water pipe coil for steam andhot water selection of single column three columns two columns wall window
33 33 42
33 47 38 43
35 33
39 43 46 34 35 37 36 40 41
Radiator connections
65
for indirect
.73
typical connection for steam system 71
Radiator warming the
49 49
Radiators
49
effect of enclosing
49
direct-indirect temperature control
of 181
effect of painting
49
effect of position
51
hot water temperature control of 181
specifications for
52
Rating of air washers and filters
248
Rating gas heaters
173
Recirculation, arrangementsfor
air for
.
percentage of air used in
205 202 206
Refrigeration, ammonia vapor re
quired one ton
258
Register, warm air
149
Registers, recirculating
151
Relative humidity
199
Ratings gas appliances
172
Research, residence warm air
154
Resistance, factors in exhaust and
collecting system
279
Resistance frictional of straight con
veyor pipe
280
Resistance to air flow
244
Return main, capacity of
65
Page
Return risers, capacities of
65
Risers, effect of reaming entrance to 68
Riser connection, expansion
70
Risers, water supply
99
Roof insulation
196
Room temperatures, control of
179
Room temperatures, radiation for
47
Rotary dryer
262
S
School ventilation recirculation unit system for
207 207 235
Sectional conduits
193
Semi-direct radiators
33
Spray dryer
-262
Sprays, cold
251
Stack sizes
113
Standard code for installation of
warm air furnaces
157
Standard symbols for drawing
3
Steam
65
capacity of pipe for various veloci
ties of
65
flow of in pipe
60, 66
pressure losses with low pressure 62
Steam heating, pipe sizes for
55
Steam heating system
definition of for humidification
required for drying requirements for air washers
53
53 247
264 247
Surface losses, effects of air velocity on 191
Surface of pipe, radiating
190
System
246
air supply
228
automatic regulation of tempera
ture and humidity
246
blow through
227
capacity of pipe for two-pipe steam 64
design of furnace
144
draw through
228
efficiency of exhaust and collecting 279
exhaust and collecting
273
fan for heating and ventilating
227
gravity hot water
79
green house heating
89
hot water open and closed _
76
indirect air required for
229
losses in ducts
241
of ventilation
227
pipe sizes for vacuum
65
piping for hot water heating
75
plan for heating and ventilating 227
steam heating
53
steam one-pipe and two-pipes
54
typical connection for hot water 78
unit
233
561
Alphabetical Index to Technical Data Section
Page
unit ventilating temperature con
trol of
181
vacuum and vapor
56
warm air furnace heating
144
water supply and piping
99
Synthetic air chart how to use typical example for use
209 209 212
T
Tank installation of oil storage oil storage
166 166 ' 166
Temperature
177
and wind velocity
8
automatic regulation of
177
breathing line
6
drying
263
effect of high and humidity
204
heat and humidity control
246
how humidity and air motion
. affect human comfort
215
inside
5
outside
6
water
90
Temperatures radiation for room
47 47
Temperature regulation, automatic
applications of
179
Testing
115
code for low pressure steam heating 115
standard form for reporting boiler
tests
118
Thermostats
double control location of
177
184 180
Transmission co-efficients, computa
tion of heat
10
heat
9
Transmission heat, effect of humidity on
48 48
Transmission losses, heat calculation for 21
Tunnel dryer
262
Two-pipe steam system
54
Types of gas heaters
171
U
Unit heaters, location of types of
236 237
V Vacuum pump, motor driven Vacuum system Valves, results of tests on Vapor system
137 56 69 56
Velocity air, effects of on surfacelosses air for mechanical draft
Page
191 191 287
Ventilating
227
fan system for heating and
227
ducts for heating and
241
temperature control automatic for
unit system
181
Ventilation
air circulation in
air supply for
.
bacteria
classifications of
cooling in summer
definition of
effect of
effect of dust on
effectiveness of
equipment, five classifications for
measurements of
natural
old theories discarded
operation of system important
percentage of perfection
presence of odors
. present status of
quality vs. quantity
requirements, typical case of
school auditorium
school house
'
summer conditions, effect of
systems of
unit system for heating and
197
205 202
211 201 205 197 198
211 200 201
209 289 198 208 200 211 199 198 203 207 203 204
227 233
Ventilators
289
Ventilator application of capacities of classification of design of location of regulation of air flow resistance to air flow
296 296 298, 292 289 290 294 295 291
W '.
Wall coils
46
Wall construction, heat transmission
from
16
Wall stack capacity of
^
146 147
Warm air heating, automatic tem
perature control of
182
Warm air registers .
149
Water flow
99
Water, gallons required for cooling 252
Water supply, formula
104
Water supply, hot
105
562
Index to Modem Equipment
American Society of Heating and Ventilating Engineers Guide 1926-27.
AIR COCKS (S Cocks, Air)
ASBESTOS AND INSULATING PRODUCTS
New York Blower Co. Pecco, Inc.
AIR CONDITIONING
American Blower Co.
Atmospheric Conditioning Corp.
Badger, E. B., & Sons Co.
.
Bishop & Bab<x>ck Sales Co., The
Buffalo Forge Co.
Celotex Co. Hays Corp., The Johns-Manville, Inc. National Radiator Co.
Ric-wil Co. Universal Gypsum & Lime Co.
Sturtevant. B. F,, Co. Westinghouse Electric & Mfg. Co. Wing, L. J., Mfg. Co. York Heating & Ventilating Corp.
BOILER -- Compounds (See Compounds, Boiler)
Call. John, Co., The
ASBESTOS--Sheet
Carrier Air Conditioning Corp. of America
Johns-Manville, Inc.
Controllers (See Controllers)
Carrier Engineering Corp.
Clarage Fan Co. Cooling and Air Conditioning
AUTOMATIC FURNACES (See Furnaces, Automatic)
Coverings (See Asbestos and Insulating Products)
Corp. Cooling Tower Co. . Drying Systems, Inc. Grinnell Company, Inc. Ilg Electric Ventilating Co.
Langenberg Mfg. Co.
BAKING EQUIPMENT Drying Systems. Inc. Westinghouse Electric & Mfg. Co.
BLAST GATES (See Gales, Blast)
Feeders
Kieley & Mueller, Inc. McAlear Mfg. Co. McDonnell & Miller
Midwest Air Filters, Inc. Modine Mfg. Co.
BLOWERS--Centrifugal
Feed Pumps (See Pumps)
Herman Nelson Corp. New York Blower Co.
Pecco, Inc.
American Blower Co. Buffalo Forge Co. Clarage Fan Co.
Headers (See Headers) . Liquid
Reed Air Filter Co., Inc. Skinner Bros. Mfg. Co., Inc. Spray Engineering Co. Sturtevant, B. F.. Co. Wing. L. J., Mfg. Co. York Heating & Ventilating Corp.
AIR COOLERS American Blower Co.
Ilg Electric Ventilating Co.
Nesbitt, John J., Inc.
New York Blower Co.
O-E Specialty Mfg. Co.
Pecco, Inc.
Skinner Brothers Mfg. Co.
Sturtevant, B. F., Co.
.
Westinghouse Electric & Mfg. Co.
York Heating & Ventilating Corp.
No Rad Rust Corp. O-E Specialty Mfg. Co. Vinco Co. "X" Laboratories .
Protecting Devices
Hoffman Specialty Co. McDonnell & Miller Marsh, Jas. P., & Co..
.
Aerofin Corp. Cooling Tower Co.
Modine Mfg. Co.
Fan
American Blower Co. Bishop & Babcock Sales Co., The
Neptune Meter Co. Trane Co.. The
U. S. Radiator Corp.
AIR DIFFUSERS (See Diffusers, Air)
Clarage Fan Co.
Honeywell Heating Specialties Co. Ilg Electric Ventilating Co.
Scale Remover (See Scale Re mover, Boiler)
AIR DRYING (See Drying Ap paratus)
Langenberg Mfg. Co.
Modine Mfg. Co. Nash Engineering Co.
BOILERS--Furnace Heat CoKal Co.
. AIR ELIMINATORS (See Elimi
nators, Air)
'
Nesbitt, John J., Inc. New York Blower Co.
Pecco, Inc. Sturtevant, B. F., Co.
Heating (Automatic Heat) Newport Boiler Co.
AIR FILTERS (See Filters. Air) Westinghouse Electric & Mfg. Co. Heating (Coal Fired)
AIR PUMPS (See Pumps. Air)
AIR TESTING INSTRUMENTS
American Blower Co. Hays Corp., The Hill, E. Vernon, Co.
.
Wing, L. J., Mfg. Co. York Heating & Ventilating Corp.
Forced Draft
American Blower Co. Buffalo Forge Co. Clarage Fan Co. Sturtevant, B. F.. Co. Wing. L. J.. Mfg. Co.
.
American Radiator Co.
Ames Iron Works Ironton Bernhard Boiler Co. Bigelow Co.. The Burnham Boiler Corp. Continental Heater Corp.
Fitzgibbons Boiler Co., Inc. General Boilers Co. Harrisburg Star Boiler Corp.
AIR VALVES (See Valves, Air)
AIR WASHERS
American Blower Co. ,
'
Atmospheric Conditioning Corp.
Badger, E. B., & Sons Co.
Bishop & Babcock Sales Co.. The
Buffalo Forge Co.
Call, John, Co., The
Pressure
.
American Blower Co.
Buffalo Forge Co. Clarage Fan Co. Ilg Electric Ventilating Co.
Nash Engineering Co. New York Blower Co.
Sturtevant, B. F., Co. Wing, L. J., Mfg. Co..
Hart & Crouse Co. Heggie-Simplex Boiler Co. International Heater Co.
Kewanee Boiler Co. Lebanon Boiler Works
National Radiator Co. Newport Boiler Co. Niagara Radiator & Boiler Co.
Oil City Boiler Works Petty. J. K., & Co., Inc.
Carrier Engineering Corp. Clarage Fan Co.
'
Turbine
.
Cooling and Air Conditioning American Blower Co.
Corp.
Wing, L. J., Mfg.- Co.
Page, Win. H., Boiler Co. Pierce. Butler & Pierce Mfg. Corp. Prox. Frank, Co. Reading Heater & Supply Co.
Cooling Tower Co.
Richardson & Boynton Co.
Ilg Electric Ventilating Co.
Ventilating
Richmond Radiator Co.
Midwest Air Filters, Inc. New York Blower Co.. Reed Air Filter Co.. Inc. Spray Engineering Co. Sturtevant, B. F., Co.
AMMONIA COILS (5 Coils, Ammonia)
American Blower Co.
Bishop & Babcock Sales Co-, The
Buffalo Forge Co. Clarage Fan Co. _ Ilg Electric Ventilating Co.
Langenberg Mfg. Co. Modine Mfg. Co. Herman Nelson Corp.
Smith, H. B., Co. __ Spencer Heater Co. ^ Thatcher Co., The .
Titusville Iron Works
U. S. Radiator Corp. Universal Smokeless Boiler Co.
Utica Heater Co.
Weil-McLain Co.
563
Index to Modern Equipment
Heating (Gas Fired)
American Radiator Co. Ames Iron Works Ironton Bernhard Boiler Co. Bigelow Co., The Burnham Boiler Coro. Continental Heater Corp. Fitzgibbons Boiler Co., Inc. General Boilers Co. Hart & Crouse Co. Heggie-Simplex Boiler Co. Kewanee Boiler Co National Radiator Co. Neptune Meter Co. ' Newport Boiler Co. Niagara Radiator & Boiler Co. Oil City Boiler Works Page, Wm. H.. Boiler Co. Pierce. Butler & Pierce Mfg. Corp. Prox, Frank, Co. Richmond Radiator Co. Spencer Heater Co. Titusville Iron Works U. S. Radiator Corp. Universal Smokeless Boiler Co.
Heating (Oil Fired)
American Radiator Co. Ames Iron Works Ironton Bernhard Boiler Co. Bigelow Co., The Burnham Boiler Corp. Continental Heater Corp. Fitzgibbons Boiler Co., Inc. General Boilers Co. Harrisburg Star Boiler Corp. Hart & Crouse Co. Heggie-Simplex Boiler Co. International Heater Co. Kewanee Boiler Co. Lebanon Boiler Works Newport Boiler Co. Niagara Radiator & Boiler Co. Oil City Boiler Works Page, Wm. H., Boiler Co. Petty, J. k., & Co., Inc. ' Pierce. Butler& Pierce Mfg. Corp. Prox, Frank, Co. Richmond Radiator Co. Smith, H. B.. Co. Spencer Heater Co. Sturtevant, B. F., Co. Titusville Iron Works U. S. Radiator Corp. Universal Smokeless Boiler Co. Utica Heater Co. Weil-McLain Co.
Tubular
Ames Iron Works Bigelow Co., The Burnham Boiler Corp. Fitzgibbons Boiler Co., Inc. Harrisburg Star Boiler Corp. Heggie-Simplex Boiler Co. Kewanee Boiler Co. Lebanon Boiler Works Oil City Boiler Works Petty, J. K., & Co., Inc. Pierce. Butler & Pierce Mfg. Corp. Spencer Heater Co. Titusville Iron Works
BRACKETS (See Hangers, Pipe and Radiator, and' Radiator
Brackets)
BREECHINGS
Pierce, Butler & Pierce Mfg. Corp.
BURNERS--Oil (For Heating Boilers and Furnaces)
American NoKol Co. Automatic Burner Corp. Ballard Oil Equipment Co. Johnson. S. T., Co. Winslow Boiler & Engineering Co.
CABINETS--Furnace Art Metal Radiator Cover Co.
Heat Bridgeport Rolling Mills, Inc. Herman Nelson Corp. Trane Co.
CALORIMETERS--Steam Ellison, Lewis M.
CEMENT--Asbestos (See Asbestos and Insulating Products)
Fire Brick Johns-Manville, Inc.
Pipe Joint Grinnell Company. Inc. Johns-Manville, Inc:
Water Proof Johns-Manville. Inc.
CENTRIFUGAL DRYERS (See Drying Apparatus)
CLEANSER. BOILER AND HEATING SYSTEM
No Rad Rust Corp. Vinco Co. "X" Laboratories
COAL SAVER American Blower Co. Combustion Specialties Corp. Hays Corp., The Minneapolis Heat Regulator Co. O-E Specialty Mfg. Co.
COCKS--Air Bishop.& Babcock Sales Co., The Mueller Co.
Boiler Drain Mueller Co.
Boiler Supply Mueller Co.
Gage Bishop & Babcock Sales Co., The Jenkins Bros. Marsh, Jas. P.. & Co. O-E Specialty Mfg. Co.
COILS--Ammonia Badger. E. B.. & Sons Co. Grinnell Company, Inc. Whitlock Coil Pipe Co.
Blast . Aerofin Corp. American Blower Co. American Radiator Co. Modine Mfg. Co. New York Blower Co. Rome-Tumey Radiator Co. Stickle Steam Specialties Co. York Heating & Ventilating Corp.
Pipe American Blower Co. Badger. E. B.. & Sons Grinnell Co.. Inc. Whitlock Coil Pipe Co. York Heating & Ventilating Corp.
Tank Badger, E. B., & Sons Kewanee Boiler Co. Whitlock Coil Pipe Co. York Heating & Ventilating Corp.
COLLECTORS, DUST (See Dust Collectors)
COLUMNS--Water
American Radiator Co. Oil City Boiler Works Page, Wm. H., Boiler Co. Titusville Iron Works
COMPOUNDS--Boiler
No Rad Rust Corp. O-E Specialty Mfg. Co. Richardson & Boynton Co. Vinco Co. "X" Laboratories
COMPRESSORS
Bishop & Babcock Sales Co., The Nash Engineering Co. O-E Specialty Mfg. Co. Powers Regulator Co. Sturtevant, B. F.. Co. Trane Co. Worthington Pump & Machinery
Corp.
CONDENSERS
Alberger Heater Co. Buffalo Steam Pump Co. Carrier Engineering Corp. Frank, O. E.. Heater & Engi
neering Co.. Inc. Westinghouse Electric & Mfg. Co. Whitlock Coil Pipe Co. Worthington Pump & Machinery
Corp.
CONDUIT--Underground
Johns-Manville, Inc. O-E Specialty Mfg. Co. Ric-wil Co.
Control Equipment
Absolute Con-tac-tor Corp. American Radiator Co. Honeywell Heating Specialties Co. Johnson Service Co. Minneapolis Heat Regulator Co. Powers Regulator Co.
CONTROL SWITCHES (See Switches, Control)
CONTROLLERS--Boiler
Absolute Con-tac-tor Corp. American Radiator Co. American Schaeffer & Buden berg Corp: * Davis, G. M., Regulator Co. Hays Corp.. The Honeywell Heating SpecialtiesCo. Kieley & Mueller, Inc. Klipfel Mfg. Co. McDonnell & Miller Powers Regulator Co. Sarco Co., Inc. Stickle Steam Specialties Co. Taylor Instrument Companies
Electric Heat
Absolute Con-tac-tor Corp.
'
American Radiator Co.
Hays Corp., The
Johnson Service Co.
Minneapolis Heat Regulator Co.
Powers Regulator Co.
Taylor Instrument Companies
Westinghouse Electric & Mfg. Co.
Fan Engine
American Blower Co. Clarage Fan Co. Kieley & Muller, Inc. Klipfel Mfg. Co. Mason Regulator Co. McAlear Mfg. Co. Mueller Co.
564
Index to Modern Equipment
Feed Water
American Radiator Co. .
American Schaeffer &-Buden-
berg Corp.
Davis, G. M., Regulator Co.
Hays Corp., The
Kieley & Mueller. Inc.
McAlear Mfg. Co.
McDonnell & Miller
O-E Specialty Mfg. Co.
Sarco Co.. Inc.
Stickle Steam Specialties Co.
Taylor Instrument Companies
Motor
Absolute Con-tac-tor Corp. American Radiator Co. Economy Pumping Machinery * Co. Hays Corp.. The Mason Regulator Co. Taylor Instrument Companies Trane Co. Westinghouse Electric & Mfg. Co.
Pump
Absolute Con-tac-tor Corp. American Radiator Co. Buffalo Steam Pump Co. Chicago Pump Co. Davis, G. M., Regulator Co. Economy Pumping Machinery
Co. Kieley & Mueller, Inc. Klipfel Mfg. Co. Mason Regulator Co. McAlear Mfg. Co. O-E Specialty Mfg. Co. Stickle Steam Specialties Co. Westinghouse Electric & Mfg. Co. Yeomans Brothers Co.
Shower Bath -
Mueller Co. Powers Regulator Co.
Tank
Absolute Con-tac-tor Corp.
American Radiator Co.
American Schaeffer & Buden-
berg Corp.
.
Davis, G. M., Regulator Co.
Hays Corp., The
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
Mason Regulator Co.
McAlear Mfg. Co.
Powers Regulator Co.
Sarco Co., Inc.
Stickle Steam Specialties Co.
Taylor Instrument Companies
Temperature (See Regulators, Temperature)
CONVEYING SYSTEMS (See Systems, Dust Collecting and Ex haust)
COOLING EQUIPMENT-- Building
American Blower Co. Atmospheric Conditioning Corp. Call. John. Co.. The Carrier Air Conditioning Corp.
of America Carrier Engineering Corp. Cooling & Air Conditioning Corp. Cooling Tower Co. Drying Systems. Inc. Sturtevant, B. F., Co.
COOLING TOWERS Buffalo Forge Co. Carrier Engineering Corp. Cooling Tower Co. Spray Engineering Co.
Cooling Ponds Spray Engineering Co.
COUPLINGS Mogul Machine Co.
COVERING--Boiler (See Asbes tos and Insulating Products)
Magnesia Johns-Manville. Inc.
Pipe and Tank Johns-Manville, Inc. Ric-wil Co.
DAMPER--Quadrants York Heating & Ventilating Corp.
DAMPER REGULATORS (See Regulators, Damper)
DEHUMIDIFYING APPARA
TUS
American Blower Co.
Atmospheric Conditioning Corp.
Buffalo Forge Co.
Call. John. Co., The
Carrier Engineering Corp.
Clarage Fan Co.
Cooling and Air Conditioning
Corp.
Cooling Tower Co.
*
Drying Systems, Inc.
Modine Mfg. Co.
New York Blower Co.
Pecco. Inc.
Reed Air Filter Co.
Skinner Bros. Mfg. Co., Inc.
Spray Engineering Co.
Stickle Steam Specialties Co.
Sturtevant, B. F., Co.
DIFFUSERS--Air
Carrier Engineering Corp. Knowles Mushroom Ventilator
Co. Spray Engineering Co. Sturtevant, B. F., Co.
DRAFT GAGES (SeeCages, Draft)
DRYING APPARATUS
American Blower Co. Atmospheric Conditioning Corp. Bishop & Babcock Sales Co.. The
Buffalo Forge Co. Call. John, Co.. The Carrier Engineering Corp. Clarage Fan Co. Cooling and Air Conditioning
Corp. Drying Systems. Inc. Economy Pumping Machinery Co.
Ilg Electric Ventilating Co. Langenberg Mfg. Co. Lebanon Boiler Works Modine Mfg. Co. New York Blower Co.
Pecco, Inc. Petty. J. K., & Co., Inc. Skinner Bros. Mfg. Co. Stickte Steam Specialties Co. Sturtevant, B. F., Co.
Wing. L. J., Mfg. Co. York Heating & Ventilating Corp.
DUST COLLECTING SYSTEMS (See Systems, Dust Collecting)
DUST COLLECTORS
American Blower Co.
Buffalo Forge Co.
Call, John. Co., The
Carrier Engineering Corp.
Cooling Tower Co.
Midwest Air Filters, Inc.
New York Blower Co.
Pecco, Inc.
Skinner Bros. Mfg. Co., Inc.
Spray Engineering Co.
Sturtevant, B. F., Co.
York Heating & Ventilating Corp.
DUST COUNTERS Hill, E. Vernon, Co.
.
DUST FILTERS
Cooling Tower Co. Drying Systems, Inc. Duro Air Filter Co. Midwest Air Filters. Inc. Reed Air Filters Co., Inc. Spray Engineering Co.
'
DUST SEPARATORS (See Sep arators, Dust)
ELBOWS--Radiator
American Radiator Co. Burnham Boiler Corp. Fulton Co. U. S. Radiator Corp.
ELECTRIC MOTORS (See Mo tors, Electric)
ELIMINATORS--Air
Badger, E. B., & Sons Co. Bishop & Babcock Sales Co.. The Call, John, Co., The Dunham, C. A., Co. Hoffman Specialty Co., Inc. Marsh, Jas. P.. & Co. McAlear Mfg. Co.
Monash-Younker Co.. Inc. Mouat Vapor Heating Co. New York Blower Co.
O-E Specialty Mfg. Co. Pecco, Inc. Royal Ventilator Co. Sarco Co.. Inc. Skinner Bros.. Mfg. Co. Sturtevant, B. F., Co. Trane Co.
ENGINES--Fan
American Blower Co. Buffalo Forge Co. Clarage Fan Co. New York Blower Co. Sturtevant, B. F., Co.
Steam (Automatic, . High Speed,
Throttling, Una-Flow, and Ver tical)
American Blower Co. Ames Iron Works Clarage Fan Co. Pierce, Butler & Pierce Mfg. Corp. Sturtevant, B. F., Co. Titusville Iron Works
EXHAUST FANS (See Pans. Ex haust)
EXHAUST HEADS
Buffalo Forge Co.
Call. John. Co., The-
Illinois Engineering Co.
Kieley & Mueller, Inc.
McAlear Mfg. Co.
-
Patterson-Kelley Co.
Pecco, Inc.
Royal Ventilator Co.
Skinner Bros. Mfg. Co., Inc.
Sturtevant, B. F., Co.
565
Index to Modern Equipment
EXHAUST SYSTEMS
American Blower Co. ' Buffalo Forge Co. Call. John, Co.. The Carrier Engineering Corp. Clarage Fan Co Cooling and Air Conditioning
Corp. Ilg Electric Ventilating Co. New York Blower Co. Pecco, Inc. Skinner Bros. Mfg. Co., Inc. Sturtevant, B. F., Co. Wing. L. J., Mfg. Co. York Heating & Ventilating Corp.
EXPANSION JOINTS (See Joints. Expansion)
FANS--Blower (See Blowers, Fan)
Booster
Furnace International Heater Co. Langenberg Mfg. Co.
Pipe Grinnell Company, Inc. International Heater Co. Westinghouse ^Electric & Mfg. Co.
FOG ELIMINATORS American Blower Co. Carrier Engineering Corp. Ilg Electric Ventilating Co. Modine Mfg. Co. Wing, L. J., Mfg. Co.' York Heating & Ventilating Corp.
FOUNDATIONS Korfund Co., The Cork Foundation Co.
Compound
American Schaeffer & Budenberg Corp.
Hoffman Specialty Co., Inc. Trane Co.
Pressure
American Schaeffer & Buden-
berg Corp.
.
Bishop & Babcock Sales Co., The
Dunham, C. A., Co.
Hays Corp., The
Marsh, Jas. P., & Co.
Mouat Vapor Heating Co.
O-E Specialty Mfg. Co.
Pierce. Butler & Pierce Mfg. Corp.
Taylor Instrument Companies
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Steam
American Blower Co. Honeywell Heating Specialties Co.
Exhaust
American Blower Co. Bishop & Babcock Sales Co., The Buffalo Forge Co. Clarage Fan Co. Ilg Electric Ventilating Co. Lar.genberg Mfg. Co. Herman Nelson Corp. New York Blower Co. Pecco. Inc. Skinner Bros. Mfg. Co., Inc Sturtevant. B. F.. Co. Westinghouse Electric & Mfg. Co.
Wing. L. J., Mfg. Col York Heating & Ventilating Corp.
Ventilating
American Blower Co.
Bishop & Babcock Sales Co., The
Buffalo Forge Co.
Call. John. Co., The
Clarage Fan Co.
Ilg Electric Ventilating Co.
Langenberg Mfg. Co.
New York Blower Co.
O-E Specialty Mfg. Co.
Pecco. Inc.
,
Skinner Bros. Mfg. Co.. Inc.
Stickle Steam Specialties Co.
Sturtevant, B. F., Co.
Westinghouse Electric & Mfg. Co.
Wing, L. J., Mfg. Co.
York Heating & Ventilating Corp.
FEEDERS (See Boiler Feeders)
Boiler ` Kieley & Mueller. Inc.
McDonnell & Miller
Water Kieley & Mueller. Inc. McDonnell & Miller
FURNACES--Automatic
New York Blower Co. Sanford Riley Stoker Co.
Boiler CoKal Co.
Electric Westinghouse Electric & Mfg; Co.
Pipeless
Hart & Crouse Co. International Heater Co. Langenberg Mfg. Co. New York Blower Co. Thatcher Co.. The Utica Heater Co.
r
Smokeless CoKal Co.
Warm Air
Hart & Crouse Co. International Heater Co. Langenberg Mfg. Co. . New York Blower Co. Sturtevant, B. F.. Co. Thatcher Co., The Utica Heater Co.
GAGE--Boards
American Schaeffer & Budenberg Corp.
Bishop & Babcock Sales Co., The
Dunham, C. A., Co. Hays Corp.. The ' Marsh, Jas. P., & Co. Warren Webster & Co.
Cocks (See Cocks, Gage) Glasses (See Glasses, Gage)
American Radiator Co. American Schaeffer & Buden-
berg Corp. Dunham, C. A., Co. Hoffman Specialty Co. Marsh, Jas. P., & Co. O-E Specialty Mfg. Co. Pierce. Butler & Pierce Mfg. Corp. Taylor Instrument Companies Trane Co. U. S. Radiator Corp. Warren Webster & Co.
Vacuum
American Radiator Co. American Schaeffer & Buden-
berg Corp. Bishop & Babcock Sales Co., The Dunham, C. A., Co. Hoffman Specialty Co. Illinois Engineering Co. Marsh, Jas. P., & Co. O-E Specialty Mfg. Co. Pierce, Butler & Pierce Mfg. Co. Taylor Instrument Companies Trane Co. U. S. Radiator Corp. Warren Webster & Co.
Water
American Radiator Co. American Schaeffer & . Buden-
berg Corp. Marsh, Jas. P.% & Co. National Radiator Co. Pierce, Butler & Pierce Mfg. Co. Taylor Instrument Companies U. S. Radiator Corp.
Furnaces (See Furnaces, Gas)
Heaters--Room (See Heaters,Gas)
Heating Systems (See Heating Systems, Gas)
FILTERS--Air
American Blower Co. Call. John, Co., The Cooling Tower Co. Drying Systems, Inc. Duro Air Filter Co. Midwest Air Filters, Inc. Herman Nelson Corp. Reed Air Filter Co., Inc. Spray Engineering Co. Sturtevant, B. F., Co..
-
FIRE BRICK CEMENT (See Ce ment, Fire Brick)
FITTINGS--Flanged Grinnell Company, Inc.
Valves (See Valves, Gage)
GAGES--Air Pressure
Hays Corp., The
Draft American Schaeffer & Budenberg Corp. Combustion Specialties Corp. Ellison, Lewis M. Hays Coro., The Higgin Mfg. Co. Hill, E. Vernon, Co.
. Hoffman Specialty Co., Inc. Taylor Instrument Companies Warren Webster & Co.
Water Heaters
American Radiator Co. .
Alberger Heater Co.
Page, Win. H., Boiler Co.
Smith, H. B., Co.
Stickle Steam Specialties Co.
Thatcher Co.. The
#
Universal Smokeless Boiler Co.
GASKETS--Asbestos Jenkins Bros. Johns-Manville, Inc.
Boiler Johns-Manville, Inc.
566
Index to Modern Equipment
Metallic Johns-Manville, Inc.
1
Rubber
Jenkins Bros. Johns-Manville, Inc.
` .
GATES--Blast
American Blower Co.
Buffalo Forge Co.
Clarage Fan Co.
New York Blower Co.
.
Sturtevant, B. F.. Co.
York Heating & Ventilating Corp.
GENERATOR COOLING SYSTEMS
American Blower Co.
Buffalo Forge Co.
Carrier Engineering Corp.
Cooling Tower Co.
'
Drying Systems, Inc.
Reed Air Filter Co.
Spray Engineering Co.
Sturtevant, B. F., Co.
GENERATORS--Electric
' Honeywell Heating Specialties Co. Sturtevant, B. F., Co. ' Westinghouse Electric & Mfg. Co.
' Heat (See Boilers, Furnaces and Heaters)
Hot-Water
American Radiator Co. Alberger Heater Co. Burnham Boiler Corp. D. & T. Mfg. Co. Excelso Specialty Works, Inc. Frank, O. E., Heater & Engi
neering Co., Inc.' \ HoneywellHeatingSpecialtiesCa
Page. Wm. H., Boiler Co. Reading Heater & Supply Co. Whitlock Coil Pipe Co.
Vacuum
Illinois Engineering Co. McAlear Mfg. Co. O-E Specialty Mfg. Co. Trane Co.
.
GLASSES--Gage
Jenkins Bros. O-E Specialty Mfg. Co.
GOVERNORS--Condensa tlon
Davis. G. M., Regulator Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
.
McAlear Mfg. Co.
Trane Co., The
-
Warren Webster & Co.
Pump (See Regulators, Pump)
Vacuum (See Regulators, Vacuum)
GRATES--Dumping
Fitzgibbons Boiler Co., Inc. Kewanee Boiler Co. ' Neemes Foundry. Inc. Oil City Boiler Works Universal Smokeless Boiler Co.
Rocking
Kewanee Boiler Co.
Neemes Foundry, Inc.
.
Oil City Boiler Works
Universal Smokeless Boiler Co.
Shaking
CoKal Co. Kewanee Boiler Co. Neemes Foundry. Inc. Oil City Boiler Works Titusville Iron Works Universal Smokeless Boiler Co.
Stationary
CoKal Co.
GRILLES AND REGISTERS (See Registers and Grilles)
HANGERS--Adjustable Pipe
Fitzgibbons Boiler Co.. Inc. Grinnell Company, Inc. Healy-Ruff Co. Modern Mfg. Co. Smith, H. B., Co.
Pipe
Grinnell Company, Inc. Healy-Ruff Co. Kewanee Boiler Co. Midwest Air Filters, Inc. National Radiator Co. Pierce, Butler & Pierce Mfg. Co. York Heating & Ventilating Corp.
Radiator
American Radiator Co. Grinnell Company, Inc. Healy-Ruff Co. Kewanee Boiler Co. Modine Mfg. Co. National Radiator Co. Niagara Radiator & Boiler Co. Pierce. Butler & Pierce Mfg. Co. Smith, H. B., Co. U. S. Radiator Corp. York Heating & Ventilating Corp.
HEADERS
Alberger Heater Co. Grinnell Company, Inc.
HEAT EXCHANGERS American Blower Co. Buffalo Forge Co. Carrier Engineering Corpl Drying Systems, Inc. Frank, O. E., Heater & Engi neering Co.. Inc. Modine Mfg. Co. Patterson-Kelley Co. Whitlock Coil Pipe Co.
HEATERS--Air
American Blower Co. Frank, O. E., Heater & Engi
neering Co., Inc. Modine Mfg. Co. Herman Nelson Corp. Nesbitt, John J., Inc. New York Blower Co. Pecco, Inc. Spencer Heater Co. Sturtevant, B. F., Co. Warren Webster & Co. Westinghouse Electric & Mfg. Co. Wing, L. J., Mfg. Co.
Automatic Hot Water
American Radiator Co. Excelso Specialty Works, Inc. Ilg Electric Ventilating Co. ~`" Kewanee Boiler Co. Mueller Co. Neptune Meter Co.
Blast
Aerofin Corp.
American Blower Co.
American Radiator Co.
Buffalo Forge Co.
Clarage Fan Co.
Modine Mfg. Co.
New York Blower Co. '
O-E Specialty Mfg. Co.
Sturtevant, B. F., Co.
`
Wing, L. J., Mfg. Co.
York Heating & Ventilating Corp.
Cabinet
Bridgeport Rolling Mills, Inc.
Herman Nelson Corp.
Trane Co.
'
Fan System
Aerofin Corp. American Blower Co. Buffalo Forge Co. Clarage Fan Co. Ug Electric Ventilating Co. Modine Mfg. Co. New York Blower Co. O-E Specialty Mfg. Co. Pecco, Inc. Sturtevant, B. F., Co. Wing. L. J., Mfg. Co. York Heating & Ventilating Corp.
Feed Water
.
Alberger Heater Co.
Frank, O. E., Heater & Engi neering Co.. Inc.
Patterson-Kelley Co.
Stickle Steam Specialties Co. Warren Webster & Co.
Whitlock Coil Pipe Co. Worthington Pump & Machinery
Corp.
Gas
American Radiator Co. Universal Smokeless Boiler Co.
Hot Water Service
Alberger Heater Co.
American Radiator Co.
Excelso Specialty Works, Inc.
Frank, O. E., Heater & Engi
neering Co.. Inc.
Heggie-Simplex Boiler Co.
International Heater Co.
Kewanee Boiler Co.
Neptune Meter Co.
Niagara Radiator & Boiler Co.
Oil City Boiler Works
Page, Wm. H., Boiler Co.
Patterson-Kelley Co..
Prox, Frank, Co. !
Reading Heater & Supply Co.
Richardson & Boynton Co.
Smith, H. B., Co.
Spencer Heater Co.
Thatcher Co., The
.
U. S. Radiator Corp.
Weil-McLain Co.
Whitlock Coil Pipe Co.
Indirect
Aerofin Corp.
American Blower Co.
Buffalo Forge Co.
Excelso Specialty Works. Inc.
Ilg Electric Ventilating Co.
Modine Mfg. Co.
Newport Boiler Co.
Patterson-Kelley Co. '
.
Skinner Bros. Mfg. Co., Inc.
Smith. H. B., Co.
.
Whitlock Coil Pipe Co.
York Heating & Ventilating Corp.
567
Index to Modern Equipment
Industrial
' HEATING AND VENTILATING
American Blower Co.
APPARATUS
Buffalo Forge Co. Drying Systems. Inc.
Aerofin Corp. American Blower Co.
Ilg Electric Ventilating Co.
American Radiator Co.
Langenberg Mfg. Co.
Barnes & Jones
Lebanon Boiler Works
Bishop & Babcock Sales Co., The
Modine Mfg. Co.
Buffalo Forge Co.
Patterson-Kelley Co.
Burnham Boiler Corp.
Pecco, Inc. Petty, J. K., & Co., Inc.
Call. John, Co.. The Carrier Engineering Corp.
Skinner Bros. Mfg. Co.. Inc.
Carrier Air Conditioning Corp.
Sturtevant. B. F.. Co.
of America
Westinghouse Electric & Mfg. Co. Wing, L. J., Mfg. Co.
Clarage Fan Co. Cooling and Air Conditioning
York Heating & Ventilating Corp.
Corp.
Cooling Tower Co.
Instantaneous Hot Water
Alberger Heater Co. Frank. O. E., Heater & Engi
neering Co.. Inc. Patterson-Kelley Co. Powers Regulator Co. Whitlock Coil Pipe Co.
Davis, G. M., Regulator Co.
Duro Air Filter Co. Fitzgibbons Boiler Co.. Inc.
Fowler & Wolfe Mfg. Co. Hart & Crouse Co. Heggie-Simplex Boiler Co. Ilg Electric Ventilating Co.
International Heater Co.
Langenberg Mfg. Co.
Room
Marsh. Jas. P., & Co.
American Blower Co.
American Radiator Co.
Buffalo Forge Co. International Heater Co.
Langenberg Mfg. Co. Modine Mfg. Co.
Thatcher Co.. The
Midwest Air Filters, Inc.
Minneapolis Heat Regulator Co.
Modine Mfg. Co.
Nash Engineering Co.
Neptune Meter Co.
Newport Boiler Co.
New York Blower Co.
Niagara Radiator & Boiler Co.
Tank
O-E Specialty Mfg. Co. Page, W. H., Boiler Co.
Alberger Heater Co. `
Pecco. Inc.
American Radiator Co.
Prox. Frank. Co.
'
Burnham Boiler Corp.
Reading Heater & Supply Co.
Frank, O. E.. Heater & Engi Reed Air Filter Co.
neering Co.. Inc.
Richmond Radiator Co.
International Heater Co.
Sarco Co., Inc.
Kewanee Boiler Co. National Radiator Co.
Skinner Bros. Mfg. Co. Smith, H. B., Co.
Neotune Meter Co. O-E Specialty Mfg. Co.
, Spray Engineering Co. Stickle Steam Specialties Co.
Page. Wm. H-, Boiler Co.
Sturtevant, B. F., Co.
Patterson-Kelley Co.
Thatcher Co., The
Prox. Frank, Co.
, U. S. Radiator Corp.
Reading Heater & Supply Co.
' Utica Heater Co.
Smith. H. B.. Co.
Warren Webster & Co.
Spencer Heater Co.
Wing, L. J., Mfg. Co.
Thatcher Co.. The
York Heating & Ventilating Corp.
Universal Smokeless Boiler Co.
Weil-McLain Co.
HEATING SPECIALTIES
Whitlock Coil Pipe Co.
American Blower Co.
American Radiator Co.
Unit
American Schaeffer & Buden-
Aerofin Corp.
berg Corp.
American Blower Co. Buffalo Forge Co. Clarage Fan Co. Ilg Electric Ventilating Co.
Barnes & Jones Bishoo & Babcock Sale9 Co.. The
Buffalo Forge Co. Burnham Boiler Corp. Combustion Specialties Corp.
Langenberg Mfg. Co.
Cork Foundation Co.
Modine Mfg. Co. Herman Nelson Corp. Nesbitt. John J.. Inc. New York Blower Co.
Davis, G. M., Regulator Co.
Dunham, C. A.,.Co. Fulton Co. Grinnell Company, Inc.
Hays Corn., The
Pecco. Inc.
Hoffman Specialty Co.. Inc.
Skinner Bros. Mfg. Co., Inc.
Honeywell Heating Specialties Co.
Sturtevant, B. F.t Co. Wing, L. J., Mfg. Co. York Heating & Ventilating Corp.
Illinois Engineering Co. Kieley & Mueller, Inc.
McAlear Mfg. Co. McDonnell & Miller
Water (Incinerator)
Marsh, Jas. P., & Co. Mason Regulator Co.
Alberger Heater Co. Heggie-Simplex Boiler Co. Kewanee Boiler Co. Lebanon Boiler Works
Minneapolis Heat Regulator Co. Monash-Younker Co., Inc. Mouat Vapor Heating Co. Nash Engineering Co.
National Radiator'Co.
Oil City Boiler Works
Newport Boiler Co. _
Petty. J. K., & Co.. Inc.
Niagara Radiator & Boiler Co.
O-E Specialty Mfg. Co. Page, Wm. H., Boiler Co. Powers Regulator Co. Reading Heater & Supply Co.
Sarco Co., Inc. Stickle Steam Specialties Co. Trane Co. U. S. Radiator Corp. Warren Webster & Co. Young Pump Co.
HEATING SYSTEMS--Gas
American Blower Co. Carrier Engineering Corp. McAlear Mfg. Co. Marsh, James P,, & Co. Mueller Co. Herman Nelson Corp. Neptune Meter Co. Newport Boiler Co. New York Blower Co. O-E Specialty Mfg. Co. Spencer Heater Co. Sturtevant, B. F., Co. Trane Co. Warren Webster & Co.
Hot Blast
" Aerofin Corp.
American Blower Co.
American Radiator Co. Buffalo Forge Co. Carrier Engineering Corp.
Clarage Fan Co. Grinnell Company, Inc.
Ilg Electric Ventilating Co. Langenberg Mfg. Co. Modine Mfg. Co. New York Blower Co.
O-E Specialty Mfg. Co. Pecco. Inc. Skinner Bros. Mfg. Co.. Inc. Stickle Steam Specialties Co. Sturtevant, B. F., Co.
Thatcher Co., The Wing, L. J., Mfg. Co. York Heating & Ventilating Corp.
Hot Water
Barnes & Jones
Buffalo Forge Co. Burnham Boiler Corp.
D. & T. Mfg. Co.
Fitzgibbons Boiler Co.
Grinnell Company, Inc.
Hart & Crouse Co.
Honeywell HeatingSpecialtiesCo.
International Heater Co. Kewanee Boiler Co.
Mueller Co.
Modine Mfg. Co.
National Radiator Co.
Neptune Meter Co.
Newport Boiler Co.
.
Page. Wm. H., Boiler Co. *
Patterson-Kelley Co. Prox. Frank, Co.
Reading Heater & Supply Co.
Richardson & Boynton Co.
Richmond Radiator Co. '
Smith, H. B., Co.
Spencer Heater Co.
Thatcher Co., The U. S. Radiator Corp. York Heating & Ventilating Corp.
Steam
American Blower Co. Barnes & Jones Bishoo & Babcock Sales Co.. The Buffalo Forge Co. Burnham Boiler Corp. Carrier Engineering Corp. Dunham, C. A., Co. Fitzgibbons Boiler Co. Grinnell Company, Inc.
Hart & Crouse Co.
Index to Modern Equipment
Hoffman Specialty Co., Inc. Illinois Engineering Co.
International Heater Co.
Kewanee Boiler Co. Kieley & Mueller, Inc. McAlear Mfg. Co. Marsh, Jas. P., & Co. . Modine Mfg. Co.
National Radiator Co. Newport Boiler Co. O-E Specialty Mfg. Co. Page, Wm. H., Boiler Co.
Pecco. Inc. Richardson & Boynton Co.
Richmond Radiator Co.
Sarco Co.. Inc. Smith, H. B.. Co. Spencer Heater Co.
Stickle Steam Specialties Co. Thatcher Co., The Trane Co. U. S. Radiator Corp. Warren Webster & Co. Wing. L. J., Mfg. Co. York Heating & Ventilating Corp.
Steam (Exhaust)
American Blower Co.
Barnes & Jones
Bishoo & Babcock Sales Co., The
Buffalo Forge Co.
'
Carrier Engineering Corp.
Dunham. C. A.. Co.
Grinnell Company. Inc.
Hoffman Specialty Co.
Illinois Engineering Co.
Marsh, Jas. P.. & Co.
McAlear Mfg. Co.
Modine Mfg. Co.
O-E Specialty Mfg. Co.
Page, Wm. H.. Boiler Co.
Patterson-Kelley Co.
Sarco Co., Inc.
Smith, H. B., Co.
. Stickle Steam Specialties Co.
' Trane Co.
Warren Webster & Co.
York Heating & Ventilating Corp.
Steam (Vacuum)
American Blower Co. Barnes & Jones
Bishop & Babcock Sales Co., The Burnham Boiler Corp. Carrier Engineering Corp. Dunham. C. A., Co.
Grinnell Company, Inc. Hoffman Specialty Co. Illinois Engineering Co. McAlear Mfg. Co.
Marsh, Jas. P.. & Co. Modine Mfg. Co. Monash-Younker Co.
Mueller Co. Nash Engineering Co.
Newport Boiler Co. O-E Specialty Mfg. Co. Page. Wm. H., Boiler Co.
Sarco Co.. Inc. Smith. H. B., Co. Spencer Heater Co.
Stickle Steam Specialties Co. Sturtevant. B. F., Co. Trane Co. U. S. Radiator Corp. Warren Webster & Co. York Heating& Ventilating Corp.
Steam (Vapor)
Barnes & Jones
Bishop & Babcock Sales Co.. The Burnham Boiler Corp. Carrier Engineering Corp. Dunham, C. A,, Co. Grinnell Company, Inc. Hart & Crouse Co. Hoffman Specialty Co.
Illinois Engineering Co.
International Heater Co.
Kewanee Boiler Co.
McAlear Mfg. Co.
Marsh. Jas. P., & Co.
Monash-Younker Co.
Mouat Vapor Heating Co.
Herman Nelson Corp.
Newport Boiler Co.
O-E Specialty Mfg. Co.
Page, Wm. H., Boiler Co.
Smith, H. B., Co.
Spencer Heater Co.
Stickle Steam Specialties Co.
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
York Heating & Ventilating Corp.
Warm-Air
American Blower Co. Art Metal Radiator Cover Co. Buffalo Forge Co. Carrier Engineering Corp. Hart & Crouse Co. International Heater Co. Langenberg Mfg. Co. Modine Mfg. Co. New York Blower Co. Pecco. Inc. Skinner Bros. Mfg. Co., Inc. Sturtevant. B. F., Co. Thatcher Co.. The
HOT BLAST HEATING SYS TEMS (See Heating Systems, Hot
Blast)
HOT WATER CIRCULATING PUMPS (See Pumps, Circulating)
HOT WATER HEATERS, AUTO MATIC (See Heaters, Automatic
Hot Water)
HUMIDITY CONTROL
American Blower Co. American Radiator Co. American Schaeffer & Buden-
berg Corp. Atmospheric Conditioning Corp. Bishop & Babcock Sales Co., The Carrier Engineering Corp. Cooling and Air Conditioning
Corp. Cooling Tower Co. Drying Systems, Inc. Grinnell Company, Inc. Johnson Service Co. Klipfel Mfg. Co. Midwest Air Filters, Inc. Modine Mfg. Co. . New York Blower Co. Pecco, Inc. Powers Regulator Co. Sarco Co., Inc. Spray Engineering Co. Skinner Bros. Mfg. Co., Inc. Sturtevant. B. F., Co. Taylor Instrument Companies
INCINERATORS, Hot Water (See Heaters, Water, Incinerator)
INSTRUMENTS--Air Testing (See Air Testing Instruments)
Indicating
American Schaeffer & Budenberg Corp.
Combustion Specialties Corp. Ellison. Lewis M. Hays Corp., The Hill. E. Vernon, Co. Marsh. Jas. P., & Co. Taylor Instrument Companies
Recording
HOT WATER HEATERS, IN STANTANEOUS (See Heaters, Instantaneous Hot Water)
HOT WATER HEATERS, SERV ICE (See Heaters, Hot Water Service)
American Schaeffer & Budenberg Corp.
Hays Corp., The Marsh. Jas. P.. & Co. Taylor Instrument Companies
INSULATING LUMBER Celotex Co.
HOT WATER HEATING SYS
TEMS (See Heating Systems, Hot INSULATING MATERIALS (See
Water)
Asbestos and Insulating Products)
HYGROMETERS
Grinnell Company, Inc.
HUMIDIFIERS
American Blower Co. Art Metal Radiator Cover Co. Atmospheric Conditioning Corp. Bishoo & Babcock Sales Co., The Buffalo Forge Co. Call, John, Co., The Carrier Engineering Corp. Cooling and Air Conditioning
Corp. Cooling Tower Co. Drying Systems, Inc. Grinnell Company, Inc. Ilg Electric Ventilating Co. Johnson Service Co. Langenberg Mfg. Co. Midwest Air Filters, Inc. Modine Mfg. Co. New York Blower Co. Pecco, Inc. Powers Regulator Co. -------Reed Air Filter Co. Skinner Bros. Mfg. Co., Inc. Spray Engineering Co. Sturtevant, B. F., Co.
Cold
Celotex Co. Johns-Manville. Inc. Universal Gypsum & Lime Co.
Heat
Celotex Co. Johns-Manville, Inc. . Ric-wil Co. Universal Gypsum & Lime Co.
Sound Deadening
Cork Foundation Go. Korfund Co., The
JOINTS--Expansion
Alberger Heater Co. Badger, E. B., & Sons Co. Fulton Co. Illinois Engineering Co. Mogul Machine Co. Warren Webster & Co.
Pipe Grinnell Company, Inc.
569
Index to Modern Equipment
KILNS, DRY
American Blower Co. Buffalo Forge Co. Carrier Engineering Corp. Drying Systems, Inc. New York Blower Co. . Sturtevant, B. F., Co.
LIQUID, BOILER {Sec Boiler Liquid)
MACHINES, REFRIGERATING . {See Refrigerating Machinery)
MAGNESIA PRODUCTS {See As bestos and Insulating Products)
MECHANICAL DRAFT APPARATUS
American Blower Co. Buffalo Forge Co. Carrier Engineering Corp. Clarage Fan Co. Combustion Specialties Corp. Hays Coro.. The Ilg Electric Ventilating Co. Kieley & Mueller, Inc. Mason Regulator Co. New York Blower Co. Sturtevant, B. F., Co. Taylor Instrument Companies Wing, L. J.. Mfg. Co.
METAL WEATHER STRIPS {See Weather Strips, Metal)
METERS--Feed Water
Johns-Manville, Iric.
Flow Spray Engineering Co.
Water Johns-Manville, Inc. Neptune Meter Co. Worthington Pump & Machinery Corp. .
MICA
Westinghouse Electric & Mfg. Co.
MOISTENERS, AIR {See Humidi
fiers)
.
MOTOR CONTROLLERS {See Controllers, Motor)
OIL BURNERS American NoKol Co. Automatic Burner Corp. Ballard Oil Equioment Co. Johnson, S.-T., Co. Winslow Boiler & Engineering Co.
ORSATS Hays Corp., The
PACKING--Asbestos Jenkins Bros. Johns-Manville. Inc. New York Blower Co.
Metallic Johns-Manville, Inc
Rubber Jenkins Bros. Johns-Manville, Inc.
PIPE--Bending Badger, E. B., & Sons Co. Grinnell Company, Inc.
Cast Iron Grinnell Company, Inc.
Coils {Sec Coils, Pipe)
Covering {See Covering, Pipe and Tank; also. Conduits)
Fittings Grinnell Company, Inc. Westinghouse Electric & Mfg. Co.
Hangers {See Hangers, Pipe)
Joint Cement {See Cement, Pipe Joint)
Plugs {See Plugs, Pipe)
Wrought Iron and Steel . Grinnell Company, Inc.
PIPELESS FURNACES {See Fur naces, Pipeless)
PITOT TUBES AND GAGES Clarage Fan Co. Hays Coro., The Higgin Mfg. Co. Hill, E. Vernon, Co.
McAlear Mfg. Co. Mason Regulator Co. Sarco Co., Inc. Sturtevant, B. F., Co. Taylor Instrument Companies Westinghouse Electric & Mfg. Co.
PRESSURE GAGES {See Gages, Pressure)
PROTECTORS--Radiator
American Radiator Co. Art Metal Radiator Cover Co. Dixie Metal Products Co.,-Inc. Fulton Co. Modine Mfg. Co. U. S. Radiator Corp.
PSYCHROMETERS
Grinnell Company, Inc. Higgin Mfg. Co. Hill, E. Vernon, Co. Taylor Instrument Companies
PUBLICATIONS
American Society of Heating and Ventilating Engineers
Heating & Ventilating Magazine Hill, E. Vernon. Co. Warren Webster & Co.
PUMPS--Air
Bishoo & Babcock Sales Co., The Buffalo Steam Pump Co. Chicago Pump Co. Economy Pumping Machinery
Co. McAlear Mfg. Co. Nash Engineering Co. O-E Specialty Mfg. Co. Powers Regulator Co. Trane Co. Worthington Pump & Machinery
Corp.
Automatic Electric
Chicago Pump Co.
Economy Pumping Machinery
Co.
Gould Pumps, Inc.
Nash Engineering Co.
Trane Co.
.
Westinghouse Electric & Mfg`. Co.
Worthington Pump & Machinery
Corp.
Yeomans Brothers Co.
Young Pump Co.
Boiler Feed
MOTORS--Electric
Honeywell Heating Specialties Ilg Electric Ventilating Co.
Johnson Service Co. Sturtevant, B. F., Co. Westinghouse Electric & Mfg. Co.
NOZZLES--Brine Spray
Atmospheric Conditioning Corp. Badger, E. B., & Sons Co. Buffalo Forge Co. Cooling Tower Co. Spray Engineering Co. .
Spray
, American Blower Co.
Atmospheric Conditioning Corp.
Badger, E. B., & Sons Co.
Bayley Mfg. Co.
Buffalo Forge Co. Carrier Engineering Co.
Clarage Fan Co.
Cooling Tower Co.
New York Blower Co.
Spray Engineering Co.
Sturtevant, B. F., Co.
Warren Webster Co.
PLATES--Floor
American Radiator Co. Grinnell Company, Inc. Modern Mfg. Co. National Radiator Co.
PLUGS--Fusible Grinnell Company, Inc.
Pipe Grinnell Company, Inc.
POWER PLANT SUPPLIES
American Blower Co.
American Radiator Co.
American Schaeffer & Buden-
berg Corp.
Buffalo Forge Co.
Cooling Tower Co.
Davis, G. M., Regulator Co.
Dunham. C. A., Co.
Grinnell Company, Inc.
Illinois Engineering Co.
Johns-Manville, Inc.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
Buffalo Steam Pump Co. Chicago Pump Co. Economy Pumping Machinery
Co. Goulds Pumps, Inc. Nash Engineering Co. O-E Specialty Mfg. Co. Skidmore Corp. Trane Co. Worthington Pump & Machinery
Corp. Yeomans Brothers Co. Young Pump Co.,
Centrifugal
Buffalo Steam Pump Co. Chicago Pump Co. Economy Pumping Machinery
Co. Goulds Pumps. Inc. Nash Engineering Co. Skidmore Corp. Trane Co. Worthington Pump & Machinery
Corp. Yeomans Brothers Co. Young Pump Co.
570
Index to Modern Equipment
Circulating
.
Chicago Pump Co.
Economy Pumping Machinery
Co.
Goulds Pumps, Inc.
Nash Engineering Co-
Trane Co.
Worthington Pump & Machinery
Corp.
Yeomans Brothers Co.
'
Condensation
Buffalo Steam Pump Co.
Chicago Pump Co. Economy Pumping Machinery
Co.
Goulds Pumps, Inc.
Nash Engineering Co.
O-E Specialty Mfg. Co.
Skidmore Corp.
Trane Co.
Worthington Pump & Machinery
Corp.
Yeomans Brothers Co.
Young Pump Co.
Electric
Buffalo Steam Pump Co.
Chicago Pump Co, Economy Pumping Machinery
Co. Goulds Pumps, Inc.
Nash Engineering Co.
Skidmore Corp.
.
Trane Co. Westinghouse Electric & Mfg. Co.
Worthington Pump & Machinery
Corp.
Yeomans Brothers Co.
Young Pump Co.
Vacuum
Buffalo Forge Co. Buffalo Steam Pump Co. Chicago Pump Co. Economy Pumping Machinery
Co. Goulds Pumps, Inc. McAlear Mfg. Co. Nash Engineering Co. O-E Specialty Mfg. Co. Skidmore Corp. Trane Co. Westinghouse Electric & Mfg. Co. Worthington Pump & Machinery
Corp. Young Pump Co.
RADIATOR --Air Valves {See Valves, Air)
Brackets
-
American Radiator Co. Continental Heater Corp. Grinnell Company, Inc.
Healy-Ruff Co. Hoffman Specialty Co. Kewanee Boiler Co. Modern Mfg. Co. National Radiator Co. ' Pierce, Butler & Pierce Mfg. Co. Smith, H. B.. Co.
U. S. Radiator Corp. York Heating & Ventilating Corp.
Covers
American Radiator Co. Art Metal Radiator Cover Co. Dixie Metal Products Co.. Inc. Reed Air Filter Co. U. S. Radiator Corp.
Rotary
Buffalo Steam Pump Co. ' Chicago Pump Co.
Economy Pumping Machinery
Co. Goulds Pumps, Inc. Nash Engineering Co.. Worthington Pump & Machinery
Corp.
ELBOWS {See Elbows, Radiator)
ENCLOSURES
~
Art Metal Radiator Cover Co. Dixie Metal Products Co., Inc.
Hangers {See Hangers, Radiator)
Humidifiers {See Humidifiers)
Steam
Buffalo Steam Pump Co. Nash Engineering Co. Worthington Pump & Machinery
Corp.
Return Line Valves {See Valves, Return Line)
Shields {See Protectors, Radiator)
Sump
Buffalo Steam Pump. Co. Chicago Pump Co. Economy Pumping Machinery
Co. Goulds Pumps. Inc. Nash Engineering Co. Trane Co. Worthington Pump & Machinery
Coin*. Yeomans Brothers Co.
Triplex
.
Goulds Pumps, Inc.
Turbine
. Buffalo Steam Pump Co.
Economy Pumping Machinery
Co.
Goulds Pumps. Inc.
Nash Engineering Co.
Trane Co.
.
Westinghouse Electric & Mfg. Co.
Worthington Pump & Machinery
Corp. Yeomans Brothers Co.
Traps (See Traps, Radiator)
Valves {See Valves, Radiator)
RADIATORS--Fan System
Aerofin Corp.
(
American Blower Co.'
American Radiator Co.
Buffalo Forge Co.
Modine Mfg. Co.
O-E Specialty Mfg. Co.
Rome-Turney Radiator Co'.
Smith, H. B., Co.
'
Gas Grinnell Company, Inc. _
Hot Water
Aerofin Corp. American Blower Co. American Radiator Co. Bridgeport Rolling Mill Co.__ Burnham Boiler Corp. Continental Heater Corp. Fowler & Wolfe Mfg. Co. Ilg Electric Ventilating Co.
Kewanee Boiler Co.
Modine Mfg. Co. .
-
National Radiator Co. .
Niagara Radiator & Boiler Co.
O-E Specialty Mfg. Co.
Page, Wm. H., Boiler Co.'
.
Pierce, Butler & Pierce Mfg. Corp.
Richmond Radiator Co.
Rome-Turney Radiator Co.
Smith, H. B., Co.
Sturtevant, B. F., Co.
Thatcher Co.. The
U. S. Radiator Corp.
.
Utica Heater Co.
Weil-McLain Co.
York Heating & Ventilating Corp.
Steam
Aerofin Corp.
American Blower Co.
American Radiator Co.
Bridgeport Rolling Mill Co.
Buffalo Forge Co.
Burnham Boiler Corp.
Continental Heater Corp.
Fowler & Wolfe Mfg. Co.
Kewanee Boiler Co.
Modine Mfg. Co. . .
National Radiator Co.
Niagara Radiator & Boiler Co.
O-E Specialty Mfg. Co.
Page, Wm. H., Boiler Co.
Pierce. Butler & Pierce Mfg. Corp.
Richmond Radiator Co.
Rome-Turney Radiator Co.
Smith, H. B., Co.
Thatcher Co., The
.
U. S. Radiator Corp.
Utica Heater Co.
Weil-McLain Co.
'
Wall
American Radiator Co.
Burnham Boiler Corp.
Continental Heater Corp.
Fowler & Wolfe Mfg. Co.
Kewanee Boiler Co.
Modine Mfg. Co.
.
National Radiator Co.
Niagara Radiator & Boiler Co.
Page. Wm. H., Boiler Co.
Pierce, Butler & Pierce Mfg. Corp.
Richmond Radiator Co.
Smith, H. B., Co.
.
U. S. Radiator Corp.
Utica Heater Co.
Weil-McLain Co.
RECEIVERS--Air
Buffalo Steam Pump Co. Illinois Engineering Co. Kewanee Boiler Co. Klipfel Mfg. Co. . O-E Specialty Mfg. Co. Titusville Iron Works Trane Co. Whitlock Coil Pipe Co.
Ammonia
-
Titusville Iron Works Whitlock Coil Pipe Co.
-
Condensation '
Bishop & Babcock Sales Co.. The
Chicago Pump Co. Davis. G. M.t Regulator Co. Economy Pumping Machinery
Co. Illinois Engineering Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co. McAlear Mfg. Co. Mason Regulator Co. Nash Engineering Co.
Titusville Iron Works
Trane Co.
.
571
Index to Modern Equipment
REFRIGERATING
Dunham, C. A., Co.
Vacuum
`
MACHINERY
Carrier Engineering Corp. Cooling Tower Co. Worthington Pump & Machinery
Corp.
REFRIGERATING SECTIONS American Radiator Co.
REGISTERS AND GRILLES
Art Metal Radiator Cover Co.
Dixie Metal Products Co., Inc.
Knowles Mushroom Ventilator
Co. .
Modine Mfg. Co.
Sturtevant, B. F., Co.
.
REG ULATORS--Damper
American Radiator Co. Bishop & Babcock Sales Co., The
Fulton Co. Hoffman Specialty Co. Honeywell Heating Specialties Co. Illinois Engineering Co. Johnson Service Co. Kieley & Mueller, Inc. Klipfel Mfg. Co. McAlear Mfg.'Co. Mason Regulator Co. Mueller Co. O-E Specialty Mfg. Co. Powers Regulator Co. Sarco Co., Inc. Stickle Steam Specialties Co. Taylor Instrument Companies
Pump
American Radiator Co.
Bishop & Babcock Sales Co.. The Davis, G. M., Regulator Co.
Dunham, C. A., Co.
Economy Pumping Machinery
Absolute Con-tac-tor Corp. American Radiator Co.
Bishop & Babcock Sales Co., The
Chicago Pump Co. Davis, G. M., Regulator Co.
Dunham, C. A., Co. Economy Pumping Machinery
Co. Hoffman Specialty Co.
Honeywell HeatingSpecialties Co. Illinois Engineering Co.
Kieley & Mueller, Inc. Klipfel Mfg. Co.
McAlear Mfg. Co. Mason Regulator Co. Mueller Co.
National Radiator Co. O-E Specialty Mfg. Co.
Stickle Steam Specialties Co. Trane Co. U. S. Radiator Corp. ' Warren Webster & Co.
Burnham Boiler Corp.
Co.
Vapor
Carrier Engineering Corp.
D. & T. Mfg. Co.
Dunham. C. A., Co.
Fulton Co.
Hoffman Specialty Co.. Inc.
Honeywell Heating Specialties Co.
Illinois Engineering Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Marsh, Jas. P., & Co.
Mason Regulator Co.
Minneaoolis Heat Regulator Co.
Mouat Vapor Heating Co.
Mueller Co.
National Radiator Co.
Herman Nelson Corp.
.O-E Specialty Mfg. Co.
Powers Regulator Co.
Sarco Co.. Inc.
'
Stickle Steam Specialties Co.
Taylor Instrument Companies
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Wing. L. J., Mfg. Co.
York Heating & Ventilating Corp.
Illinois Engineering Co.
Kieley & Mueller, Inc. Klipfel Mfg. Co. Mason Regulator Co. McAlear Mfg. Co. Mueller Co. Stickle Steam Specialties Co. Trane Co., The
Steam
Absolute Con-tac-tor Corp.
American Radiator Co.
American Schaeffer & Buden-
berg Corp.
Bishop & Babcock Sales Co.. The
Davis. G. M., Regulator Co.
Dunham, C. A., Co.
Fulton Co.. The
Honeywell Heating Specialties Co.
Illinois Engineering Co.
Jenkins Bros.:
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
Mason Regulator Co. .
McAlear Mfgl Co.
Mueller Co.
-
Absolute Con-tac-tor Corp.
American Radiator Co.
Bishop & Babcock Sales Co., The
Davis, G. M., Regulator Co.
Dunham, C. A., Co.
Hoffman Specialty Co., Inc.
HoneywellHeatingSpecialtiesCo.
Illinois Engineering Co.
Kieley & Mueller. Inc.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Mason Regulator Co.
Minneaoolis Heat Regulator Co.
Mouat Vapor Heating Co.
Herman Nelson Corp.
O-E Specialty Mfg. Co.
Powers Regulator Co.
Trane Co.
.
U. S. Radiator Corp.
Water
American Radiator Co. American Schaeffer & Buden-
berg Corp. Bishop & Babcock Sales Co.. The Davis. G. M., Regulator Co. Fulton Co.
Feed Water
American Radiator Co. American Schaeffer & Buden-
berg Corp. Davis. G. M., Regulator Co. Jenkins Bros. Kieley & Mueller, Inc. McAlear Mfg. Co. McDonnell & Miller Sarco Co.. Inc. Stickle Steam Specialties Co. Taylor Instrument Companies Warren Webster & Co.
Powers Regulator Co. Sarco Co., Inc. Stickle Steam Specialties Co. Taylor Instrument Companies Trane Co. U. S. Radiator Corp. Warren Webster & Co. Wing, L. J., Mfg. Co.
Temperature
Absolute Con-tac-tor Corp. American Radiator Co. American Schaeffer & Buden-
berg Corp.
Honeywell Heating Specialties Co.
Jenkins Bros.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
McAlear Mfg. Co.
.
Mason Regulator Co.
Minneapolis Heat Regulator Co.
Mueller Co.
Powers Regulator Co.
Reading Heater & Supply Co.
Taylor Instrument Companies
U. S. Radiator Corp.
Water Level (See Controllers)
Humidity
Bishop & Babcock Sales Co., The
Burnham Boiler Corp.
REHEATERS--Air
American Radiator Co.
American Schaeffer & Budenberg Corp.
Art Metal Radiator Cover Co. Carrier Engineering Corp.
Grinnell Company. Inc.
Carrier Engineering Corp. D. & T. Mfg. Co. Fulton Co. Honeywell Heating Specialties Co.
Illinois Engineering Co. Johnson Service Co.
Aerofin Corp.
American Blower Co-
American Radiator Co.
Buffalo Forge Co. Ilg Electric Ventilating Co. New York Blower Co.
Johnson Service Co.
Kieley & Mueller, Inc.
Stickle Steam Specialties Co.
Klipfel Mfg. Co.
Klipfel Mfg. Co.
Sturtevant, B. F., Co.
Powers Regulator Co.
Minneapolis Heat Regulator Co. York Heating & Ventilating Corp. -
Taylor Instrument Companies
National Radiator Co.
Pressure Absolute Con-tac-tor Corp.
O-E Specialty Mfg. Co. Powers Regulator Co. Reading Heater & Supply Co.
RELAY SWITCHES (See Switches, Control and Relay)
American Radiator Co.
American Schaeffer. & Budenberg Corp.
Sarco Co., Inc.
Stickle Steam Specialties Co.
Taylor Instrument Companies
ROOF VENTILATORS tilators, Roof)
Ven
Bishop & Babcock Sales Co.. The Davis, G. M., Regulator Co.
U. S. Radiator Corp.
ROTARY DRYERS (See Drying
Westinghouse Electric & Mfg. Co. A PParatus)
572
Index to Modern Equipment
ROTARY HACK SAW TOOLS STEAM SPECIALTIES
Safety
Excelso Specialty Works, Inc.
SCALE REMOVER--Boiler
No Rad Rust Corp. O-E Specialty Mfg. Co. Vinco Co. "X" Laboratories ,
SCRUBBERS, AIR
American Blower Co. Buffalo Forge Co.
SEPARATORS--Dust
American Blower Co. Buffalo Forge Co. ` Call. John, Co., The Carrier Engineering Corp. New York Blower Co. Pecco, Inc. Sturtevant. B. F., Co. YorkHeating & Ventilating Corp.
Steam and Oil
Bishop & Babcock Sales Co., The Dunham, C. A., Co. Illinois Engineering Co. Kieley & Mueller, Inc. McAlear Mfg. Co. Patterson-Kelley Co. Stickle Steam Specialties Co. Warren Webster & Co.
Absolute Con-tac-tor Corp. American Radiator Co.
Westinghouse Electric & Mfg. Co. ,
American Schaeffer & berg Corp.
Buden-
SYSTEMS--Domestic Hot Water
Barnes & Jones '
Absolute Con-tac-tor Corp.
Bishop & Babcock Sales Co., The Excelso Specialty Works. Inc.
Davis, G. M., Regulator Co.
Honeywell Heating SpecialtiesCo.
Dunham, C. A., Co.
International Heater Co.
. Fulton Co.
Smith. H. B.. Co.
Hays Corp., The Hoffman Specialty Co. Illinois Engineering Co.
Spray Engineering Co. Spencer Heater Co. U. S. Radiator Corp.
Johns-Manville. Inc.
Kieley & Mueller, Inc.
Dust Collecting
Klipfel Mfg. Co. McAlear Mfg. Co. Marsh, Jas. P., & Co. Mason Regulator Co.
O-E Specialty Mfg. Co.
Powers Regulator Co. Sarco Co.. Inc. Stickle Steam Specialties Co.
U. S. Radiator Corp.
Trane Co. Warren Webster & Co.
American Blower Co.
Buffalo Forge Co. Call, John. Co., The Carrier Engineering Corp.
Clarage Fan Co. Cooling Tower Co., Inc.
Midwest Air Filters, Inc. New York Blower Co. Pecco, Inc., Reed Air Filter Co.
Skinner Bros. Mfg. Co.,-Inc.
Soray Engineering Co.
STOKERS Riley Stoker Corp.
Sturtevant. B. F., Co. York Heating & Ventilating Corp.
Sturtevant, B. F,, Co. Westinghouse Electric & Mfg. Co. Exhaust (See Exhaust Systems)
Pulverized
Hot Blast
SHEETS--Asbestos Johns-Manville. Inc. New York Blower Co.
SHIELDS (See Protectors. Radi ator)
SHOWER BATH CONTROLLERS
(See Controllers. Shower Bath)
SMOKE CONSUMER Combustion Specialties Corp. Hays Corp.. The Universal Smokeless Boiler Co.
SOFTENERS, WATER (See Water Softeners)
CoKal Co. Riley Stoker Corp.
STRAINERS--Oil
CoKal Co. Davis, G. M., Regulator Co. Illinois Engineering Co. Kieley & Mueller, Inc. McAlear Mfg. Co. Mason Regulator Co. Mueller Co. Sarco Co., Inc.
^
Steam
Bishop & Babcock Sales Co., The Davis, G. M., Regulator Co.
Absolute Con-tac-tor Corp. ' Aerofin Corp. American Blower Co. Buffalo Forge Co. Carrier Engineering Corp. Clarage Fan Co. Ilg Electric Ventilating Co. Langenberg Mfg. Co. Modine Mfg. Co. New York Blower Co. O-E Specialty Mfg. Co. Pecco. Inc. Sturtevant. B. F., Co. York Heating & Ventilating Corp.
Spray Cooling (See Spray Cooling Systems)
SPECIALTIES, HEATING (See . Heating Specialties)
SPECIALTIES--Sheet Metal
Call, John. Co., The Sturtevant, B. F., Co. ` York Heating & Ventilating Corp*
SPECIALTIES, STEAM (See Steam Specialties)
SPRAY COOLING SYSTEMS
American Blower Co.
Atmospheric Conditioning Corp.
Badger, E. B., & Sons Co.
Buffalo Forge Co.
Carrier Engineering Corp.
Cooling Tower Co. '
New York Blower Co.
.
Spray Engineering Co.
Illinois Engineering Co. Kieley & Mueller, Inc. McAlear Mfg. Co. Mason Regulator Co. Mueller Co. Sarco Co., Inc.
Water
Davis, G. M., Regulator Co. Dunham, C. A., Co. Illinois Engineering Co. Kieley & Mueller, Inc. McAlear Mfg. Co. Mason Regulator Co. Mueller Co. Sarco Co., Inc. Spray Engineering Co.
SUPPLIES--Power Plant (See Power Plant Supplies)
Temperature Control
Absolute Con-tac-tor Corp.
American Blower Co.
American Radiator Co.
American Schaeffer- & Buden-
berg Corp.
Bishop & Babcock Sales Co., The
Buffalo Forge Co.
Carrier Engineering Corp.
Clarage Fan Co.
.
Fulton Co.
HoneywellHeatingSpecialtiesCo.
Illinois Engineering Co.
Johnson Service Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
Mueller Co.
.
Powers Regulator Co.
Sarco Co., Inc. .
Sturtevant. B. F., Co.
Taylor Instrument Companies
SPRAY NOZZLES (See Nozzles, Spray)
STEAM CALORIMETERS (See Calorimeters. Steam)
STEAM ENGINES (See Engines. Steam)
STEAM HEATING SYSTEMS (See Heating Systems, Steam)
SUPPORTS (See Hangers, Pipe and Radiator)
SWITCHES--Control-Relay
McDonnell & Miller Minneapolis Heat Regulator Co. Powers Regulator Co. Trane Co. Westinghouse Electric & Mfg. Co.
Ventilating (See Ventilating Sys tems)
TANK--Colls (See Coils. Tank)
Covering (See Covering, Pipe and Tank)
Heaters (See Heaters, Tank)
573
Index to Modern Equipment
Regulators
Absolute Con-tac-tor Corp. -
American Radiator Co.
American Schaeffer & Buden-
berg Corp.
Bishop & Babcock Sales Co., The
Davis. G. M., Regulator Co.
Fulton Co.
Johnson Service Co.
.
Kieley & Mueller, Inc.
.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Mason Regulator Co.
Minneapolis Heat Regulator Co.
Mueller Co.
Page, Wm. H., Boiler Co.
Powers Regulator Co.
Sarco Co., Inc.
Stickle Steam Specialties Co.
Taylor Instrument Companies
TANKS--Blow-Off
Economy Pumping Machinery Co.
Lebanon Boiler Works Oil City Boiler Works . . Petty, J. K., & Co.. Inc. Titusville Iron Works
Cast Iron
Bishop & Babcock Sales Co.. The Economy Pumping Machinery
Co.
Pressure
Ames Iron Works
American Schaeffer & Buden-
berg Corp.
Harrisburg Star Boiler Corp.
Kewanee Boiler Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
.
Lebanon Boiler Works
Oil City Boiler Works
Petty, J. K., & Co., Inc.
Titusville Iron Works
Storage
Ames Iron Works Frank. O.' E., Heater & Engi
neering Co. Harrisburg Star Boiler Corp. Kewanee Boiler Co. Lebanon Boiler Works National Radiator Co. Oil City Boiler Works Page, Wm. H.. Boiler Co. Patterson-Kelley`Co. ' Petty, J. K., & Co., Inc. Titusville Iron Works
TEMPERATURE REGULA TORS (See Regulators, Tempera ture)
THERMOMETERS
American Radiator Co. American Schaeffer & Buden-
berg Corp. Bishop & Babcock Sales Co., The Burnham Boiler Corp.
Hays Corp.. The Hill, E. Vernon, Co. Marsh, Jas. P., & Co. National Radiator Co. Pierce. Butler & Pierce Mfg. Corp. Powers Regulator Co. Taylor Instrument Companies U. S. Radiator Corp.
THERMOSTATS
Absolute Con-tac-tor Corp. American Radiator Co. American Schaeffer & Buden-
berg Corp. Bishop & Babcock Sales Co., The
Burnham Boiler Corp.
Fulton Co.
Honeywell Heating Specialties Co.
Johnson Service Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
Powers Regulator Co.
Sarco Co., Inc.
Taylor Instrument Companies
Westinghouse Electric & Mfg. Co.
TRAPS--Air Blast Grinnell Company, Inc.
Float
Barnes & Jones Davis, G. M., Regulator Co. Dunham, C. A.. Co. Hoffman Specialty Co., Inc. Illinois Engineering Co. . Sarco Co., Inc. Trane Co.
Radiator
Barnes & Jones
Bishop & Babcock Sales Co., The
Dunham, C. A., Co.
Hoffman Specialty Co., Inc.
Illinois Engineering Co.
Johns-Manville, Inc.
McAlear Mfg. Co.
Marsh. Jas. P., & Co.
Monash-Younker Co., Inc.
Mouat Vapor Heating Co.
Mueller Co.
National Radiator Co.
'
O-E Specialty Mfg. Co.
Sarco Co., Inc.
Stickle Steam Specialties Co.
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Return
American Blower Co. ' Barnes & Jones Bishop & Babcock Sales Co., The Dunham, C. A., Co. Hoffman Specialty Co. Illinois Engineering Co. Johns-Manville, Inc. Kieley & Mueller, Inc.
McAlear Mfg. Co. Marsh, Jas. P., & Co. Monash-Younker Co., Inc. Mouat Vapor. Heating Co. O-E Specialty Mfg. Co. Sarco Co., Inc. Trane Co. U. S. Radiator Corp.
Warren Webster & Co.
Return (Siphon)
,
Bishop & Babcock Sales Co.. The Marsh, Jas. P., & Co.
Steam
American Blower Co.
American Schaeffer & Buden-
berg Corp.
Barnes & Jones
Bishop & Babcock Sales Co.. The
Davis, G. M.. Regulator Co.
Dunham, C. A., Co.
Grinnell Company, Inc.
Hoffman Specialty Co., Inc.
Illinois Engineering Co.
Johns-Manville, Inc.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Marsh, Jas. P., & Co.
Monash-Younker Co.. Inc.
O-E Specialty Mfg. Co.
Patterson-Kelley Co.
Powers Regulator Co. v Reading Heater & Supply Co. Sarco Co., Inc.
Stickle Steam Specialties Co. Sturtevant, B. F., Co. U. S. Radiator Corp. Warren Webster & Co.
Thermostatic Dunham. C. A., Co.
Vacuum
American Blower Co.
Barnes & Jones
Bishop & Babcock Sales Co., The
Dunham, C. A., Co.
Hoffman Specialty Co., Inc.
Illinois Engineering Co.
Johns-Manville, Inc.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
`
McAlear Mfg. Co.
Marsh, Jas. P., & Co.
Monash-Younker Co., Inc.
O-E Specialty Mfg. Co.
Sarco Co., Inc.
Stickle Steam Specialties Co.
Trane Co.
U. S. Radiator Corp.
-
Warren Webster & Co.
TURBINES--Steam
Sturtevant, B. F., Co. Westinghouse Electric & Mfg. Co. Wing, L. J., Mfg. Co.
TURBO-BLOWERS
American Blower Co. Buffalo Forge Co. New York Blower Co. Sturtevant, B. F., Co. Wing, L. J., Mfg. Co.
UNDERGROUND PIPE CON DUIT (See Conduits, Underground Pipe)
UNIT HEATERS--(See Healers, Unit)
VACUUM--Cleaning Apparatus Buffalo Forge Co. Nash Engineering Co. Sturtevant, B. F., Co.
Dryers (See Drying Apparatus)
Gages (See Cages, Vacuum)
Heating Systems (See Heating Systems, Steam Vacuum)
Pumps (See Pumps, Vacuum)
Regulators (See Regulators, Vacuum)
Specialties (See Heating Special
ties)
;
Traps (See Traps, Vacuum)
-
VALVES--Air
American Radiator Co,
American Schaeffer & Buden-
berg Corp.
Bishop & Babcock Sales Co., The, Burnham Boiler Corp.
Davis, G. M., Regulator Co.
Dole Valve Co., The
Dunham, C. A., Co. .
Fulton Co.
.
Healy-Ruff Co.
Hoffman Specialty Co., Inc.
Jenkins Bros.
'
Kieley & Mueller, Inc.
.
574
Index to Modern Equipment
Klipfel Mfg. Co. McAlear Mfg. Co. Marsh, Jas. P.. & Co. Monash-Younker Co., Inc.
Marsh, Jas. P., & Co. Marsh Valve Co. Monash-Younker Co., Inc.
Mouat Vapor Heating Co.
Mueller Co.
-
National Radiator Co.
National Radiator Co. O-E Specialty Mfg. Co.
O-E Specialty Mfg. Co.
Sarco Co., Inc.
Page, Wm. H.. Boiler Co. Pierce. Butler & Pierce Mfg. Corp.
Trane Co. U. S. Radiator Corp.
Powers Regulator Co.
Smith. H. B.. Co.
. Hot Water
Trane Co. U. S. Radiator Corp.
American Radiator Co. American Schaeffer & Buden-
Angle, Check and Globe
American Radiator Co.
Davis, G. M., Regulator Co.
Dole Valve Co., The
Grinnell Company, Inc.
Illinois Engineering Co.
Jenkins Bros.
Marsh Valve Co.
McAlear Mfg. Co.
National Radiator Co.
.
O-E Specialty Mfg. Co.
berg Corp.
'
Barnes & Jones
Burnham Boiler Corp.
Davis. G. M., Regulator Co.
Dole Valve Co., The
Jenkins Bros..
Marsh, Jas. P., & Co.
Marsh Valve Co.
National Radiator Co.
Pierce. Butler & Pierce Mfg. Corp.
U. S. Radiator Corp.
Pierce, Butler & Pierce Mfg. Corp. Magnetic
Powers Regulator Co. U. S. Radiator Corp.
Absolute Con-tac-tor Corp. Minneapolis Heat Regulator Co.
Back-Pressure
Modulating
Bishop & Babcock Sales Co., The
Davis, G. M., Regulator Co.
Illinois Engineering Co.
Jenkins Bros.
Kieley & Mueller, Inc.
,
Klipfel Mfg. Co.
McAlear Mfg. Co.
O-E Specialty Mfg. Co.
.
Stickle Steam Specialties Co.
Blow-Off
Davis, G. M., Regulator Co. Jenkins Bros. Mueller Co. , U. S. Radiator Corp.
Float
American Radiator Co. Davis, G. M., Regulator Co. Illinois Engineering Co. Kieley & Miieller, Inc. Klipfel Mfg. Co. McAlear Mfg. Co. Mason Regulator Co. O-E Specialty Mfg. Co. Stickle Steam Specialties Co. - Trane Co.
.
Gage
Bishop & Babcock Sales Co., The Grinnell Company, Inc. O-E Specialty Mfg. Co. Stickle Steam Specialties Co. U. S. Radiator Corp.
Gate
American Radiator Co. Dole Valve Co., The Jenkins Bros. Marsh, Jas. P. & Co. . Marsh Valve Co. National Radiator-Co. O-E Specialty Mfg. Co.
American Radiator Co.
Barnes & Jones
-
Bishop & Babcock Sales Co.. The
Burnham Boiler Corp.
Dole Valve Co., The
Dunham. C. A., Co.
Hoffman Specialty Co., Inc..
Illinois Engineering Co.
Jenkins Bros.
McAlear Mfg. Co.
Marsh, Jas. P., & Co. '
Marsh Valve Co.
Monash-Younker Co., Inc.
O-E Specialty Mfg. Co.
Pierce. Butler & Pierce Mfg. Corp.
Sarco Co.. Inc.
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Packless
American Radiator Co.
Barnes & Jones
.
Bishop & Babcock Sales Co., The
Burnham Boiler Corp.
Davis, G. M.. Regulator Co.
Dole Valve Co., The
Dunham, C. A., Co.
Fulton Co.
Illinois Engineering Co.
McAlear Mfg. Co.
-
Marsh, Jas. P., & Co.
Marsh Valve Co.
Monash-Younker Co.. Inc.
Mouat Vapor Heating Co.
National Radiator Co.
O-E Specialty Mfg. Co.
:
Pierce, Butler & Pierce Mfg. Corp.
Sarco Co., Inc.
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Radiator
Graduating
American Radiator Co.
Barnes & Jones
Bishop & Babcock Sales Co.. The
Burnham Boiler Corp.
Dole Valve Co., The
Dunham, C. A.. Co.
Hoffman Specialty Co., Inc. Illinois Engineering Co. .
Jenkins Bros.
'
McAlear Mfg. Co.
American Radiator Co. Art Metal Radiator Cover Co.
Barnes & Jones Bishop & Babcock Sales Co., The Burnham Boiler Corp. Davis, G. M., Regulator Co.
Dole Valve Co.. The Dunham, C. A., Co.
Fulton Co. Hoffman Specialty Co., Inc.
Illinois Engineering Co.
International Heater Co.
. Jenkins Bros.
..
McAlear Mfg. Co.
'
Marsh, Jas. P., & Co.
,>
Marsh Valve Co.
f''
Monash-Younker-Co., Inc. i'
Mouat Vapor Heating Co. ' `
National Radiator Co.
O-E Specialty Mfg. Co.
Pierce, Butler & Pierce Mfg. Corp.
Powers Regulator Co.
Sarco Co.. Inc.
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Reducing
American Radiator Co.
Bishop & Babcock Sales Co.. The
Davis. G. M., Regulator Co.
Dunham, C. A., Co.
Fulton Co.
Illinois Engineering Co.
Jenkins Bros.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Mason Regulator Co.
Mueller Co.
O-E Specialty Mfg. Co.
Powers Regulator Co.
Stickle Steam Specialties Co.
Taylor Instrument Companies
Regrindlng Jenkins Bros.
.
Relief
American Radiator Co.
American Schaeffer & Buden-
. berg Corp.
"
Davis, G. M., Regulator Co.
Illinois Engineering Co.
Kieley & Mueller, Inc.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Mueller Co.
Neptune Meter Co.
O-E Specialty Mfg. Co.
Powers Regulator Co.
Stickle Steam Specialties Co.
Titusville Iron Works
Return Line
American Radiator Co.
Barnes & Jones Bishop & Babcock Sales Co., The Dunham, C. A., Co. Fulton Co. Hoffman Specialty Co., Inc. Illinois Engineering Co. Jenkins Bros. Kieley & Mueller, Inc. McAlear Mfg. Co. .
Marsh, Jas. P.. & Co. Mouat Vapor Heating Co. National Radiator Co. O-E Specialty Mfg. Co. Stickle Steam Specialties Co. Trane Co. U. S. Radiator Corp. Warren Webster & Co.
Safety
.
American Radiator Co.
American Schaeffer & Buden-
berg Corp.
.
Burnham Boiler Corp.
Davis. G. M.. RegulatorCo.
Jenkins Bros.
Marsh. Jas. P., & Co.
Mueller Co.
National Radiator Co.
O-E Specialty Mfg. Co.
.
Titusville Iron Works Co.
U. S. Radiator Corp.
575
Index to Modern Equipment
Steam Feed
Jenkins Bros. Kieley & Mueller, Inc. McAlear Mfg. Co. O-E Specialty Mfg. Co.
.
Thermostatic
American Radiator Co.
Barnes & Jones
Bishop & Babcock Sales Co., The
' Dole Valve Co., The
Dunham, C. A., Co.
Fulton Co.
.
Hoffman Specialty Co.
Illinois Engineering Co. '
Kieley & Mueller, Inc.
McAlear Mfg. Co.
Marsh. Jas. P., & Co.
Monash-Younker Co., Inc.
O-E Specialty Mfg. Co.
Powers Regulator Co.
Sarco Co.. Inc.
'
Stickle Steam Specialties Co.
Taylor Instrument Companies
Trane Co.
Vacuum
American Radiator Co.
Barnes & Jones
Bishop & Babcock Sales Co., The
Burnham Boiler Corp.
Davis, G. M.. Regulator Co.
Dole Valve Co., The
Dunham, C. A., Co.
Hoffman Specialty Co.. Inc.
Illinois Engineering Co.
Jenkins Bros.
Klipfel Mfg. Co.
McAlear Mfg. Co.
Marsh, Jas. P., & Co.
Marsh Valve Co.
Monash-Younker Co., Inc.
O-E Specialty Mfg. Co.
Sarco Co.. Inc.
.
Stickle Steam Specialties Co.
Titusville Iron Works
Trane Co.
U. S. Radiator Corp.
Warren Webster & Co.
Vapor
American Radiator Co. Barnes & Jones Bishop & Babcock Sales Co.. The Burnham Boiler Corp. Davis, G. M., Regulator Co. Dole Valve Co., The Dunham, C. A., Co. Hoffman Specialty Co.
Illinois Engineering Co.
Jenkins Bros.
McAlear Mfg. Co.
Marsh, Jas. P., & Co.
Marsh Valve Co.
Monash-Younker, Co.
Mouat Vapor Heating Co.
O-E Specialty Mfg. Co.
Sarco Co., Inc.'
.
Stickle Steam Specialties Co.
Trane Co.
U. S. Radiator Corp.
.
VAPOR HEATING SYSTEMS (See Healing Systems, Steam) (Vafior)
VENTILATING--B1 o w e r s (See
Blowers, Ventilating)
'
Fans (See Fans, Ventilating)
Systems
Aerofin Corp. American Blower Co. Buffalo Forge Co. Carrier Engineering Corp. Clarage Fan Co. Cooling .and Air Conditioning
Corp. Cooling Tower Co.. Inc. Ilg Electric Ventilating Co. Knowles Mushroom Ventilator
Co. Midwest Air Filters, Inc. Herman Nelson Corp. Nesbitt, John J., Co. New York Blower Co. O-E Specialty Mfg. Co. Pecqo, Inc. Skinner Bros. Mfg. Co., Inc. Sturtevant, B. F., Co. Westinghouse Electric & Mfg. Co. Wing, L. J., Mfg. Co. York Heating & Ventilating Corp.
VENTILATORS--Mushroom
American Blower Co. Call. John. Co.. The Knowles Mushroom Ventilator
Co. New York Blower Co. Sturtevant, B. F., Co.
Roof
Buffalo Forge Co. Cali. John, Co.. The Ilg Electric Ventilating Co. Johns-Manville, Inc.
New York Blower Co. O-E Specialty Mfg. Co. Peceo. Inc. Royal Ventilator Co. Skinner Bros. Mfg. Co.. Inc. Sturtevant, B. F., Co. York Heating & Ventilating Corp.
Window
Call, John, Co.. The Sturtevant, B. F., Co.
VENTS--Air
American Radiator Co. Bishop & Babcock Sales Co., The Burnham Boiler Corp. Call. John, Co., The Dole Valve Co.. The Dunham, C. A., Co. Fulton Co., The Higgin Mfg. Co. Hoffman Specialty Co., Inc. McAlear Mfg. Co. Marsh, Jas. P., & Co. O-E Specialty Mfg. Co. Sturtevant, B. F., Co. Trane Co.
WARM-AIR FURNACES (See Furnaces, Warm A ir)
WARM-AIR HEATING SYS TEMS (See Heating Systems, Warm Air)
WATER COLUMNS (See Columns, Water)
WATER GAGES (See Cages, Water)
WATER FEEDERS (See Feeders, Water)
WATER HEATERS (See Heaters, and Gas, Water Heaters)
WATER METERS (See Meters,
Water)
.
WATER-PROOF CEMENT (See Cement, Water Proof)
WEATHER STRIPS--Metal
Chamberlin Metal Weather Strip Co.
Higgin Mfg, Co.
576
Index to Advertisers
American Society of Heating and Ventilating Engineers Guide 1926-27
Page Absolute Con-Tac-Tor Corp., Elkhart, Ind........................................................................ 397 Aerofin Corp., Newark, N. J.......................................................................................... 434r-437 Alberger Heater Co., 281 Chicago St.f Buffalo, N. Y................................................... . 427 American Blower Co., Detroit, Mich.................................................................................... 404 American Nokol Co., 215 North Michigan Ave., Chicago, 111--..................:.............. 388 American Radiator Co., 1807 Elmwood Ave., Buffalo, N. Y................................ 313-315 American Schaeffer & Budenberg Corp., Brooklyn, N. Y............................................... 450 Ames Iron Works, Oswego, N. Y..................................... ............................................. 355-361 Art Metal Radiator Co., 1732 North Kolmar Ave., Chicago, 111.......................... 488-489 Automatic Burner Corp., 312 North May St., Chicago, 111--........................................ 389
E. B. Badger & Sons Co., 75 Pitts St., Boston, Mass...................................................... 402 Ballard Oil Equipment Co., 120 Broadway, New York, N. Y....................................... 390 Barnes & Jones, 5 Melrose St., Boston, Mass.................................................................... * 493 Bigelow Co., New Haven, Conn............................................................................................ 316 Bishop & Babcock Sales Co., Cleveland, Ohio................................................................... 494 Bridgeport Rolling Mills, Inc., Bridgeport, Conn..................................................... 484-485 Buffalo Forge Co., 490 Broadway, Buffalo, N. Y.................... ........................................ 405 Buffalo Steam Pump Co., Buffalo, N. Y.............................................................................. 467 Burnham Boiler Corp., Irvington, N. Y.............................................................................. 317
John Call Co., 122 N. Franklin St., Philadelphia, Pa--................................................ 554 Carrier Air Conditioning Co. of America, Buffalo, N. Y................................................. 405 Carrier Engineering Corp., 750 Frelinghuysen Ave., Newark, N. J..................... 304-305 The Celotex Co., 645 North Michigan Ave., Chicago, 111--.................................. 454--455 Chamberlin Metal Weather Strip Co., I nc., 1644 Lafayette Blvd., Detroit, M ich 462--463 Chicago Pump Co., 2336 Wolfram St., Chicago, 111.......................................................... 472 Clarage Fan Co., Kalamazoo, Mich..................................................................................... 406* CoKal Stoker Corp., 1010 Wrigley Bldg., Chicago, III................................................... 533 Combustion Specialties Corp., 250 West 54th St., New York, N. Y............................ 495 Continental Heater Corp., Dunkirk, N. Y.................................................................. 318-319 Cooling and Air Conditioning Corp., 31 Union Sq. W., New York, N. Y.................. 306 Cooling Tower Co., Inc., 15 John St., New York, N. Y.................................................. 308 Cork Foundation Co., 315 Fifth Ave., New York, N. Y.................................-............... 412
577
Index to Advertisers
. - Page D. & T. Mfg. Co., 3001 La Salle St., St. Louis, Mo........ .................. ,........................... 440 Dixie Metal Products Co., Birmingham, Ala--......v............... ........... ............... ................ 487 G. M. Davis Regulator Co., 407 Milwaukee Ave., Chicago, 111................... .-.......... . 505 Dole Valve Co., Chicago, 111.........,............... '.......... .............. ............. ............................. 547 Duro Air Filter Co., 3151 Shields Ave., Chicago, 111........................................................ 309 Drying-Systems, Inc., 1800 Foster Ave., Chicago, 111................ ............................ 400-401 G: A. Dunham Co., 450 E. Ohio St., Chicago, 111.................................................... 496^99
Economy Pumping Machinery Co., 122 N. Curtis St., Chicago, 111................... 468-469 Lewis M. Ellison, 214 W. Kinzie St.* Chicago, 111_-............................................... 398-399 Excelso Specialty Works, 119 Clinton St:, Buffalo, N. V............................................... 428
Fitzgibbons Boiler Co., 570 Seventh Ave., New York, N. Y................................ 320-322 Fowler & Wolfe Mfg. Co., 621 Bulletin Bldg., Philadelphia, Pa.............................. ...-. 486 O. E. Frank Heater & Eng. Co., Inc., 20 Milburn St., Buffalo, N. Y............. . 430-431 The Fulton Co., Knoxville, Tenn............................................................................... 500-504
General Boilers Co., Waukegan, 111............................................. ......... ....................... 324-325
Gould Pumps, Inc., Seneca Falls, N. Y.......................... --
......................470--471
Grinnell Company, Inc., 275 W. Exchange St., Providence, R. 1........................ 445-449
Harrisburg Star Boiler Corp., 15 Park Row, New York, N. Y..................................... 323
Hart & Crouse Co., Utica, N. Y....................
............................326-327
The Hays Corp., Michigan City, Ind..............................:.......... ........... :......................... . 451
Healy-Ruff Co., Minneapolis, Minn...... ............................:................ ..................... ........... 492
Heating & Ventilating Magazine, 1123 Broadway, New York, N. Y......................... 482
Heggie-Simplex Boiler Co., Joliet, 111.............................. ........... I............................... 328-330
Higgin Mfg. Co., Newport, Ky................................... :.............................................. 464-465
E. Vernon Hill Co., 64 W. Randolph St., Chicago, 111.................................................... 481
Hoffman Specialty Co., Inc., 25 West 45th St., New York, N. Y.................... 506-515
Honeywell Heating Specialty Co., Wabash, Ind..............................,.........
535
Ilg Electric Ventilating Co., 2850 N. Crawford Ave., Chicago, 111..................... ........ 407 Illinois Engineering Co., 21st and Racine Aves., Chicago, 111.... .............. ............ 516-517' International Heater Co., 101 Park Ave., Utica, N. Y........................................... 331-335 Ironton Bernhard Boiler Mfg. Co., Ironton, Ohio............................ ............... ................ 336
Jenkins Bros., 80 White St., New York, N. Y.................................................................. 548 Johns-Manville, Inc., 234 Madison Ave., New York, N. Y.......... ........................ 456-^460 Johnson Service Co., Milwaukee, Wis..................................................-....................... 536-540 S. T. Johnson Co., 940 Arlington Ave., Oakland, Calif....... ..................................... .. 391
Kewanee Boiler Co., Kewanee, III.......--............................... ...................................... 337-343 Kieley & Mueller, Inc., 34 West 13th St., New York, N. Y.......................................-- 520 Klipfel Mfg. Co., 2651 W. Harrison St., Chicago, 111............................................. 518-519 Knowles Mushroom Ventilator Co., 202 Franklin St., New York, N. Y.............., 307 The Korfund Co., 231 East 42nd St., New York, N, Y................................................. 413
` 578 .
Index to Advertisers
' Page Langenberg Mfg. Co., 4549 North Euclid Ave., St. Louis, Mo............... ----......-........- 414 Lebanon Boiler Works, Lebanon, Pa.......................................................... ......................... 344
McAlear Mfg. Co., 1901 South Western Ave., Chicago, III...... -......-....... ................. 521
McDonnell & Miller, Wrigley Bldg., Chicago, 111............................................................. 383 Jas. P. Marsh & Co., 118 South Clinton St., Chicago, 111................-.................. - 522-523 Marsh Valve Co., Dunkirk, N. Y..................... --.....-........... -.................................. '550-553 Mason Regulator Co., 1190 Adams St., Boston, Mass.................................................... 524. Midwest Air Filters, Inc., Bradford, Pa...............................................................:......... -.....310 Minneapolis Heat Regulator Co., Minneapolis, Minn............................. -.......... -.......... 541 Modern Mfg. Co., 4734 Hough Ave., Cleveland, Ohio........... ----................. 490-491 Modine Mfg. Co., Racine, Wis....... .............. -........... -................................... - ...... ......... 418 Mogul Machine Co., Witherspoon Bldg., Philadelphia, Pa...*.---.... -........ .......---...... 403 Molby Boiler Co., Inc., 41 East 42nd St., New York, N. Y...:..............-----................. 345 Monash-Younker Co., Inc., 553 West Monroe St., Chicago, 111...............-................... 525 Mouat Vapor Heating Co., West Fourth St., Cleveland, Ohio.....:............................... 441 Mueller Co., Decatur, Iil......................................................................................................... 442
Nash Engineering Co., South Norwalk, Conn.......-- --~........ ..................................... 473 National Radiator Co., Johnstown, Pa--........--....... .......-................ -...................... 346-347 Neemes Foundry, Inc., Troy, N. Y.......-............................................................................. . 415 Herman Nelson Corp., Moline, 111.................. -.....................-................................... j - 396, 419 Neptune Meter Co., 50 East 42nd St., New York, N. Y................................... -........... 443 J. J. Nesbitt, Inc., State Rd. & Rhawn St., Holmesburg Jet., Philadelphia, Pa. 420-423 Newport Boiler Co., 529 South Franklin St., Chicago, 111................................... -......... 348 New York Blower Co., 2248 South Halsted St., Chicago, 111......................................... 408 Niagara Radiator and Boiier Co., North Tonawanda, N. Y....................... ................. : 349 No Rad Rust Corp., Lancaster, Pa..'............................................................................ 384r-385
O-E Specialty Mfg. Co., Milwaukee, Wis.._...............................-........................................ 526 Oil City Boiler Works, Oil City, Pa........................................... -......... -............. ......- 350-351
Wm. H. Page Boiler Co., 58 West 40th St., New York, N. Y...................................... 352 Patterson-Kelley Co., 101 Park Ave., New York, N. Y............................. --............... - 429 Pecco Incorporated, 2951 North Market St., St. Louis, Mo............................. ............ 426 Pierce, Butler & Pierce Corp., 41 East 42nd St., New York, N. Y.... -........--354, 549 Powers Regulator Co., 2715 Greenview Ave., Chicago, 111...... .............................. 542-546 Frank Prox Co., Terre Haute, Ind.._................................................... -............................... 353
Reading Heater & Supply Co., Woodward and Church Sts., Reading, Pa...--......... 444 Reed Air Filter Co., 202 Central Ave., Louisville, Ky.......... ......................................... 311 Richardson & Boynton Co., 260 Fifth Ave., New York, N. Y--....................... 362--363 Richmond Radiator Co., 1480 Broadway, New York, N. Y................................. 364r-365 The Ric-wil Co., Union Trust Bldg., Cleveland, Ohio.........................................-......... - 453 Riley Stoker Corp., 9 Neponsit St., Worcester, Mass.-...... -..... -..... ---- ............ - 534 Rome-Tiirney Radiator Co., Rome, N. Y..............- --............................................... 438^439 Royal Ventilator Co., 415 Locust St., Philadelphia, Pa.................................................. 555
579
.
Index to Advertisers
Page Sarco Co., Inc., 183 Madison Ave., New York, N. Y............................................ 528-529 Skidmore Corp., 1535 Dayton St., Chicago, 111................................................................. 476 Skinner Bros. Mfg. Co., .1400 South Vandeventer Ave., St. Louis, Mo.............. 416-417 H. B. Smith Co., .Westfield, Mass........................ ................................... ................... 366-369 Spray Engineering Co., 60 High St., Boston, Mass.................... ................................ . 312 Spencer Heater Co., Willamsport, Pa.......................................................................... 370-371 Stickle Steam Specialty Co., 502 South Penn St., Indianapolis, Ind........................... 527 B. F. Sturtevant Co., Damon St., Hyde Park, Bpston, Mass... ..................... .............. 409
Taylor Instrument Companies, Rochester, N. Y.............................................................. 452 The Thatcher Co., 39-41 St. Francis St., Newark, N. J.._.... ,........................................ 372 Titusville Iron Works, Titusville, Pa................................................................................... 373 The Trane Co., La Crosse, Wis.................................................... 394-395, 474-475, 530-531
Universal Gypsum & Lime Co-, 111 West Washington St., Chicago, 111.................... 461 Universal Smokeless Boiler Co., Ravenna, Ohio.... ................................................... 378-379 U. S. Radiator Co., 133 East Grand River Ave., Detroit, Mich.......................... 374-377 Utica Heater Co., Utica, N. Y............................................................ i.......................... 380-381
The Vinco Co., Inc., 75 Vesey St., New York, N. Y........................................................ 386
Warren Webster & Co., 17th and Federal Sts., Camden, N. J...................................... 532 Weil-McLain Co., 641 West Lake St., Chicago, III.......................................................... 382 Westinghouse Electric & Mfg. Co., East Pittsburgh, Pa................................................ 466 Whitlock Coil Pipe Co., Hartford, Conn.........................................................!.....!.... 432-433 L. J. Wing Mfg. Co., 663 Hudson St., New York, N. Y....................................... 410-411 Winslow Boiler & Engineering Col, 208 South La Salle St., Chicago, 111......... 392-393 Worthington Pump & Mch. Corp., 115 Broadway, New York, N. Y.._..................... 477
"X" Laboratories, 25 West 45th St., New York, N. Y....... .......................................... 387
Yeomans Bros. Co., 1433 Dayton St., Chicago, 111................................... York Heating & Ventilating Corp., 1502 Locust St., Philadelphia, Pa.
...... 480 424--425 478-479
580
Roll of Membership
American society of HEATING and VENTILATING ENGINEERS
1926-1927
Contains Lists of Members Arranged Alphabetically and Geographically also Lists of Officers and Committees, Past Officers and Local Chapter
Officers
Corrected to July 1926
Published at the Headquarters of the Society . 29 West 39th Street, New York, N. Y.
Officers and Council
American Society of Heating and Ventilating Engineers
1926
President....... :.......:.................................... .......... W. H. Driscoll, Long Island City, N. Y. First Vice-President................... .................... .............. _F. Paul Anderson, Lexington, Ky. Second Vice-President......1.............. ............................................. A. C. Willard, Urbana, 111. Treasurer................................................................ -............ W. E. Gillham, Kansas City, Mo. Secretary....................................... ................................................... ................ A. V. Hutchinson
Council
W. H. Driscoll, Chairman
F. Paul Anderson, Vice-Chairman
W. H. Carrier
W. T. Jones
J. A. Cutler
S. E. Dibble W. E. Gillham C. V. Haynes
E. B. Langenberc.
Thornton Lewis J. F. McIntire
A. C. Willard
Committees of the Council
. Executive: F. Paul Anderson, Chairman; J. A. Cutler, A. C. Willard. Finance: Thornton Lewis, Chairman; E. B. Langenberg, J. F. McIntire. Membership: W. E. Gillham, Chairman; C. V. Haynes, W. T. Jones. Publication: S. E. Dibble, Chairman; F. Paul Anderson, W. H. Carrier.
Advisory Council
S. E. Dibble, Chairman; Homer Addams, R. P. Bolton, H. P. Gant, John Gormley,. John F. Hale, H. M. Hart, E. Vernon Hill, J. D. Hoffman, S. A. Jellett, D. D. Kimball, J. H. Kinealy, S. R. Lewis, J. I. Lyle, J. R. McColl, D. M. Quay, C. L. Riley, C. B. J. Snyder, F. R. Still, W. S. Timmis:
Research Department
Committee on Research: H. P. Gant, Chairman; F. C. Houghten, Director; O. P. Hood,
Ex-Officio Member. Homer Addams, E. Vernon Hill, Alfred Kellogg, J. R. McColl,
F. R. Still (1 year); Wm. H. Driscoll, H. M. Hart, C. V. Haynes, J. I. Lyle, Perry
West (2 years); W. H. Carrier, S. E. Dibble, C. F. Eveleth, H. P. Gant, E. B. '
Langenberg (3 years).
.
Technical Advisory Committees
Committee on Subjects: S. R. Lewis, Chairman; David S. Boyden, J. A. Donnelly, N. W. Downes, W. G. Fraser, J. E. Gallaher, J. R. McColl, Ernest Szekely.
Committees--1926
Committee on Infiltration: A. C. Willard, Chairman; D. Knickerbacker Boyd, L. A. Harding, A. P. Kratz, E. B. Langenberg, H. J. Meyer, W. S. Timmis.
Committee on Radiation: R. V. Frost, Chairman; R. C. Bolsinger, C. W, Brabbee, R. B. Dickson, G. M. Getchow, E. H. Lockwood, J. F. McIntire, F. B. Rowley.
Committee on Pipe Sizes: . J. A. Donnelly, Chairman; C. F. Eveleth, Vice-Chairman; T. M. Dugan, W. L. Durand, J. E. Emswiler, H. M. Hart, C. V. Haynes, J. H. Walker.
Committee on Temperature, Humidity and Air Motion: W, H. Carrier, Chairman; F. P. Anderson, W. L. Fleisher, J. F. Hale, E.S. Hailett, BurtS. Harrison, E. V. Hill.
Committee on Heat Transmission through Building Materials: L. A. Harding, Chairman; F. R. Ellis, E. W. Legier, E. F. Mueller, P. Nicholls, S. A. Pope, F. B. Rowley, A. E. Stacey, O. N. Walther, H. P. Wood.
Nominating Committee: Homer Addams, E. S. Hailett, E. P. Heckel, Alfred Kellogg, F. D. Mensing.
Guide Publication Committee: Perry West, Chairman; A. R. Acheson, J. E. Bolling, L. A. Harding, C. V. Haynes, E. V. Hill, S. R. Lewis, W. J. McConnell, C. L. Riley, A. C. Willard, C. P. Yaglou.
Committee on Increase of Membership: C. V. Haynes, Chairman; W. E. Austin, W. J. Carroll, C. W. Farrar, C. P. Lichty, W. R. Mead, H. C. Murphy, E. A. Peterson, E. A. Stark, H. G. Thomas, R. N. Trane, E. H. Whittemore. .
Committee to Cooperate with Rochester School Board: Perry West, Chairman; W. H. Carrier, Vice-Chairinan; A. R. Acheson, E. V. Hill, John Howatt, Alfred Kellogg,
S. R. Lewis, C. L. Riley.
Committee on Standards of Ventilation: W. H. Carrier, Chairman; F. R. Still, Vice Chairman; E. P. Bradley, F. R. Ellis, E. S. Hailett, E. V. Hill, F. C. Houghten, John Howatt, J. R. McColl, R. R. Sayers, Perry West, A. C. Willard.
Committee on Code of Healing & Ventilating: L. A. Harding, Gen. Chairman. Sub-Corn. 1. Definition of Terms................-............................. F. Paul Anderson, Chm. Sub-Com. II. . Ventilation Requirements for Public Buildings..... ............ E. V. Hill, Chm. Sub-Com. III. Requirements for Heating Buildings........................... A. C. Willard, Chm.
- Sub-Com. IV. Direct Steam or Hot-Water Radiation..............................R. V. Frost, Chm. Sub-Com. V. Indirect Steam or Hot-Water Radiation.:.................... -L. C. Soule, Chm.
' Sub-Com. VI. Heating Boiler Capacity------------------ --------- --- ----- J. p. McIntire, Chm. Sub-Com. VII. Warm Air Furnace Heating.......................................J- D. Hoffman, Chm. Sub-Com. VIII. Design of Chimneysand Flues.... ....I............................ J* R- McColl, Chm. Sub-Com. IX. Pipe Sizes for Steam Heating........ ......... ................ -J. A, Donnelly, Chm. Sub-Com. X Pipe Sizes for Hot-Water Heating.................................W..S. Timmis. Chm.
Sub-Com. XI. Air Ducts for Ventilation.................................................C. A. Booth, Chm. Sub-Com. XII. Air Washers and Humidifiers....................... .............. W. H. Carrier. Chm. Sub-Com. XIII. Pumps for Heating Systems ......................................... Perry West, Chm.
* Sub-Com. XIV. Standard Symbols for Drawings................................... J- H. Walker, Chm.
3
Officers of Local Chapters
1926-27
Cleveland
Headquartgrs, Cleveland
Meets: Second Friddy in'Month
President, J. J. Kissick 1768 Wayside Road
Secretary, W. C. Kammerbr 412 Finance Bldg.
-
Colorado
Headquarters, Denver
` Meets: Second Monday in Month
President, Oscar G. Ward .1230 California Street .
Secretary, R. B. Gillespie ' American Radiator Co.
' 24th and Blake Streets
Illinois
Headquarters, Chicago
Meets: Second Monday in Month
President, Albert B. Martin 822 West Washington Blvd.
Secretary, H. G. Thomas 549 W. Washington Blvd.
Kansas City
Headquarters, Kansas City, Mo.
Meets: First Monday in Month
President, Nate W. Downes 602 Finance Bldg.
Secretary, R. B. Johnson 411 E. Tenth Street
Massachussetts
Headquarters. Boston
Meets: First Monday in Month
President, D. S. Boyden 39 Boylston Street
Secretary, J. W. Brinton 10 High Street
.
.
.
Michigan
Headquarters, Detroit
Meets: First Monday after the 10th of the Month
President, J. F. McIntire 133 East Grand River Ave.
'Secretary, W. G. Beales Webster Hall
Minnesota
Headquarters, Minneapolis
Meets: Second Monday in Month
President, A. M. Wagner 692 Prior Ave., N., St. Paul, Minn.
Secretary, E. B. Gordon, Jr. 3215 Girard Ave., S.
New York
Headquarters, New York
Meets: Third Monday in Month
President, R. H. Carpenter 350 Madison Ave.
Secretary, E. B. Johnson 154 Wardwell Ave., W. New Brighton, S.
Western New York
Headquarters, Buffalo
Meets: First Monday in Month
President, Roswell Farnham
490 Broadway
'
Secretary, O. K. Dyer . 490 Broadway
Ontario
Headquarters, Toronto, Can.
Meets: First Monday in Month
President, A. J. Dickey 1523 Davenport Road
Secretary, M. W. Shears 53 Sylvan Ave.
Philadelphia .
Headquarters, Philadelphia
Meets: Second Thursday in Month
President, Benjamin Adams
612 Otis Bldg.
.
Secretary, S. S. Whitby 1503 Sansom Street
- Pittsburgh
Headquarters, Pittsburgh
Meets: First Monday in Month
President, C. W. Wheeler 1104 May Bldg.
Secretary, Margaret Ingels A. S. H. & V. E. Laboratory U. S. Bureau of Mines
. -
. St. Louis
Headquarters, St. Louis
Meets: First Wednesday in Month
President, E. B. Langenbbrg 4519 N. Euclid Ave.
Secretary, R. E. Graves 1014 Holland Bldg.
.
Wisconsin
Headquarters, Milwaukee
Meets: Third Monday in Month
President, R. G. Olson 911 Majestic Bldg. .
Secretary, F. R. Dannies 1801 St. Paul Ave.
-
4
Roll of Membership
American Society of Heating and Ventilating Engineers
1926-27
\ HONORARY MEMBERS
BALDWIN, WM. J. (1915), New York, N. Y. (Deceased May 7, 1924.) BILLINGS, DR. J. S. (1896), New York, N. Y. (Deceased March 10, 1913.) GORMLY, JOHN (Charter Member), Norristown, Pa. NEWTON, C. W. (Charter Member), Baltimore, Md. (Deceased August 6, 1920.)
LIST OF MEMBERS IN GOOD STANDING
Arranged Alphabetically--All Grades
(Asterisk indicates authorship of papers)
(Junior 1916; Associate 1918; 1923) indicates. Elected Junior Member 1916; Elected Associate Member 1918; Elected Member 1923.
(Pres. 1923) indicates, Elected President in 1923 and is now a Presidential Member.
A
ABBOUD, Alfred, (Junior 1924), Htg. and Vtg. ' Engr., J. Gallivan Co., 153 N. Washington St.,
and (for mail) 21 Milford St., Boston, Mass. ABRAMS, Abraham, (Junior 1924), Secy, and
Treas., (for mail), Berman Rathe Corp., 155 East 128th St., and 640 West 153rd St.. New York. N. Y. ACHERSON, AlbertR., (1919). Prof. Mech. Engrg.,
Syracuse University, and (for mail) 601 Eckel Theatre Bldg.. Syracuse. N. Y. ADAMS, Benjamin, (1919), Dist. Mgr., (for mail), American Blower Co.. 612 Otis Bldg., Philadelphia, and 3006 W. Coulter St., Queen Lane Manor, Philadelphia. Pa. ADAMS, Charles W., (1920), Vice-Pres., (for* mail). The Daly Co., 1425 16th St., and Denver Athletic Club, Denver, Colo. ADAMS, Henry, (Charter Member; Presidential Member), (Pres. 1899; Board of Managers 1894; Council 1895; 1898; 2nd Vice-Pres. 1897), Consulting Engr., (for mail), 1263-1269 Calvert Bldg., and 609 West 40th St., Baltimore, Md. ADDAMS, Homer, (Charter Member; Presidential Member), (Council 1915-1925; Treas. 1915-1922; 1st Vice-Pres. 1923; Pres. 1924), Pres., (for mail), Kewanee Boiler Co., Inc.. 570 Seventh Ave., New York, N. Y. and 405 High St., German-
town, Pa. ADDY, Edward, (1923), Supervising Engr.. Board
of Education, 155 College St., and 31 Deloraine
St., Toronto. Ont., Can. ADDY, Robert, (1919), Plbg. and Htg. Con
tractor, 7012 Fort St., W., Detroit, Mich. ADLER, Alphonse A.,* (1921), Consulting Engr.,
(for mail), 9 Murray St., New York, N. Y., and 35 Stewart Ave.. Arlington, N. J. ADRIANSE, Paul R., (1923), Sales Engr., Buffalo Forge Co., 368 Kirby Bldg., Cleveland, O. AHERN, Thos. L., (Junior 1923). Vice-Pres., (for mail), John F. Ahern Co., 80 S. Portland St., and 157 Sixth St., Fond du Lac, Wig. AHLFF, Albert A., (Associate 1918; 1923), Br. Mgr., Spencer Heater Co.. 433 Jackson Bldg., and (for mail), 621 Crescent Ave.,
Buffalo, N. Y.
ALEXANDER. Alfred D., (1915), Consulting Engr., 19 S. LaSalle St., Chicago, and (for mail), 168 Marion St., Oak Park, 111.
ALEXANDER, Charles H., (1926). Br. Mgr. and Mfgr's. Agent, 101 Campau Ave., N.W., and 532 Paris Ave., S.E., Grand Rapids. Mich.
ALGER, Richard W., (1911), Vice-Pres. and Treas., (for mail). Marye, Alger & Alger, Inc., Archts., 801-6 Walton Bldg., and 15 Penn Ave.,
Atlanta, Ga. ALLAN, Chas. D., (1920), Consulting Engr., (for
mail), 127 N. Dearborn St., and 4526 Dover St.,
Chicago. 111. ALLEN, Harry D., (1917). Htg. and Vtg. Con
tracting.. (for mail), Harry D. Allen 2940 W. Lake St., and 1640 N. Tuna Ave., Chicago. 111. ALLEN, LeRoy E., (1921). Contracting Engr., (for mail). Grinnell Co., Inc., and 15 N. Elm St.. Warren. O. ALLEN, W. Harwell, (Junior 1910; 1911). Pres.. State Htg. & Power Co.. 272 Walnut St., and (for mail), 1346 Goodbar Place, P. O. Box* 331, Memphis. Tenn. ALLING, Harold W., (Junior 1917; Associate 1925). Accountant and. Engr., (for mail), Chimside. Roberts & Langston, 170 Broadway, New York, N. Y., and 529 River St., Hoboken, N. J. ALLISON. Orrie H., (1915), Jobstown, N. J. ALMIRALL, Juan A., (1897). Pres.. Almirall & Co.. Inc., 66 W. Broadway, New York, N. Y. ALT, Harold L.,* (1913), P. O. Box 1188. Shang
hai. China. ALVORD, Arthur M., (1926), Pres., (for mail),
Alvord & Swift, Grand Central Terminal, New York, and 240 Hamilton Ave., New Rochelle.
N. Y.
AMIRAL, J. H., (Associate 1925), (for mail). Rutzer Htg. Co., 404 East 49th St., New York, and 2713 Voorhees Ave., Brooklyn, N. Y..-
AMMERMAN, Charles R., (1916), Consulting Engr., (for mail), 925 Continental Bk. Bldg., and 3908 Guilford Ave., Indianapolis, Ind.
AMSTEIN, Albert W., (1924). Western Dist. Mgr., (for mail). Buckeye Blower Co., 608 S. Dearborn St., and 8314 S. Paulina St., Chicago,
III.
5
Roll of Membership
ANDEL, Frank J., (1922), Pres, and Mgr., Andel
& Co., 5062 Pensacola Ave., Chicago, 111.
ANDEREGG, R. H., (1920), Chief Engr. arid
Mgr. Pump Dept., Trane Co., and (for mail),
625 S. Eighth St., La Crosse, Wis.
ANDERSON, Claude A., (1916), Dist. Mgr., (for
mail), llg Elec. Vtg. Co., 325 Commercial Tr.
Bldg., Philadelphia, and 5025 Pulaski Ave., '
Germantown, Pa.
ANDERSON, Edward L., (1921), Asst. Dist.
Mgr., (for mail), American Blower Co., 526
Swetland Bldg., Cleveland, and Auraura St.,
Hudson, O.
ANDERSON, F. Paul,* (1921), (2nd Vice-Pres.
1925; 1st Vice-Pres. 1926. Council 1924-26),
' Dean, College of Engr., and Prof. Mech. Engr.,
(for mail), Univ. of Kentucky, and 499 E. Main
St., Lexington, Ky.
ANDERSON, H. J., (1919), Whitlock Coil Pipe
Co., 149 Broadway, New York, N. Y.
ANDERSON, S. A.. Jr., (1909). (for mail),
Anderson Bros., 303 Fir St., and P. O. Box 486,
908 North Ave., La Grande, Ore.
ANDRESEN, A. W., (1926), Crane Co., 400
Third Ave., N., and (for mail), 5311 Penn Ave.,
. S., Minneapolis, Minn.
ANGELL, Winfield T., (1922), District Engr.,
(for mail), Socony Burner Corp., 1130 Main St.,
Hartford, and Elmwood, Conn.
ANGUS, Harry H., (1918), Consulting Engr., 2
Bloor St., W., and (for mail), 32 Sydney St.,
Kingston, Ont., Can.
ANGUS, Robert A., (1920), Angus & Ashe, Con
sulting Engrs., 345 Madison Ave., New York,
and 19 Rich Ave., Mt. Vernon, N. Y.
ARCHER, Frank Sibley, (Junior 1926). Sales
Engr., (for mail), U. S. Radiator Corp., 303
Crosby Rd., and 12 Amherst St., Rochester,
N. Y.
'
ARENBERG, Milton K., (Associate 1920), Sales
Engr., (for mail), llg Elec. Vtg. Co., 324 W.
Monroe St., and 1380 Hyde Park Blvd., Chicago,
111.
ARKLEY, L. M.t* (1922), Prof. Mech. Engrg., (for
mail). Queen's University, and 22 Kensington
Ave., Kingston, Ont., Can.
ARMAGNAC, Arthur S., (Associate 1907; 1914),
Editor, Htg. and Vtg. Magazine, 1123 Broadway,
New York, N. Y-, and 375 Upper Mountain Ave.,
Upper Montclair, N. J.
ARMSPACH, Otto W.,* (1919), Mech. Engr., (for
mail), E. Vernon Hill Co., 64 W. Randolph St.,
and Villa Park, Chicago, 111.
ARNOLD, Robt. S., (Junior 1922; Associate
1926), Mgr. Philadelphia Dist., (for mail),
York -Htg. & Vtg. Corp., 1502 Locust St., and
1219 South 52nd St., Philadelphia. Pa.
ARONWITS, Wilfred, (Junior 1924; Associate
1925; 1926), Mech. Engr., Leon Stern, Archt.
1017 Commerce Bldg., and (for mail), 1171 Park
Ave., Rochester, N. Y.
ARTHUR, Harry W., (Associate 1920). Htg.
Engr., (for mail), Arthur Service Co., 407 Empire
Bldg., and 1411 Federal St., N. W., Pittsburgh,
Pa. . ARTHUR, John M., Jr., (1923), Industrial
Engr., Kansas City Power & Light Co., Kansas
City, Mo., and 3311 State Ave., Kansas City,
Kan.
ASHENHURST, Harold S., (Associate 1926),.
Insulation Engr., Universal Gypsum & Lime Co.,
Conway Bldg., and 6519 Algonquin Ave.,
Chicago, 111.
ASTON, James, (1919). Metallurgical Engr.,-(for
mail), A. M. Byers Co., 235 Water St., Pitts- -
burgh, and 50 Forest Ave., Ben Avon, Pa.
ATKINSON, R. E., (Junior 1923), Engr., (for
mail), C. A. Dunham Co., 230 E. Ohio St,, and
4508 N. Kilpatrick Ave., Chicago, 111.
ATKINSON, Robert E., (1897), (Board of Gov
ernors 1907), 6 Trafalgar Rd., Birkdale, South
port, Eng.
ATWATER, Lyman W., (1923), Htg. Engr.. Wm,
H. Curtin Mfg. Co., 331 Adams St., and (for
mail), 552 Rugby Rd., Brooklyn, N. Y.
AUSTIN, Frank L., (1914), Archt., 240 College St., Burlington, Vt,
AUSTIN, William E., (1909), Br. Mgr., (for mail), Natl. Radiator Co., 3032 Norfolk St., Cor.
Summit, and 210 W. Graham Rd., Richmond, Va. AXEMAN, James E., (Junior 1925), Sales Engr.,
Standard Heater Co., Williamsport, Pa., and (for
mail), 25 Portsmouth Terrace, Rochester, N. Y. AYERS, Archie E., (1921), Member of Firm, (for
mail), Rautman PIbg. & Htg. Co.. 109 Jackson
St., and 3437 Belvedere Ave., Seattle, Wash.
B
BABBITT, Edward C., (1923), Engr., (for mail),.
Snyder, Babbitt & Mathews. 16 E. Broad St.,
and 1157 E. Mound St., Columbus, O.
-
BABBITT, Edward F., (1923), Engr.. Snyder.
Babbitt & Mathews, 16 E. Broad St., Columbus,
O. BACHLER, Harry C., (Junior 1921), Htg. Engr.,
(for mail), C. F. Bachler & Sons, 139 N. Fourth
St., and 836 Kenmore Rd., Philadelphia, Pa.
BACHLER, Leonard J., (1918), Engr., (for mail),
Molby Boiler Co., 41 East 42nd St., and 55 West
49th St., New York, N. Y.
BACKUS, Theodore H. L,, (1916), Htg. and Vtg. Engr., (for mail). Schumacher & Backus, 308-12
S. Main St., and 1018 Vaughn St., Ann Arbor,
- Mich.
BAETZ, Henry, (1919), (for mail), Skinner Bros.
. Mfg. Co., Inc., 1424 S. Vandeventer St., and
5854 Etzel Ave., St. Louis, Mo.
BAGNALL, George A., (1926), Mgr. Htg. Dept.,
(for mail), Hendrie & Bolthoff Mfg. & Supply Co., 1635 17th St., arid 4601 East 26th Ave... Denver, Colo.
BAHNSON, Frederic F.,* (1917), Chief Engr. and
Partner, (for mail). The Bahnson Co., 1001 S.
Marshall St., and 28 Cascade Ave., Winston-
Salem, N. C. BAIER, Walter P., (Associate 1924), Pres., (for
mail), Baier Bros., Inc., 4452 Cass Ave., and
1968 Gladstone Ave., Detroit, Mich.
BAILEY, Edward P., Jr., (1925), Pres., (for mail).
The Bryant Heater & Mfg. Co.. 17825 St. Clair
Ave., and 10510 Park Lane, Cleveland, O.
BAILEY, Jos. H.,` (Junior 1923),. Carrier Engrg.
Corp., 750 Frelinghuysen Ave., Newark, N. J.
BAIN, James G., (1920), Pres., Ideal Specialty
Co., P. O. Box 493, Helena, Mont.
BAIRD, F. X., (Associate 1925), 26 Boyden Ave.,
S. Orange, N. J. BAKER, Edward V., (1923), Silent Partner, J. H.
- Olson, 4012 State St., and (for mail), 3654
Wentworth Ave., Chicago, 111.
BAKER, Emerit E., (1910), Pres., Kewanee
Boiler Co., Kewanee, 111-
.
BAKER, H. W. H., (1918), Sanitary and. Htg.
Engr., J. Twyford & .Co., 20 British .Bund,
Tientsin, China. BAKER, Howard C., (1921), Pres., (for mail).
The Howard C. Baker Co., 213 Michigan St,,
. and 15 Columbia St., Toledo, O. BAKER, Irving C., (1921). Dist, Engr., American
Blower Co., 614 Bona Allen Bldg., Atlanta, Ga.
BAKER, Roland H., (Associate 1924), Pres, and
Treas., (for mail), R. H. Baker Co., Inc., Kendall Sq. Bldg., Cambridge, and 50 Washington St.,
Newton, Mass.
BALDWIN, William H., (1921), Sales Engr.. (for
mail), C. A. Dunham Co., Ltd., 229 College St.;
and 600 Windermere Ave., Toronto, Ont.. Can.
BAMPTON, C. Morton, (1919), Vice-Pres. and
Secy., (for mail). Ideal Htg. Co., 915 Gates Ave.,
Brooklyn, and 8843 Parkview Ave., Hollis Park
Gardens, L. T.. N. Y.
BARKER, Arthur H.,*(1906), Consulting Engr., (for mail), 100 Victoria St.,Westminster, London,
S. W. 1, and Oakhill House, Beckenham, Kent,
Eng.
BARNES, Arthur F., (1921), Mech. Engr. arid
Owner, (for mail), Texas Engr. Co., 925 Elec.
Bldg., and 2403 Madison St., Houston, Tex.
6
American Society of Heating and Ventilating Engineers Guide, 1926-27
BARNES, Arthur R., (1924), W. E. Hulse & Co.,
and 24 E. Sixth St., Hutchinson, Kan.
BARR, George W., (1905), Asst. General Sales Mgr., Hoffman Specialty Co., 25 West 45th St.,
New York, and (for mail), 41 Janvrin Rd.,
Bronxville, N. Y.
BARRE, Louis S., (1925), Htg. and Sanitary
Engr., Garage Central, 67 Rue de France,
Tientsin, China.
.
BARROWS, Charles E., (Associate 1921), Mgr.,
(for mail), City Sales Dept., Crane Co., 156 N.
Jefferson St., Chicago, and Orrington Hotel, Evanston; 111.
BARRY, Patrick I., (1920). Htg. Engr., M. Barry
' 5l Co., 4 Marlboro St., and 2 Clarence Terrace, St. Luke's, Cork, Ireland.
BARTH, Herbert E., (1920), Dist. Mgr., (for . mail), American Blower Co., 2539 Woodward
Ave., and 554 Webster Hall, Detroit, Mich.
BARTLETT, Amos C., (1919), N. E. Dist. Mgr., (for mail), B. F. Sturtevant Co., 555 Massa
chusetts Trust Bldg., Boston, and 10 Dunbarton
Rd., Wollaston, Mass.
BARTLETT, Clarence D., (1923), Purchasing
Agent, Raisler Htg. Co.. 129 Amsterdam Ave.,
New York, N. Y., and (for mail), 852 Broad St.,
Bloomfield, N.'J.
BARTLETT, C. Edwin, (1922). Pres.. Bartlett &
. Co., Inc., 1938 Market St., Philadelphia, and
209 Creswell St., Ridley Park. Pa.
BARTLEY, John S., Jr., (1924) Archt., (for mail), 903 L. and J. Natl. Bk. Bldg., and 908
Elm St., Waterloo, la. BARTON, Royal Elton, (1922), Engr., (for mail).
McLean & Cousens Co., 65 Chandler St., Boston,
and Fernald Terrace, Dorchester, Mass.. .
BARWICK, Thomas, (1920), Consulting Engr.,
(for mail), Buchman & Kabn, Archts., 49 West
45th St., New York, N. Y., and 408 Rutland
Ave., W. Englewood, N. J.
BASSLER, Edwin M., (1923). Gen. Mgr., (for
mail), D. J. Murray Mfg. Co., 1002-1024 Third St., and 905 First St., Wausau, Wis.
BASTEDO, Albert E,, (1919), Vice-Pres. and
- Treas., (for mail), Burnham Boiler Corp-.
Irvington, and 12 Wilson Place, Hastings-onHudson, N. Y. '
BATEMAN, William H., Jr.,(1921), Htg. Engr.,
(for mail), C. J. Doyle, 2056 Pine St., and 2519
South 19th St., Philadelphia, Pa.
BAUM, Albert L., (1916), Member of Firm, Jaros
& Baum, 116 West 39th St., and (for mail), 562
West 113th St., New York, N. Y. BAXTER, Robert`A., (1923), Sales Engr., (for
mail), Utica Heater Co., P. O. Box 44, and 14
Cornelius Ave., Schenectady, N. Y. BAYSE, Harry V., (1923), Pres., American Fur
nace Co., 2725 Morgan St., and 6959 Hancock
Ave., St., Louis, Mo. BEAHM, Robert B., 2nd, (1919), Treas., Eagan
& Beahm, Inc., 304-6 Stephen Girard Bldg.,
Philadelphia, and Haverford. Pa.
BEATTY, David J., (1918), Htg. and Vtg. Engr..
(for mail), Chas. Schneider Co., 492 East 163rd
St., New York, and 1274 New York Ave.,
Brooklyn, N. Y.
BEAURRIENNE, Auguste,* (1912), Contracting
and Consulting Engr., 25 Rue des Marguettes,
Paris, 12th Arr., France.
BEEBE, Frederick E. W., (Associate 1915), Sales
Engr., (for mail), Johnson Service Co., 118 East
28th St., New York, N. Y., and 543 Chilton St.,
Elizabeth, N. J.
BEGGS, Douglas T., (1922), Mgr., (for mail),
Wm. Gordon Corp., 516 Bona Allen Bldg.,
Atlanta, and 612 W. College Ave., Decatur, Ga.
BELING, Earl H., (Junior 1925), Htg. Engr.,
Warren Webster & Co., 549 W. Washington St.,
and (for mail), 5604 S. Carpenter St., Chicago, 111.
BEMAN, Myron C., (1926), Consulting Engr.,
(for mail). Beman & Candee. 607 White Bldg., 55 Granger Place., Buffalo, N. Y.
BENDER, Charles P.t (1923), Partner, (for mail),
C. and J. Bender, 1734 Flatbush Ave., and 2045
East I9th St., Brooklyn, N. Y.
BENEDICT, Everett R., (1926), Construction Engr., (for mail), American District Steam Co., N. Tonawanda, and 245 Elmwood Ave., Buffalo, N. Y.
BENNITT, George E,, (1918), Utilization Dept.. Consolidated Gas Co., 130 East 15th St., New
York. N. Y. BENTZ,. Harry, (1915), Pres., (for mail), Bentz
Engrg. Corp., 661 Frelinghuysen Ave., Newark, and Montclair, N. J. BERCHTOLD, Edward Wm., (Associate 1925),
Industrial Engr., Boston Consolidated Gas Co., 149 Tremont St., Boston, and (for mail), .266 Columbian St., S. Weymouth, Mass. BERG, A. Herman, (1919), Pres., (formail), Berg
Htg. & Vtg. Co., 754 Laura Ave*., and 140 N.
Stafford, Huntington Park. Calif.
'
BERGER, Clyde D., (1922), Gen. Supt. and Mech.
Engr., H. E. Crook Co., Inc., Contractors and Engrs., 28 Light St., and 2G04 Overland Ave.,
Baltimore. Md.
,
BERGHOEFER, Victor A., (Junior 192G), Sales
Engr., Sterling Engrg. Co., 1640 Holton St., and
1104 Island Ave., Milwaukee, Wis. BERGNER, William'G., (Associate 1923), Mgr.
and Secy., Natl. Trade- Exterision Bureau,Mercantile Bk. Bldg., and (for mail), 727
Washington Ave., Evansville, Ind. BERMAN, Louis K., (1908), Secy., (for mail),
Raisler Htg. Co., 129 Amsterdam Ave., and 221
West 82nd St., New York. N. Y. BERRINGER, Sidney H,, (1926). Sales Engr..
Hoffman Specialty Co., 130 N. Wells St., and
(for mail), 1657 Juneway Terrace, Chicago, 111. BEVERLEY, R. Carter, (1905), Pres, and Treas.,
R. C. Beverley Htg. Co., Inc., 308 E. Main St., and (for mail), 3812 Chamberlayne Ave.,
Richmond, Va.
BEYER, Jack E., (Junior 1924), Htg/and Vtg. Engr., The Weiss Htg. & Plbg. Co., 5604 Cedar
Ave., and (for mail), 1317 East 112th St., Cleveland, O.
B1DWELL, Raymond E., (Associate 1924), Vice-
Pres. and Local Mgr., (for mail). The KelloggMackay Co., 2030 Walnut St., and 7310 Madison,
Kansas City, Mo.
BINDER, Charles G., (1920). Mgr. Htg. Dept., Warren Webster & Co., 17th and Federal Sts., Camden, and (for mail), 115 Oak Terrace,
Merchantville, N. J.
BINDER, Irving, (Junior 1920; 1922), Estimator, Keasbey & Mattison, 131 Cedar St., and (for
mail), 106 West 47th St., New York, N* Y.
BIRCH, Herbert R:, (1922), Sales Engr.. U. S.
Radiator Corp., 101 Park Ave., arid 875 West
181st St., New York, N. Y.
`
BIRKHOLZ, Harold A., (Junior 1926), Chief
Draftsman, L. H. Prentice Co., 1048-50 W. Van
Buren St., and (for mail), 3731 N. Irving Ave.,
Chicago, 111.
BIRKHOLZ, H. E., (Associate 1925), Natl. Air Filter Co., 9 S. Clinton St., Chicago. 111.
BIRRELL, Allan Lloyd, (Associate 1925). Engr., (for mail), Chapman & Oxley, 506 Harbor Com
mission Bldg., and 201 Pacific Ave>, 'Toronto,
Orit.. Can.
BISHOP, Charles R., (1901), (Council 1916), Vice-Pres., (for mail), Caloroil Burner Corp.,
' 5 East 40th St., New York, and 413 Locust St.,
Lockport, N. Y.
BISHOP, Frederick R., (1921), Salesman and
Engr., Furnace Dept., Michigan Stove Co., 3306 E. Jefferson Ave., and (for mail), 3780 Carter
Ave., Detroit, Mich.
BLACK, Edgar Newbold, 3rd, (1922), Mgr..
Kewanee Boiler Go.. Inc., 510 Real Estate Trade Bldg.. Broad and Chestnut Sts., and (for mail),
1533 Locust St., Philadelphia, Pa.
BLACK, Fred C., (1919), Pres., (for mail). F. C.
Black Co.. 28 N. Desplaines St., and 4535 N. Ashland Ave., Chicago, 111.
BLACK, George E., (1915). Factory Mgr.. H. H..
Robertson Co.. Ambridge. and .(for mail). 709
Broad St., Sewickley. Pa.
-
7
Roll of Membership
BLACK, Harry G., (1917), Htg. Contractor, (for BOLLING. J. E.,* (Junior 1918; 1921), Publicity
. mail), P. Gormly Co., 155 N. Tenth St., and 927
Engr.. Box 46, East Orange, N. J.
North 65th St., Philadelphia, Pa.
BOLSINGER, Raymon C,, (1916), Secy., (for
BLACK, John J. A., (Junior 1922; Associate
mail), Fowler & Wolf Mfg. Co., 521 Bulletin
1925), Pres., (for mail). John Black & Son, Inc.,
Bldg., Philadelphia, Pa., and *238 E. Madison
134 Ptospect St., and 21 Prospect St., Trenton,
N. J.
'
BLACKHALL, Wllraot R., (1922). Sales Engr..
Gurney Foundry Co., Ltd., 500 King St., W,,
Ave.. Collingswood, N. J. BOLTON, Reginald Pelham* (1897), (Presi
dential Member), (Pres. 1911), (Board of Governors 1901; 2nd Vice-Pres. 1903; 1st Vice
and (for mail), 332 Waverly Rd., Toronto, Ont., .
Can.
BLACKMAN, Alfred O., (1911). Supt. Power and
Pres. 1905-1910; Board of Governors 1912-1913),
Pres., (for mail). R. P. Bolton Co., 116 East 19th St., and 638 West 158th St., New York, N. Y.
Plant, (for mail). The Yale & Towne Mfg. Co., BONDY, Winfield S,, (Junior 1926), D. D. Kim
200 Henry St., and 48 Hillcrest Ave., Stamford, Conn.
BLACKMORE, Frederick H., (1923). Plant Mgr.,
ball, 15 West 38th St., New York, and (for mail), 1154 52nd St., Brooklyn, N. Y. BOON, George, (1915), Vice-Pres. and Gen. Mgr.,
U. S. Radiator Corp., and (for mail), 526 E.
(for mail), Boon & Sample. Inc., 3008 Ludlow St.,
Vandalia St.. Edwardsville. 111. `BLACKMORE, George C., (Charter Member),
and 6428 Morris Park Rd.. Philadelphia, Pa. BOOTH, Charles A., (1917), Vice-Pres., (for
435 Maple Ave., Edgewood Park, Allegheny Co., Pa.
BLACKMORE, J. J.* (Charter Member),
Council 1896; Bd. of Gov. 1904; Secy. 1914-15), 32 West 40th St., New York, N. Y.
BLADON, James B., (1909), Chief Engr., Darling Bros., Ltd;, 120 Prince St., Montreal, and (for
mail), Buffalo Forge Co.. 490 Broadway, and 142
Summit Ave., Buffalo, N. Y.
BOOTH, Harry N., (Associate 1917; 1924), Mgr.,
(for mail). New York Br., U. S. Radiator Corp.,
101 Park Ave., New York, and 40 Manursing
Ave., Rye. N. Y.
BORNEMANN, Walter A., (Junior 1923; 1924),
mail), 33 Holton Ave., Westmount, Que., Can. BLAIR, Wm. B., (Associate 1923), Taplin Furnace
Sales Engr.. (for mail). Carrier Engr. Corp., 2021 Land Title Bldg., and 494 Baudinot St..
Co.. 3006 First Ave., S., Minneapolis. Minn. BLANDING, Geo. H., (1919), Sales Engr..
Philadelphia, Pa. BOSCHKE, F. G., (1925), 760 Kerckhoff Bldg.,
Johnson Service Co., 1355 W. Washington Blvd.,
and 1111 West 51st St., Los Angeles, Calif.
Chicago, and (for mail), 729 Hayes Ave.. Oak Park. 111.
BOSTAIN, James C., (1923), Sales and Service Engr., (for mail), Williamson Heater Co., 337
BLANEY, Charles A., (1914). Wheeler-Blaney
W. Fifth St., Cincinnati, and 3910 Floral Ave.,
Co.. 223 N. Burdick St., Kalamazoo, Mich. BLANK1N, Merrill F., 0unior 1919; Associate
Norwood, O.
`
'
BOSTWICK, Clinton G., (1924), Supt., (for
1926), Vice-Pres., Haynes Selling Co., Inc., 2013 Sansom St., and (for mail), 3328 W. Penn St.,
mail), Braman Dow & Co., 239 Causeway St., Boston, and 20 Wedgemen Ave., Winchester.
Philadelphia, Pa.
BLEST, Frank S., (1923), Treas.. (for mail. Blest BOSWIN, George A./(1917). Secy., (for mail).
& Emery Co., Inc., 784 Coney Island Ave., and
R. B. Haywood Co., 1714 Sheffield Ave., and 902
226 Argyle Rd., Brooklyn, N. Y.
Diversey Parkway, Chicago, 111.
BLISS, Sherwood C., (Associate 1926), Asst, to BOWDEN, Frank, (Associate 1924), Chief Engr.
Pres., Richmond Radiator Co., and (for mail),
and Instructor., (for mail). Windsor & Walker-
White Swan Hotel, Uniontown, Pa.
ville Tech. School. Giles Blvd., and 1609 Dougall
BLODGETT, Will H., (Junior 1923), Htg. Engr..
Ave., Windsor, Ont., Can. .
(for mail). Timken-Detroit Co., 4461 Cass Ave., BOWERS, A. F., (Associate 1919), Pres. and
and 691 Merrick, Detroit, Mich.
Treas., (for mail). Industrial Htg. & Engrg. Co.,
BLOMFELDT. Allen A., (1914). Sales Mgr., (for
490 Broadway, and 697 Hachett Ave., Mil
mail), llg Elec. Vtg. Co., 405 Union Central
waukee, Wis.
Bldg., Cincinnati, O.. and 100 Mayo Ave., BOWERS, J. Sylvan, (1921), J. Sylvan.Bowers
Newport, Ky.
Htg. Specialty Co., 2525a W. St. Louis Ave., St.
BLOMQUIST. Edwin G.. (Junior 1920), Sales- Louis, Mo.
man, U. S. Radiator Corp., 136 Federal St., BOWMAN, Howard A., (Associate 1926), Sales
Boston, and (for mail). 48 Alpine St., Arlington,
Engr., (for mail), American Radiator Co., 339
Mass.
Second Ave., and 5599 Baum Blvd., Pittsburgh,
BLOOM, Samuel C., (1915). Sole Owner,, (for
Pa.
mail). S. C. Bloom & Co., 53 W. Jackson St., and BOYD, D. Knickerbacker,* (1921), (for mail),
1953 East 72nd St., Chicago, 111.
Otis Bldg.. 112 South 16th St., and Coronado
BLOOM, William, (1924), Htg. Engr., (for mail).
Apts., 22nd and Chestnut Sts., Philadelphia, Pa.
Bloom Htg. Systems. 153 Centre St., New York, BOYD, William R., (Junior 1924; Associate 1926),
and 701 Ave., C., Brooklyn, N. Y.
(for mail). Turner Supply Co., 8 W. Sixth St.,
BOALES, William G., (Associate 1923), Sales
and 702 East 19th St., Chester, Pa.
man, Hoffman Specialty Co., 25 West 45th St., BOYDEN, Davis S.,* (1909). (Council 1917),
New York, N. Y., and (for mail), Webster Hall,
Supt. Steam Htg. Service Dept., (for mail).
Detroit, Mich.
Edison Elec. Illuminating Co., 39 Boylston St.,
BOARDMAN, Wallace E., (1923), Htg. and Vtg.
Boston, and 72 Gardner St., Allston, Mass.
Engr., (for mail). Stone & Webster, Inc., 147 BRABBEE, Chas. W.,* (1925). (for mail), Ameri
Milk St., Boston, and 54 Pleasant St., Wakefield,
can Radiator Co.. 675 Bronx River Rd., Yonkers,
Mass.
and DeWitt and Marguard Aves., Bronxville,
BOEKER, Carl Herman, (1926), Vice-Pres. and
N. Y.
.
Gen. Mgr., Central Supply Co., Inc., 838-856 BRADBURY, George L.t (1921), Co-partner and
Main Ave., and (for mail). 39 High St., Passaic, N. J.
Mgr., (for mail). Bradbury Bros. Htg. Co., 1219 Stout St., and 1254 Race St.. Denver, Colo.
BOGARDUS, George W., (1925), Br. Mgr., (for BRADF1ELD, William W., (1926), Engr., 909
mail), Kewanee Boiler Co.. 707 Hubbell Bldg.,
Michigan Trust Bldg., Grand Rapids, Mich.
and 215 Foster Drive. Des Moines. Iowa.
. BRADLEY, Eugene P.,* (1906), Pres., (for mail),
BOGATY, Hermann S., (1921), Chief Engr. (for
Hester, Bradley Co., 4200 Forest Park Blvd., St.
mail), Proctor & Schwartz, Inc., Seventh and
Louis, and 6935 Pershing Ave., University City,
Tabor Rd., and 5243 N. Tenth St., Philadelphia, Pa.
Mo. BRADLEY, John T., (1908). (Bd. of Gov. 1911).
BOISCLAIR, Hugh Cappes, (1926), Dist. Repr.,
Pres., (for mail), Bradley Htg. Co., 3834 Olive
(for mail), Warren Webster & Co., 342-3 Brown
St., St. Louis, and 4 Yale Ave., University City,
Marx Bldg., and 127 Pine St.. Birmingham, Ala.
Mo.
8
American Society of Heating and Ventilating Engineers Guide, 1926-27
BRADLEY, Royal H,, (1915), Pres., (for mail),. Kelsey Htg. Co., 277 James St., and 400 Oak St.,
Syracuse, N. Y.
.
BRADY, James L., (Associate 1925), (for mail).
J. L. Brady Co., 551 15th Ave., and 1912 Third
St., E. Moline, 111. BRAEMER, William G. R., (1915), Vice-Pres.,
(for mail). Universal Humidifying Co., 2013
Sansom St., Philadelphia, Pa., and 213 Warwick
Rd., Haddonfield, N. J. BRANDELES, H. J., (1921). Pres, and Mgr., (for
mail), H. J. Brandeles Corp., 435 Lafayette St.,
and 66 Prospect St., Utica, N. Y. BRASSINGTON, Arthur F., (Associate 1918),
Htg. Engr.. 520-24 West 41st St., New York, and
(for mail), 337 Richmond Ave,, Port Richmond,
N. Y.
.`
BRAUER, Roy, (1926), Htg. and Vtg. Engr.. The
Schley & Nash Co., 709 Columbia Bk. Bldg.,
Pittsburgh, Pa. BRAUN, Louis T., (1921), Secy., Chicago Master
Steam Fitters Assn., 1213 Chamber of Commerce,
and (for mail), 1418 Jonquil Terrace, Chicago, 111. BRAY, Daniel S., (Associate 1920), Local Mgr.,
(for mail), Peerless Heater Co., 1235-45 St. Clair Ave., and 9925 Olivet- Ave., Cleveland, O.
BRECKENRIDGE, L. P,, (1920), Prof. Mech. Engrg. (Emeritus), Sheffield Scientific School, Yale Uiuv., New Haven, Conn., and (for mail).
"The Brackens," N. Ferrisburg, Vt. BREDESON, C. R., (Junior 1921; Associate 1925),,
American Radiator Co, Prior Ave., and Min
nehaha St., St. Paul, Minn. BREEN, Jos. W., (1916), Htg. Engr., Wyalusing
Ave. and Fallon St., and (for mail), 957 Fallon
St.. W. Philadelphia, Pa. BREITENBACH, Walter J., (Junior 1923;
Associate 1925), Designer and Estimator, Langenberg Mfg. Co., 4519-33 N. Euclid Ave., and
5067 Arlington Ave., St. Louis. Mo. BRENDER, Peter E., (1920). Chief Engr.. Univ.
of Mich. Hospital, and (for mail), 13272 Geddes
Ave.. Ann Arbor, Mich. BRESNAHAN, James J., (1919), Pres and.Treas.,
James J. Bresnahan, Inc., 37-41 Pearl St., and
92 Linwood Ave., Buffalo, N. Y. BREWSTER, Donald R., (1926), Consulting
Dry Kiln Engr., (for mail). 104 Baltimore Bldg., and 349 Hawthorne St., Memphis, Tenn.
BRICKEY, Joel P., (Associate 1924), 665 S.
Pearl St., Denver, Colo.
.
BRIDE, W. T,, (Junior 1925), Estimating Engr.
and Draftsman, Bride, Grimes & Co., 526 Essex St., and 116 E. Haverhill St., Lawrence. Mass.
BRIDGES, Frank G.f (1919). 433 Dundee Drive,
Cleveland, O.
BRINTON, Joseph W,, (1920). Mgr. Boston
Office, (for mail), American Blower Co., 10 High ` St., Boston ,and 9 Summit Ave., Brookline, Mass.
BRODERICK, Joseph F., (Junior 1914; 1918),
Engr., Thompson-Starrett Co.. 245 Hunters Point Ave., Long Island City, N. Y., and (for
mail), P. O. Box 388, Springdale, Conn.
BROGAN, James J., (Associate 1917). Brogan &
Co., (for mail). 810 Race St., Philadelphia, and
6142 Lebanon Ave;, Overbrook, Pa.
BRONSON, Carlos E., (1919), Mech. Engr., (for mail), Kewanee Boiler Co., and 311 McKinley
Ave., Kewanee, 111.
BROOKS, Thomas C., (1923), Pres, and Treas.,
T. C. Brooks Co., 101 W. Dedham St., Boston,
; ` Mass.
BROWN, Aubrey I., (1923). Ohio State. Umv.,
Columbus, O.
BROWN, Edward R.. (1920). (for mail). The
Brown Co., 1053 Baltimore Ave., W,, and 2290
LaMothe Ave., Detroit, Mich.
BROWN, Foskett,* (1926), Pres., (for mail), Foskett Brown Mfg. Co., 1608 Harrison St.,
P. O. Box 722, and Vanderbilt Campus, Nash
ville, Tenn.
'
BROWN, John H., (1920). Mgr., (for mail),
Keasbey & Mattison Co., 429 N. Washington Ave., and 3704 Blaisdell St., Minneapolis, Minn.
BROWN, Robert H., (1926), Research Engr., (for
mail), Parks-Cramer Co., 1102 Old South Bldg.,
Boston, and 75 Glen Rd., Jamaica Plain, Mass.
BROWN, Stephen J., (Associate 1919), Pres., Globe Vtg. Co.. 205 River St., Troy. N. Y.
BROWN, William H., (Associate 1923), Mgr. Plbg. and Htg. Dept., C. E. Armstrong & Sons,
238 Fifth Ave., and 710 Seventh. Ave., Clinton,
Iowa.
-
BROWNE, Alfred L., (1923), Repr., (for mail),
Illinois Engrg. Co., 3514 Grand Central Terminal,
New York. N. Y., and 253 Highland Rd., S.
Orange, N. J. BROWNELL, Chester D., (1923),. Mgr. and
Engr., (for mail). Reliable Plbg. & Htg. Co., 109 W, University Ave., and 307 W. White St.,
Champaign, 111. BRUEGGEMAN, Arthur R., (1920), Pres., (for
mail). The A. R. Brueggeman Co., Keith Bldg.,
Cleveland, and 17220 Aldersyde Drive, Shaker
Heights. Cleveland, O. BRUNETT, Adrian L., (1923), Mech. Engr.,
P. O. Box 16. Rockville, Md.
BRUNNER, Herbert, (1924), Consulting Engr. and Pres., (for mail), Brunner Engr. Co., Inc.,
320 West 48th St., and 41 West 69th St., New
York, N. Y. BRUNT, T. Bayard, (1917), Chief Engr. and
Mgr., Mechanical Equipt. Co., 214 South 12th
St., Philadelphia, Pa., and (for mail), 405 Eighth
St.. Riverton. N. J.
BRUSMAN, Harry M., (1923), Htg. and Sanitary
Engr., Natl. Cash Register Co., Dayton, O. BRYANT, Alice G.,* (1921). 502 Beacon St..
Boston. Mass. BRYANT, Percy J., (1915), Chief Engr.. (for
mail), U. S. Military Academy, West Point, and 231 Carpenter Ave.. Newburgh, N. Y.
BRYCE, Stephen D., (1921), Partner, (for mail).
Bryce Htg. & Vtg. Co., 415 Spitzer Bldg., and
2907 Rockwood Place, Toledo, O.
BUCKLEY, Roy B., (Associate 1924), (for mail). The American Cornice Works Co., 237-41 N.
Water St.j and 161 S. Belmont Ave., Wichita,
Kans.
BUDER, Chas. G. * (1919). Western Sales Mgr.,
(for mail). Monarch Metal Products Co., 5020
Penrose St., and 1441 Hamilton Ave., St. Louis,
Mo. BUEL, H. G., (Associate 1921), Vice-Pres.,
Tilghman Moyer Co., 141 N. Ninth St., and (for
mail), 2135 Chew St., Allentown. Pa. BUENGER, Albert, (Junior 1917; 1920), Mech.
Engr., C. H. Johnston, Arch., 715- Capital Bk.
Bldg., and (for mail). 1666 Stanford Ave., St.
Paul. Minn. BUENSOD, Alfred C., (1918), Mech. Sales Engr.,
(for mail). Carrier Engrg. Corp-, 39 Cortlandt
St., and 125 West 12th St., New York, N. Y.
BULKELEY, Claude A.,* (1923), Supt. and Mech, Research Engr., (for mail), E. T. du Pont
de Nemours & Co., du Pont Bldg., and 1313 W.
Eighth St.. Wilmington. Del.
BUMSTEAD, Francis Edwin, (1925). Owner, (for
mail). Bumstead Htg. & Plbg. Co., 414 E. Dale St., and 803 N. Wohsatch Ave., Colorado Springs,
Colo.
BUNNELL, Ercell W., (Junior 1923; 1924), Sales
Engr,, (for mail), Warren, Knight & Davis, Em
pire Bldg., and 812 Cotton Ave., Birmingham, Ala.
BURGER, John C., (1919), Estimator and Supt.,
(for mail). Geo. A. Henrich Co., 702 N. Wells St.,
and 7201 Chaplain Ave., Chicago, 111.
BURKE, Fletcher H., (1925), Consulting Engr.,
(for mail). Fletcher H. Burke--John C. Wright,
Associate. 681 Ellicott Sq., and 276 Sterling
Ave., Buffalo, N. Y.
BURKE, George B., (1926), Vice-Pres., Sarco
Co.. Inc., 53 W. Jackson Blvd., Chicago, 111.
BURNAP, Charles W., (1922), Herman Nelson
Corp., 724 Commercial St., Emporia, Kans. .
BURNETT, Earle S., (1920), Mech. Engr., (for
mail). Bureau of Mines, U. S. Helium Prod.
Plant. P. O. Box 602, and 4005 Oakland St., Ft.
Worth, Tex.
`
9
Roll of Membership
BURNS, Edward J., (1923). Htg. Engr.. (for mail). H. Kelly & Co.. 925 Plymouth Bldg., and.
4716 Aldrich Ave., S., Minneapolis. Minn. BURNS. Willard A., (1924). Collins & Burns Co.,
1728 Farwell Ave.. Chicago. 111. BURR, Ralph J., (Associate 1919), Htg. Contract*
ing, Standish, Mich. BURRITT, Charles G., (Associate 1916), Mgr.',
(for mail), Johnson Service Co.. 922 Second Ave., and 1425 LaSalle Ave., Minneapolis. Minn. BURT, Henry Jackson, (Associate 1926), Con sulting Engr., (for mail). 645 N. Michigan Ave.,
Chicago, and 416 Ellis Ave., Wheaton. 111. BURT, John E., (1924), J. E. Burt & Son, 2442
South 16th St., Philadelphia, Pa.
BURTON, Clarence A., (1919), Mgr., (for mail).
Kewanee Boiler Co.. 2020 Wyandotte St., and
3534 Virginia Ave., Kansas City, Mo.
*
BUSHNELL, Carl D., (Associate 1921). Pres., (for
mail). Bushnell Mchy. Co.. Century Bldg.,
Pittsburgh, and 94 Pilgrim Rd., Rosslyn Farms,
Carnegie, Pa.
'
BUTLER, Peter D., (1922), Salesman, U. S.
Radiator Corp., 101 Park Ave., New York, N. Y.,
and (for mail), 1131 Summit Ave., Jersey City, N. J.
BUTLER, Thomas F., (Associate 1919), Htg. Vtg. and PIbg., (for mail), 545 Broadway, and W. Erie and Madison Aves., Lorain, O.
BYRNES, Thomas F., (Junior 1924; Associate 1925), Htg. and Vtg. Engr., 53 Grove St., and
(for mail), 58 Adelaide St., Hartford, Conn.
BYSOM, Leslie L., (1915), Public Works Dept.,
Puget Sound Navy Yard, and (for mail), 618
Boston St., Bremerton, Welsh.
.
C
CADMUS, Raymond, (1922), Engr. and Estima
tor, Johnston Heat Co., 131 East 26th St., New York, N. Y., and (for mail), 11 Park Ave.,
Maplewood, N. J.
CADWELL, William H., (1916), Pres., (for mail), The Beaton & Cadwell Mfg. Co.. P. O. Box 1012,
' and 130 W. Main St., New Britain, Conn.
CADZOW, William S., (1925). Mgr., V. N.
Welamb Co., 2313 Walnut St., and (for mail), 1812 W. Tiogo St., Philadelphia, Pa.
CALAHAN, John J., (1915), Supervising Engr.,
(for mail), Board of Education, Administration Bldg., 2 Harrison Ave., and 78 Bartholdi Ave., Jersey City, N. J.
CALEB, David,* (1923), Engr., Kansas City ' Power & Light Co., (for mail), 1330 Grand Ave.,
and 141 Spruce St., Kansas City, Mo.
CALLAHAN, Michael J., (1914), Pres, and Treas., Peerless Unit Ventilation Co., Skillman Ave.. and Hulst St.. Long Island City, N. Y.
CALLAHAN, Thomas H., (Junior 1924), Pres.,
(for mail), Callahan Engrg.. Co., Inc., 20 Grove St., and 248 S. Lexington Ave., White Plains, N. Y.
CALVERT, Norman W. * (1921), Engr. of Steam
Distribution, (for mail). The Detroit Edison Co..
2000 Second Ave., and 3297 Clements, Detroit,
Mich.
.
CAMPBELL, Everett K.,* (1920). Pres, and Treas., (for mail), E. K. Campbell Htg. Co.,
2445- Charlotte St., and 3717 Harrison Blvd.,
Kansas City, Mo.
.
CANTWELL, William T,, (1920), Plbg. and Htg. Contracting, (for mail), 306 Bleecker St., and
1302 Brinckerhoff Ave., Utica, N. Y.
CARDER, William W.t (Associate 1923). Br.
Mgr., (for mail). Johnson Service Co.. 210 Bona Allen Bldg., and 249 Peoples St., Atlanta, Ga.
CARLE, William E., (1926), Pres., (for mail).
Carle-Boehiing Co.,' 1641 W. Broad St., and 2220 Floyd Ave., Richmond, Va.
CARNAHAN, Glen C., (1924), Mgr., (for mail),
Htg. Section, Peoples Gas. Light & Coke Co., 122 S. Michigan Ave., and 5428 Woodlawn Ave.,
Chicago, 111.
CARPENTER, Randolph H., (1921). Mgr., New
York Office, (for mail), Nash Engr. Co., 350
Madison Ave., New York, and 10 Jefferson Ave.,
White Plains. N. Y.
CARR, Clifford H., (Associate 1924), Pres, and
Mgr., (for mail), C. H. Carr Mchy. Co.. 411
Mutual Bldg., and 5108 Main St., Kansas City,
Mo. . CARRIER, Willis H. * (1913), (Council 1923-26),
Pres., Carrier Engrg. Corp., 750 Frelinghuysen
Ave., Newark, and (for mail), Rensselaer Rd.,
Essex Fells, N. J.
CARROLL, W. J., (Associate 1925), Br. Mgr.,
Kewanee Boiler Co., 402^ Mich. Trust Bldg., and (for mail), 339 Burton St., S.E., Grand
Rapids, Mich. CARSTEN, W. H., (1923). Pres, and Mgr., (for
mail). Majestic Furnace & Mfg. Co., Inc., 1723 Westlake Ave., N., and 102 W. Canal `St.,
Seattle ^Vash
CARSTENS, Emil, (Junior 1922; Associate 1925),
B. B. Smith Co., 49th and Grays Ave., and 4615
N. Rosehill St.. Philadelphia. Pa.
CARTLAND, Silas, (Junior 1923), Sales Engr..
(for mail), Juno Heater Corp., 30 N. Dearborn
St., Chicago, and P. O. Box 84, Pentwater, Mich.
CARTY, Thomas, (1924), Pres., Carty Htg.
Corp.. 29 Audubon Ave., and 635 West 174th
St., New York. N. Y.
CARY, Albert A.,* (Charter Member), (Bd. of
Mgrs. 1894-1899; Council 1896), Consulting
Engr., 95 Liberty St.. New York, N. Y.
.
CASE, Edward W., (Associate 1916), Cbrm. of
Bd., W. A. Case & Son Mfg. Co., 220 Delaware
Ave.. Buffalo. N. Y.
CASEY, Byron L., (1921), Sales Engr., (for mail),
Ilg Elec. Vtg. Co.. 324 W. Monroe St., Chicago,
and 501 Clifton Ave., Park Ridge, 111.
.
CASH, Tidie T., (Associate 1925), Pres., (for
mail). Cash Co., 240-Seventh Ave., S,, and 20
Groveland St., Minneapolis. Minn.
'
CASSELL, John D.,* (1913), Supt. of Bldgs., (for
mail). Board of Public Education. Keystone
School Bldg., 19th and Chestnut Sts., Phila
delphia. and'740 Garfield Ave., Palmyra, N. J.
CASSERLY, T. D,, (Associate 1923), (for mail).
Weil-McLain Co., 641 Lake St., W., and 5339
Winthrop Ave., Chicago, 111. CAVILEER, James V., (Associate 1921), Sales
Engr., (for mail). Lewis, Robinson & Gant,
1302 Land Title Bldg., and 2938 North 27th St..
, Philadelphia, Pa. CHADEAYNE, George D., (Junior 1924; As
sociate 1926). Engr., Gorton & Lidgerwood Co.,
96 Liberty St., New York, and (for mail), 187
Sixth Ave., Brooklyn, N. Y.
-
CHADWICK, John Beaghen, (1926), Htg. and
Vtg. Engr., Calico Printers Assn., Ltd., Bldg.,
Dept. P. O. Box 52, St. James Bldg., Oxford St.,
and (for mail). 11 Orville Drive. Burnage Hall
Rd., Burnage. Manchester. England. CHAISSON, Clarence H., (Junior 1926), Drafts
man, C. S. Cox Engrg. Co., 625 Putnam Ave.,
Cambridge, Mass.
CHALLMAN, Samuel A., (1919), Director of
School Bldgs., State Dept, of Education, State
Capitol, St. Paul, and (for mail), 1107 Seventh
St., S.E., Minneapolis, Minn.
CHAMBERS, William E., (Associate 1923),
Htg. Contractor, 1025 Franklin St., Williams
port, Pa.
CHAPMAN, D. Witt, (1914). Consulting Engr.,
(for mail). 207 Franklin St., and 2803 Eserilh St.,
Tampa. Fla.
CHAPMAN, Frank T., (1909), (Board of Gov
ernors 1913; Council 1914-1916;_2nd Vice-Pres.
1915; 1st Vice-Pres. 1916), Mgr. of Sales, 30 The
Crescent, Montclair, N. J.
CHAPPELL, Temple Archer, (1926), Pres, and
Gen. Mgr., (for mail). Weldon Sheet Metal
Works, Inc., and P. O. Box 143, Weldon, N. C.'
CHASE, John M., (Associate 1916), Vice-Pres.
and Eastern Repr., (for mail), W. A. Case & Son
Mfg. Co., 50 East 42nd St., and 468 Riverside
Drive, New York. N. Y.
10
American Society of Heating and Ventilating Engineers Guide, 1926-27
CHENOWETH, William H., (1911), Dist. Mgr.,
(for mail), Warren Webster & Co.. 549 W.
Washington St., Chicago, and 256 Keystone
Ave., River Forest, 111.
CHERRY, Lester A., (1921), Industrial Planning
Corp., (for mail), 1102 Waibridge Bldg., and 155
Euclid Ave., Hertel Sta., Buffalo, N. Y.
CHERVEN, Victor W., (Associate 1920), Htg. and
Vtg. Engr., (for mail), Holland Furnace Co., and
326 Maple Ave., Holland, Mich.
CHESTER, Thomas,* (1917), Consulting Engr.,
718 B. Copeland St., Pittsburgh, Pa.
CHEYNEY, Charles C., (Junior 1913; Associate
1925), (for mail), Buffalo Forge Co., 562 W.
Washington Blvd., Chicago, and Glencoe, III.
CHILDRESS, Worthie Lee, (1925), Partner,
E. G. Harris & Co., 3312 W. Cary St., and 609
West 27th St. Richmond, Va.
CHITTENDEN, F. J., (Associate 1925). Mgr.,
(for mail), Walworth Co., Inc.. 43 Carolina St.,
Buffalo, and 151 Pierce Ave., Hamburg, N. Y.
CHOFFIN, C. C., (1919), Secy, and Treas., W. J.
Scholl & Co., Mahoning Ave. and Hogue St.,
Youngstown, O.
CHRISTIAN, Charles W., (1913), Htg. and Vtg.
Engr. and Contractor., (for mail), Johnston
Bldg., P. O. Box 292, and Myers Park, Charlotte,
N. C.
CHUBB, John E., (Associate 1917), Gen. Mgr.,
Kelvinator Chicago. Inc., 209 N. Michigan Ave.,
Chicago, and (for mail), 806 Colfax St.. Evans
ton, III.
CHURCH, Herbert John, (1922), Mgr., (for
mail), Darling Eros.. Ltd., 77 York St.. Toronto,
and 358 Main St., Weston, Ont., Can.
CLAFFEY, Edward J,, (1913). Pres., (for mail).
E. J. Claffey Co., 10 W. Illinois St., and 439
Melrose St., Chicago, 111.
CLARK, E. H., (1922), Br. Mgr., J. D. Swartwout
. Co., 482 Penobscot Bldg., and (for mail). Apt.
26, 132 Pingree St., Detroit, Mich.
CLARK. Fred C., (1923), Pres., F. C. Clark Htg.
Co., 5941 Baum Bldv., and 505 N. Sheridan Ave.,
Pittsburgh. Pa.
'
CLARK, Homer J., (1919), Dist. Mgr., (for mail),
Bayley Mfg. Co., 523 Penton Bldg., and 1372
Phelps Ave., Cleveland, O.
CLARK, W. Chas. M., (1915), Consulting Engr.,
(for mail), 130 Engrs. Bldg., and 2165 Cottage
Grove Drive, Cleveland, O. '
CLARK, William D:, (1908). Htg. and Vtg.
Engr.. Richardson & Boyton Co., 260 Fifth
Ave., New York, and (for mail/, 8613 110th St.,
Richmond Hill, N. Y.
CLARK, ,W. H., (1921), Htg. Engr., Anchor
. Sanitary Co., 123 Third Ave., and 1018 Wood-
bourne Ave.. Pittsburgh, Pa. '
CLARKE, Howard W., (Associate 1923), Htg.
and Vtg. Engr., Jas. Spear Stove & Htg. Co.,
1823 Market St., Philadelphia, and (for mail),
512 Yale Ave., Swarthmore, Pa.
CLARKE, Samuel S., (1909), Htg. and Vtg.
Engr., (for mail), Imperial Radiator Co., and
Canadian Sirocco Co., 605 Second St., W.,
Calgary, Alberta. Can.
CLARKSON, Robert C., Jr., (1921), Asst. Engr..
Turner Construction Co., 1713 Sansom St., and
821 South 49th St. Philadelphia, Pa.
CLARKSON, WUHam B., (1919), Director of
Research, King Vtg. Co., 251 Broadway, Owaton-
na, Minn.
,
CLEGG, Carl, (1922), Mgr., (for mail), American
Blower Co., 310 Mutual Bldg., and 3433 Homes
, St.. Kansas City, Mo.
CLELAND, James E., (1925), Owner, (for mail),
Cleland Engrg. Co., 208-19 Fifth St., and 73 N.
Princeton Circle. Lynchburg, Va.
CLEMENT, E. R., (Associate 1924), Hoffman
Specialty Co., 2450 Main St., Bridgeport, Conn.
CLIFTON, Wm. F., (1923), 313 Brook Ave..
Toronto, Ont., Can.
CLOUD, Oscar E., (Associate 1924), Mgr., (for
mail). Western Sheet Metal Works, 450 N. Main
St., and 529 Madison Ave., Wichita, Kans.
CLOUGH, Leslie, (1922), Htg. and Vtg. Engr..
75 Pierce Rd., Weymouth, Mass.
CLOW, Milton T., (1926), Research Engr., (for
mail), James B. Clow & Sons, 201 N. Talman
Ave., Chicago, and 930 Columbian Ave., Oak
Park. 111.
COE, Ivan B., (1918), Pres., (for mail), Blower
Systems Corp., 362 Plymouth Ave., S., and 122
Penhurst Ave., Rochester, N. Y.
COE, Ralph T., (1917), Senior Partner, (for mail),
The R. T. Coe Companies, 522 Cutler Bldg., and
235 Chili Ave., Rochester, N. Y.
COHAGEN, Chandler C,, (1919). Archt., (for
mail), Mclver--E. Cohagen, P. O. Box 1305,
Heddin Bldg., and 127 Wyoming Ave., Billings,
Mont.
COLBY, Clyde W., (1915), Pres., C. W. Colby &
Co., 207 Phoenix Bldg., Superior Ave., and
East 17th St., Cleveland, and 1755 Northfield
Ave., E. Cleveland, O.
COLE, Grant E., (Associate 1925), Mgr., (for
mail), The Trane Co., 21-23 River St., and 75
Galley Ave., Toronto, Ont., Can.
COLEMAN, John B., (1920). Chief Engr., (for
mail), Grinnell Co., Inc.. 260 W. Exchange St.,
and 237 Cole Ave., Providence, R. I.
COLLAMORE, Ralph, (1904), (Bd.of Gov. 1913),
Secy.. Smith, Hinchman & Grylls. 800 Mar
quette Bldg., and (for mail). 679 Pingree Ave.,
Detroit, Mich.
COLLIER, William I., (1921), Consulting Engr.,
(for mail), W. I. Collier & Co.. 15 E. Fayette St.,
Baltimore, and Ellicott City, Md.
COMSTOCK, Glen Moore, (Associate 1926),
Engr., (for mail). Rush Mchy. Co., 932 Oliver
Bldg., Pittsburgh, and 154 College Ave., Beaver,
Pa.
CONES, Benjamin, (1911), Secy, and Treas.,
Natl. Engrg. Co., (for mail), 2607 E. Washington
St., and 420 N. Keystone Ave., Indianapolis,
Ind.
CONNELL, Richard F., (1916). Mgr., (for mail),
Capitol Testing Lab., U. S. Radiator Corp., 127
Campbell Ave., and 2970 Burlingame, Detroit,
Mich.
CONNOLLY, Charles I., (Associate 1925), Sales
Repr., Hoffman Specialty Co., Waterbury,
Conn., and (for mail), 1716 Floyd Ave., Rich
mond. Va.
COOGAN, Jesse, (1915), Chief Engr., (for mail),
Jesse Coogan Engrg. Co., 404-408 Boston Bldg.,
. and Commercial Club, Salt Lake City. Utah.
COOK, Benjamin F., (1920), Member of Firm,
Cook & White, 308 Mutual Bldg., Kansas City,
and (for mail), Route 6, P. O. Box 452, Indepen
dence, Mo.
COOK, Chester D., (1921), Co-partner, (for mail),
D. F. Edwards Htg. Co., 2340 Pine St., and
4264 Botanical Ave., St. Louis. Mo.
COOK, Harris R., (Associate 1924), Dist. Mgr.,
(foe mail), American Foundry & Furn&ce Co..
805 36th St., and 1121 44th St., Milwaukee. Wis.
COOLEY, Maxwell S.,* (1911), Bureau of Yards
and Docks. Navy Dept.. Washington, D. C..
and (for mail), 5 E. Irving St., Chevy Chase, Md.
COON, Thurlow E., (1916), Pres., The Coon-
DeVisser Co., 2051 W. Lafayette, and (for mail)
826 Edison Ave., Detroit, Mich.
COOPER, Albert W., (Associate 1925), Mgr.,
Salt Lake Office, (for mail). Johnson Service Co.,
610 McIntyre Bldg., and 2543 Highland Drive,
Salt Lake City, Utah.
COOPER, Frank Irving, (1911), (Council 1914
1916), Pres., (for mail), Frank Irving Cooper
Corp.. 172 Tremont St., Boston, and Concord
Rd.. Wayland, Mass.
COOPER, Harry, (Associate 1924), Pres., (for
mail), Harry Cooper Supply Co., 223 Water St.,
and 590 E. Walnut St., Springfield, Mo.
COOPER, John W., (Junior 1921; Associate
1925), Repr., (for mail), Buffalo Forge Co., 515
Chemical Bldg., and 4305 Lindell Blvd., St.
Louis. Mo.
COOPER, Thos. R., (1923), Shanghai Water
Works Co., Shanghai, China.
COOPER, Thomas W., (Associate 1922), Mgr.;
(for mail). Utica Heater Co.', 629 Chestnut St.,
and 5117 N. Mervine St., Philadelphia, Pa.
11
Roll of Membership
CORNELL, Harold, (Associate 1925), Salesman,
Davies Supply Co.. 6601 Grand Ave.. Chicago. 111.
CORNWALL, George T., (1919), Mgr., Boiler
* Dept., (for mail). Hitchings & Co., Spring and
Louisa Sts., and 633 Madison Ave., Elizabeth,
N. J.
.
CORNWELL, F. E., (Associate 1923), Salesman,
(for mail), Natl. Htg. & Vtg. Co., Wausau, and'
1463 Murray Ave., Milwaukee, Wis.
COSGROVE, Wallace M., (1923), Mgr., (for
mail), American Radiator Co., 40 West 40th St.,
New York, N. Y.t and 240 Ridgewood `Rd- S.
Orange, N. J.
COUGHLIN, R. J., (1925), Dist. Mgr., B. F.
Sturtevant Co., 2086 Railway Exch., and (for
mail). 4943 Spalding Ave., St. Louis, Mo.
COUSENS, Walter S,, (1924), Treas.. McLean &
Cousens Co.. 65 Chandler St., Boston, and (for
mail), 70 Elm St., W. Newton, Mass.
COWARD, Herbert. (1921), Wash. Rep., (for
mail), Buffalo Forge Co., 418 Washington Loan
& Trust Bldg., Washington, D. C.. and E. Falls
Church, Va.
COWLES, Benjamin E., (1919), Htg. Engr., (for
mail), Kellogg-Mackay Co., 824 S. Fourth St.,
Minneapolis, and 3711 Colfax Ave., N.t N.
Minneapolis, Minn.
COX, Christopher J., (1919), (for mail), C. J.
Cox Engrg. Co., 625 Putnam Ave., Cambridge,
and 1412 Commercial Ave., Allston, Mass.
COX, W. F., (1924), Specialty Engr., (for mail).
Crane Co., 1532 Grand Ave., and 5212 Rockhill
Rd., Kansas City, Mo.
COX, William W., (1923), Consulting Engr., (for
mail), Warren Webster & Co.. 326 Columbia St.,
and 5416 Kirkwood Place, Seattle, Wash.
CRANNELL, Chas. A., (1922), Secy., (for mail).
Inland Engrg. Corp., 365 State St., and 1011
Park Place. Hammond, Ind.
CRAWFORD. William B., (1921). Mgr..Spedalty
Dept., (for mail), J. P. Marsh & Co., 114-124
S. Clinton St., and 1516 N. Mayfield Ave.,
Chicago, 111.
CRIOUI, Albert A.,* (1919), Chief Engr.. Htg.
and Vtg. Dept., Buffalo Forge Co.. 490 Broad
way, and (for mail), 250 Blaine Ave., Buffalo,'
N. Y.
CROFT, Terrell, (1924), Directing Engr., Terrell
Croft Engrg. Co., and Hotel Colon, Merida,
Yucatan, Mexico.
CRONE, Charles E., Jr., (1922), Secy, and Treas.,
(for mail). Wendt & Crone Co.. 1131 N. Wells
SL, and 5432 Woodlawn Ave., Chicago, 111.
CRONE, Thomas E., (1920), Dist. Sales Mgr.,
W. A. Russell- & Co., 5037 Grand Central
Terminal Bldg., New York, N. Y., and (for
mail), 50 Washington Terrace, E. Orange, N. J.
CROSBY, C. F., (1924), 27 William St., W.
Sometville. Mass.
CRUTCHLEY, Edward, Jr., (1920), Htg. Con
tractor*. (for mail). Edward Crutchley, Jr.,
477 8Srd St., and 78 89th St., Brooklyn, N. Y.
CULBERT, Warren G., (Associate 1911),
Phila. Mgr., Hart & Crouse Co., 3118 Chestnut
St., Philadelphia, and 38 Chester Pike, Ridley
CULLEN, Harry J., (1923), Htg. and Vtg. Engr.,
Warren & Wetmore, 16 West 47th St., New
York, and (for mail), 15 Scott Place, Jamaica,
N. Y.
-
CULLYFORD, Francis S., (1915), Pres, and
Mgr., (for mail), Cullyford Plbg. & Htg. Co.,'
1210 California St., and 517 Josephine St.,
Denver, Colo.
CUMMINGS. Carl K., (Junior 1926), Mgr.,
Industrial Appliance Co. of N. E., 126 High St.,
Boston. Mass.
4
CUMMINGS, G. J., (1923), Supt., Scott Co.. H3
Tenth St., and 201 Orange St., Oakland, Calif.
CUMMINS, George H., (1919), Sales Engr., (for
mail), Morgan-Gerrish. Co., 800-806 LaSalle
Ave., and 4944 Logan Ave., S., Minneapolis,
Minn.
CURRIER, Charles H., (1919), Vice-Pres., (for
mail). Drying Systems, Inc., 50 Church St., and
322 West 72nd St., New York, N. Y.
CUTHBERT, Ivan Norman, (1925), (for mail). Cuthbert & Cuthbert, 327 E. Huron St., and Rural Route Number 6. Ann Arbor, Mich.
CUTLER, Joseph A., (1916), (Council 1917 1926), Mgr., (for mail), Johnson Service Co1355 Washington and Belden-Stratford Hotel, Chicago, 111.
CUTTER, Edward H., (Associate 1923), Special Distributor, Hoffman Steam Specialties, (for mail), 179 W. Washington St., Chicago, and Elgin, 111.
CUYLER, David H., (1917). Chicago Mgr.. Natl. Radiator Co., 1038-1106 S. Kolmar Ave., Chicago, and 536 Hinman Ave., Evanston, 111.
D
DAILEY, Jas .A., (Associate- 1920), Htg. Con tractor, 50 Jane St., New York, N. Y.
DAILEY. James F., (1924). Vice-Pres.. Typhoon Fan Co., 345 West 39th St., New York, and 25 Wilson Drive, New Rochelle. N. Y.
DALY, John H., (-1915), Pres, and Mgr., (for mail), Daly Co., 1425 16th St., and Denver Athletic Club, Denver, Colo. -
DAMBLY, A. Ernest, (Junior 1921; 1924), Asst., (for mail), H. B. Hackett, 505 Chestnut St., Philadelphia, Pa.
DANE, Irving S., (1925), Mgr., Boston Office, . The Trane Co., 15 School St., Boston, and (for
mail). 9 Mason St., Medford. Mass. DANFORTH, Newman Loring, (1919), Pres.,
John W. Danforth Co., 72 Ellicott St., Buffalo, N. Y. DANNIES. F. R., (Associate 1925). Salesman. American Radiator Co., 1801 St. Paul Ave., and 465 Fourth Ave., Wauwatosa, Wis. DARTON, Arthur W., (Associate 1925). Htg. Contractor, 314 Fulton St.,- Union Hill, and (for mail). 331 Brown St., Union Hill. Union City, N. J. DARTS, John A., (1919), Sales Mgr., (for mail). Kewanee Boiler Co.. Inc.. 570 Seventh Ave., and 272 Manhattan Ave., New York, N. Y. DAUBACH. Charles T., (Associate 1925), -Denver Mgr., (for mail), American Radiator Co., 24th and Blake Sts., and 237 Logan St., Denver. Colo. DAUCH, Emil O., (1921), Detroit Repr., Con-, tinental Heater Corp., 400 Penobscott Bldg., Bldrs. and Traders Exch., and (for mail), 81 Montana Ave., W., Detroit, Mich. DAUGHERTY, Fred M., (1919). Contracting Engr., Grinnell Co., Inc., 407 Society for Savings Bldg., Cleveland, O. DAVENPORT. Edwin A., (1916), Htg. and Vtg. Engr., American Wanning & Vtg. Co., 317-319 Pennsylvania Ave., Elmira, N. Y. DAVIDSON, H. MacD., (Junior 1924; Associate 1926). Br. Mgr., (for mail), C. A. Dunham Co., 1820 St. Marys Ave., and 2118 Locust St., Omaha. Nebr. DAVIDSON, Philip L., (1921; 1924). Sales Engr.. Carrier Engrg. Corp., 176 Federal St., Boston,
DAVIES, George W., (1918). Htg. and Vtg. Engr., G. W. Davies & Co., 79 McLaggan St., Dunedin, New Zealand.
DAVIS, Arthur C., (1920), Mech. Engr., 73 Preston St., Ridgefield Park, N. J.
DAVIS, Benjamin H., (1923). 30 W. Lynwood Ave., Glenside; Pa.
DAVIS, Bert C., (1904), Pres, and Treas., (for mail), American Warming & Vtg. Co., 317 Pennsylvania Ave., and 603 W. Church St., Elmira, N. Y.
DAVIS, Jas. H., (Charter Member ). (Board of Governors 1911), 816 S. Michigan Ave., Chicago.
111.
DAVIS, Joseph, (Associate 1926). Htg. Engr., W. E. Shaddock. 2950 Oak St., and (for mail), 414 Northumberland Ave., Buffalo, N. Y.
DAVIS, Leo J., (1917), Vice-Pres.. (for mail), John J. Davis & Sons, Inc.. 2728' Baker St., Detroit, and Philbrick Ave., Reford. Mich.
12
American Society of Heating and Ventilating Engineers Guide, 1926-27
HOBEN, Robert J., (1919), Plbg. and Htg.
Contractor, (for mail), 258-60 S. Van Pelt St.,
and 5112 Spruce St., Philadelphia, Pa.
HOCHULI, Henry W., (1925), Sales Engr.,
National Radiator Co., 47 West 42nd St., New
York, N. Y., and (for mail). 113 Chester Ave.,
Bloomfield, N. J.
HODGDON, Harry A., (1919). Htg. and Vtg.
Engr., Stone-Underhill Htg. & Vtg. Co., 171
Harrison Ave.. Boston, and (for mail). 153
Norfolk St., Wollaston, Mass.
HOERSTING, Frank J., (1921). Hoersting &
Holtmann, 1133 W. Third St., Dayton, O.
HOFFMAN, Charles F., (Junior 1925), Sales
Engr., (for mail). International Heater Co.. 1114
Dime Savings Bk. Bldg., and 80 W. Euclid Ave.,
Detroit. Mich.
HOFFMAN, Charles S., (1924), Vice-Pres.. (for
mail), 576 Greenwich St., New York, N. Y., and ;
19 Belvidere Place. Montclair, N. J.
HOFFMAN, George D.,* (1906), Hoffman
Specialty Co., 512 Fifth Ave., New York, N. Y.
HOFFMAN, James D.,* (1903), (Presidential
Member), (Pres. 1910; 1st Vice-Pres. 1908;
Board of Governors 1911, 1912), Prof, of-Practi
cal Mechanics, Head of Dept., Director of
Practical Mech. Lab., (for mail). Purdue Univer
sity, and 323 University St- W. Lafayette. Ind.
HOFT. Paul J., (Associate 1924; 1925). Prop..
Plbg. and Htg. Contractor, (for mail), 245
S. Eighth St., and 1119 Wyoming Ave., Phila
delphia, Pa.
HOGAN, Edward L., (1911). Consulting Engr.,
(for mail), American Blower Co., 6004 Russell
St., and 2970 W. Grand Blvd., Detroit, Mich.
HOGUE, Carl T., (1922), Htg. and Vtg. Engr.,
San Angelo. Tex.
HOIER, William V., (1917). Mgr., (for mail),
Wm. V. Hoier Co., 701 N. Wells St., and 5960
Kenmore Ave., Chicago, 111.
HOISINGTON, Ned P., (Associate 1923), 102
Summit Ave., Bywood Heights, Upper Darby
P. O.. Pa.
HOLBROOK, Frank M., (1923), Armstrong
' Cork Co.. Linoleum Div- Lancaster, Pa.
HOLLOWAY, Robert B., (Junior 1923; Associate
1926), Gurney Heater & Mfg. Co., (for mail),
108 North 17th St.. Philadelphia, and 26 W.
Rockland St., Germantown. Pa.
HOLMBERG, John A., (1924), 122 E. Lincoln,
Lindsborg, Kans.
HOLMES, Joseph, (1921), Htg. Engr., 1902
Freeman St., Toledo, O.
HOMANN, Frederick A.,. (1918), Sales Repr.,
The Herman Nelson Corp., 1233 Marlyn Rd.,
Philadelphia, Pa.
HONIBALL, Charles R.,* (1911), Pres.. Charles R.
Honiball Co.. 156 Boundary St., Liverpool, Eng.
HOOK, C. Howard, (1915). Pres., Peerless Heater
Co.. 5602 Baum Blvd., Pittsburgh, Pa.
HOOK, Maurice G., (1919), Mgr., (for mail),
C. A. Dunham Co.. 101 Park Ave., New York,
and 11 Henry St.. Tuckahoe, N. Y.
HOOVER, H. Earl, (Associate 1922). Vice-Pres.,
The Hoover Co.. 1407 Railway Exch., Chicago,
and 1801 Green Bay Rd., Glencoe, 111.
HOPKIN. William E., (1919), Pres, and Treas..
(for mail), Chas. E. Hopkin Co., 107 Bethlehem
Pike, and 514 Wyndmoor Ave.. Chestnut Hill,
Philadelphia. Pa.
HOPSON. William T., (1915), Hopson & Chapin
Mfg. Co.. New London, Conn.
HORNUNG, John.C., (1914), Engr., (for mail).
343 S. Dearborn St., Chicago, and 854 Bluff St.,
Glencoe, 111.
*
HORTON, Homer F., (1925), Sales Repr., (for
mail). National Regulator Co., 2301 Knox Ave.,
Chicago, and 343 Green Bay Rd., Glencoe, 111.
HOSTERMAN, Charles O., (1924), Supt., The
McMurrer Co.. 303 Congress St., Boston, and
(for mail), 25 Bales Rd., Dorchester. Mass.
HOUGHTEN, Ferry C.,* (1921). (Secy. 1924;
1925). Director of Research Lab., (for mail),
A. S. H. & V. E., U. S. Bureau of Mines, 4800
Forbes St., and 1136 Murray Hill Ave., Pitts
burgh. Pa.
HOUPT, George A.. (1916), Engr., S. Faith Co.,
Inc., Evans Ave. and Old York Rd., Willow
Grove, Pa.
.
HOWATT, John * (1915), Chief Engr., (for mail).
Board of Education, 650 S. Clark St., and 7006
Bennett Ave., Chicago, 111.
HOWELL, Frank B., (1920), Institution of
Thermal Research, (for mail), American Radiator
Co., 1807 Elmwood Ave., and Westbrook Apts.,
N. at Delaware, Buffalo, N. Y.
HOWELL, Lloyd, (1915), Chief Engr., (for mail).
American Foundry & Furnace Co., 915 E.
Washington St., and 1203 E. Jefferson St.,
Bloomington. 111.
HOYT, William B,, (1919), Sales Mgr. and
Secy., (for mail). National Pipe Bending Co..
River and Lloyd Sts., New Haven, and 39
Clifford St., Whitneyville, Conn.
HUBBARD, Allen, (1919), Consulting Engr., (for
mail), Hollis French & Allen Hubbard, 210
South St.. Boston, and 51 Montvale Rd., Newton
Center, Mass.
HUBBARD, Allen M., (1922). Prop., Htg. and
Vtg. Contractor, 311 Temple St., and (for
mail), 232 N. Vendome St., Los Angeles, Calif.
HUBBARD, G. W., (1911), Mech. Engr., (for
mail), Graham, Anderson, Probst & White, 1417
Railway Exch., Chicago, and 331 Bonnie Brae,
River Forest, 111.
HUBBARD, Nelson B,, (1919). Consulting Engr..
(for mail), Rm. 1005, 1346 Broadway, and 2985
Blaine Ave., Detroit, Mich.
HUBERT, Jack W., (1924), Vice-Pres,; Barron
Hubert Co., 126 West 64th St., New York, N. Y.
HUCH, Aloyslus J., (1919), Gen. Mgr. of Sales,
(for mail). Central Supply Co., 312 S. Third St.,
and 4037 Harriet Ave.. Minneapolis, Minn.
HUCKEL, Frank, Jr., (1920), Mgr. Htg. Dept.,
Keystone Supply & Mfg. Co., 907 N. Ninth St.,
Philadelphia, and (for mail). 5335 Wingohocking
Terrace, Germantown, Pa.
HUCKER, Joseph H., (1921), Sales Engr., (for
mail), Haynes Selling Co., Inc.. 1711 Sansom St.,
Philadelphia, and 715 Stanbridge St., Norris
town. Pa.
'
HUETHER, Charles G. L., (Junior 1923; 1924).
Htg., Vtg., Air Conditioning. Power and Mech.
Equipment. Atlantic Engrg. Co., 109 E. Pleasant
St., and 3814 Kate Ave., Forest Park, Baltimore,
Md.
HUGHES. Willard C.. (1921), (for mail). Wicks*
Hughes & Co.. 224 Genesee St., and 16 Cottage
Place, Utica, N. Y.
'
HULL, Bret R., (1910), Engr. and Contractor,
406 Poyntz Ave., Manhattan, Kans.
HUMPHREY, Dwight E., (1921), Htg. and Vtg.
Engr., (for mail), Goodyear Tire & Rubber Co.,
Akron and 121 Harrison Ave., Cuyahoga Falls. O.
HUMPHREYS, Aurelius E., (1911), Mgr., (for
mail).'0'Mara Heating Co., 504 Victoria Bldg.,
and 4121 Flora Blvd., St. Louis. Mo.
HUNT, Phil M., (1922), Htg. and Vtg. Engr.,
Crane Co., 336 S. Michigan Ave., Chicago. IU..
and (for mail), Pennsylvania Hotel. Chestnut
and 39th Sts., Philadelphia. Pa.
HUNT, Richard B., (1912). Sales Engr.. American
Radiator Co., 414 S. Fourth Ave., Mt. Vernon,
N. Y.
`
HUNTER, H. R., (Associate 1925). Bldg. Supt..
(for mail). Jewelers Building Corp.. 36-42 West
47th St.. New York. N. Y.. and 101-34 133rd St.,
Richmond Hill, L. 1.
HUNTER, Wallace S., (Associate 1924), Vice-
Pres., (for mail), United Plumbers Supply Co.,
Inc., 441 Exterior St., and 254 East 202nd St.,
New York. N. Y.
HURLEY, Joseph C., (1915). Pres- (for mail).
Petroleum Fuel Engine Co., 4028-32 Filbert`St
and 21 South 61st St- Philadelphia, Pa.
HUSBAND. Edward Woods, (1922). Htg. Engr.,
Geo. Frederic Hall, Archt., 807 Union Trust Co
Bldg- and (for mail), 114 Corinth St- Provi
dence. R. I.
-
HUTCHINSON, J. Edward, (1921). Engr- (for
mail). Isaac Hathaway Francis. 1520 Locust St
and 5129 Newhall St- Philadelphia, Pa.
. 21
Roll of Membership
HUTTON, William, (1919), Pres., (for mail), JARDINE, Douglas Connell, (Associate 1926),
Hutton Bros. Co.. 9 Union St., and 28 Spring St., Winsted, Conn.
Plbg. and Htg. Contr- Jardine & Knight Plbg. & Htg. Co- 312 N. Custer, and 509 N. Nevada,
HUTZEL. A. F., (1916), (for mail), Hutzel & Co-
Colorado Springs, Colo.
119 E. Washington St., and 722 W. Washington St., Ann Arbor, Mich.
HUTZEL, Hugo F., (1918), (for mail), American
Radiator Co., 1807 Elmwood Ave., Buffalo, and
JARVIS, George E., (1923), Secy.. Htg. and Vtg.
Engr- A. E. Holmes & Bros. Co- (for mail), 911 Banks Ave- and 1626 Baxter Ave- Superior, Wis.
64 N. Long St.. Williamsville, N. Y.
JAYNES, Eubertis L,, (1918), (for mail), 525
HUTZEL, Max H., (1923), Vice-Pres. and Secy-,
S. Seventh St- and 4849 Girard Ave- S. Min-
(for mail), Hutzel & Co.. Hutzel Bldg., and 731 neapolis. Minn.
N. Elm St., Muntie, Ind. `
JELLETT, Stewart A.,* (Charter Member;
HUTZEL, Victor C., (1923), Treas., (for mail),
Presidential Member), (Pres. 1895; Board of
Hutzel & Co., Hutzel Bldg., and 715 N. Elm Stl,
Managers 1896-1897; Secy. 1898; Board of
Muncie, Ind. HUZZARD, Edward C., (Associate 1924), Asst.
Managers 1899), Pres- Stewart A. Jellett Co1200 Locust St,, Philadelphia, and 6701 Lincoln
Treas., Fleck Marshall Co., Hazel & Water Sts.,
Drive, Mount Airy. Philadelphia, Pa.
' and (for mail), 517 S. Lime St., Lancaster, Pa. JENKINS, Harry E., (Associate 1923), Sales
HYMAN, Wallace M., (1920), Vice-Pres., (for
Mgr., Radiator Div- (for mail), U. S. Cartridge
mail), Reis & O'Donovan, Inc., 253 West 28th
Co., and 343 High St- Lowell, Mass.
St., and 210 West 70th St.. New York, N. Y.
JENNINGS, Irving C., (1924). Pres- (for mail),
HYNES, Lee P.,* (1919), Pres., Hynes & Cox
Nash Engrg. Co- and 138 Flax Hill Rd- S.
Elec. Corp., 406 N. Pearl St., and 50 S. Mansing
Norwalk, Conn.
Blvd., Albany, N. Y.
' JENNINS, Henry H., (1901), Managing Director,
E. Oldroyd & Co- Ltd- and (for mail), 15
I Grange View, Leeds, Eng.
JENSON, Jean S,, (1912), 431 S. Dearborn St-
ICKERINGILL, John, (1923), Sales Engr.,
Chicago, 111.
Standard Heater Co., Otis Bldg., Philadelphia, JOHN, Benjamin F., (1920), Pres- (for mail),
and 235 Rector St., Roxborough, Pa.
Benjamin F. John Co., 1003 Race St- and 881
1DDLES, Alfred, (1921), Chief Power Engr., (for
North 24th St- Philadelphia, Pa.
mail). Day & Zimmermann, Inc., 1600 Walnut JOHNSON, Carl W,, (1912), Pres- (for mail).
St., Philadelphia, and 304 Conestoga RdWayne. Pa.
IMPEY, Paul F., (Junior 1921; Associate 1925),
C. W. Johnson, Inc- 211 N. Desplaines St- and
1809 Morse Ave- Chicago. 111. JOHNSON, Edgar Engman, (1926), Sales Engr-
Htg. Engr., John C. Moninger Co., 900 Black-
(for mail), Buffalo Forge Co- 490 Broadway, and
hawk St., and (for'mail), 3842 N. Mozart St.,
200 Loring Ave- Buffalo, N. Y.
Chicago. 111.
JOHNSON, Edward B,, (1919). Sales Engr.,
INGALLS, F. D. B,, (1906), Br. Mgr., Htg. and
Staten Island Supply Co- 1390 Richmond
Sales Engr., (for mail), C. A. Dunham Co., 136
Terrace, and (for mail), 154 Wardwell Ave- W.
Federal St., Boston, and 1 Hopkins St., Reading, New Brighton, N. Y.
Mass.
JOHNSON, Fred W,, (1916), Vice-Pres- (for
INGELS, Margaret M.,* (Junior 1918; 1923),
mail). Johnson, Larsen & Co- 693-703 Monroe
Research Engr.; (for mail), U. S. Bureau of
Ave- Detroit, and R. F. D. No. 4, Birmingham,
Mines, and 238 N. Dithridge St., Pittsburgh, Pa.
Mich.
'
INNIS, Helen R.t (Junior 1918; 1921), Donnelly
Systems Co., (for mail), 9 Murray St., New York,
and 34 McDonough St., Brooklyn, N. Y.
IRELAND, Thomas Hilton, (1923), Sales Engr.,
Crane Co., 23 West 44th St,, New York, and (for
mail), 69 Cedar Ave., Rockville Center, L. I.,
N. Y.
.
IRWIN, Clarence W,, (1924), 412 Clark Bldg.,
Jacksonville, and Jacksonville Beach, Fla.
ISSERTELL, Henry G,, (Associate 1912; 1913),
Supervising Engr., General Elec. Co., (for mail),
120 Broadway, and 825 West 180th St,, New
York, N. Y.
J
JOHNSON, Paul H., (Associate 1924). Engr.,E. H. Sheldon Co., and (for mail), 205 Washing ton Ave- Muskegon, Mich.
JOHNSON, Ralph B,, (1922), Sales Engr., (for mail). Johnson Service Co- 411 E. Tenth St and 2117 East 68th St- Kansas City. Mo.
JOHNSON, Tracy R,, (1924), Mgr- Engr. Dept-. The Trane Co., and 315 Y. M. C. A- LaCrosse, Wis.
JOHNSTON, James Ambler, (1912), Member of Firm, Carneal & Johnston, Architects and Engrs- 806 Electric Bldg- and 1411 Grove AveRichmond, Va.
JOHNSTON, R. E,, (Associate 1926), Htg. Engr.,
JACKSON, Charles H,, (1923), Sales Engr.,
Taylor Forbes Co- 1070 Homer St- Vancouver,
Bayley Mfg. Co., 732 Greenbush St., and 614
Farwell Ave., Milwaukee. Wis. . '
. JOHNSTON, William B,, (Associate 1916; 1921),
JACKSON, Charles J., (Associate 1912), Local
Vice-Pres- (for mail). Ideal Furnace Co- 2995
Mgr., (for mail), Jenkins Bros., 646 W. Washing
,E. Grand Bldg- and 1667 Atkinson Ave.,
ton Blvd., Chicago, and 323 Hazel Ave- Glencoe,
Detroit, Mich.
III. JOHNSTON, William H,, (1924), Pres- (for
JACKSON, Marshall S., (1919), Htg. and Power
mail), Johnston Htg. Co- 332 East 47th St-
Plant Equipt- (for mail), `232 Delaware Ave-
New York, and 19 Magnolia Ave., Larchmont,
and 108 Larchmont Rd- Buffalo, N. Y.
N. Y.
JACKSON, Tandy L., (Junior 1926), Pres, and JONES, A. MarshaU, (1922), Mgr- (for mail),
Gen. Mgr., (for mail), Tandy L. Jackson Co
Machinery Mfgs. Sec- Westinghouse Elec. &
Mutual Bldg- and 3524 Campbell St- Kansas
City. Mo.
-JACOBUS, Davis 5L, (1916), Advisory Engr.,
Babcock & WilcoxvCo- 85 Liberty St., New
York, N. Y.
.
JALIEN, John J,, (1922), Staff Engr., (for mail),
Mfg. Co- E. Pittsburgh, and 209 Biddle AveWilkinsburg, Pa.
JONES, David J., (1919), Mech. Asst- (for mail), Illinois Central Railroad Co- Rra. 700, Dowie Bldg- and 425 89th Place, Chicago. 111.
552 Seventh Ave- and 365 West 118th St- New JONES, Dwight C- (Associate 1924), (for mail),
York. N. Y.
Hoffman Specialty Co- 200 Builders Exchange,
JANES, Arthur, (1919), Pres- Arthur Janes Co- . and 4508 29th Ave- S- Minneapolis, Minn.
990 Post Rd- Scarsdale, N. Y.
JONES, Earnest F. (1923), Mgr., Htg. Dept- (for
JANET, Harry L., (1920), Engr., (for mail).
mail), Kellogg-Mackay Co- 1351 West 37th
Carrier Engrg. Corp- 750 Frelinghuysen Ave-
Place, and 3350 Gladys Ave- Chicago, 111.
Newark, N. J- and 688 Decatur St- Brooklyn, JONES, Edwin, (Junior 1924), Watt Plbg- Htg.
N. Y.
& Supply Co- Box 582, Tulsa, Okta.
22
American Society of Heating and Ventilating Engineers Guide, 1926-27
JONES,. Edwin A., (1919), Contracting Engr-
L. J. Mueller Furnace Co- 197 Reed St- Mil
waukee, wis.
-
JONES, Edwin F,, (1923), Consulting Engr- 301
Zenith Bldg- St. Paul. Minn.
JONES, Ernest, (Associate 1925), 423 Dwight
Bldg- Kansas City, Mo.
JONES, Harold L,, (1920), Asst. Supt- The W.
W. Farrier Co- (for mail). 44 Montgomery St-
Jersey City, and 11 Cambridge Rd- Glen Ridge.
N. J.
JONES, Ivor R,, (Junior 1923). (for mail), Isaac
H. Francis, 1520 Locust St- Philadelphia, and
344 Taylor Terrace, Chester, Pa.
JONES, Louis T,, (1921), Salesman. 3700 High
land Ave- Drexel Hill, Delaware Co., Pa.
JONES, Raymond E., (1919). Pres-, (for mail),
Haynes Selling Co- Inc- 2013 Sansom St-
Philadelphia, Pa., and 39 W. End Ave- Haddon-
field. N. J.
JONES, William T., (1915), (Council 1925-1926).
Partner, Barnes & Jones, 5 Melrose St- Boston,
and (for mail), 11 Rossmere St., Newtonville,
Mass.
JOYCE, Walter P-, (Associate 1924). Htg. Engr.,
2039 Hardesty Ave., Kansas City. Mo.
JUNG, John S,, (Associate 1923), Htg. Con
tractor, 554 Layton Blvd- Milwaukee. Wis.
JUNKERS, Prof. Hugo, (1925), Pres- (for mail),
Junkers Corp. of America, 2142 Madison Ave-
New York, N. Y- and Dessau. Germany.
JUTTNER, Otto J., (1915), Pres- (for mail).
Juttner Heating Co- 43 Jefferson St- Milwaukee,
and 496 Newton Ave- Shorewood, Wis.
K
KAHN, Henry P., (1919). Salesman, Hoffman
Specialty Co- 512 Fifth Ave- and (for mail),
456 West 148th St- New York, N. Y.
KAISER, Harry S,, (Junior 1924), Htg. and Vtg.
Engr- Hanley & Co- 6 N. Clark St- and (for
mail), 3608 Wilson Ave., Chicago, 111.
KAMMAN, Arnold R., (Junior 1921; Associate
'' 1925), Engr., John W. Danforth Co., 72 Ellicott
St., and (for mail), 441 .Massachusetts Ave-
Buffalo, N. Y.
KAMMERER, William C,, (1923), Mech. Engr,,
. Hadlow, Hick & Co.. 412 Finance Bldg- Cleve
land, and (for mail), 14915 Clofton Blvd-
Lakewood, O.
KAPPEL, George W. A., (1921), Pres, and Treas.;
(for mail), Camden Heating Co- 8 Market St.,
Camden, and 347 King's Highway W,, Haddon-
field, N. J.
KARLSON, Alfred F., (1918). Chief Engr.. (for
mail), Parks-Cramer Co- 970 Main St- Fitch
burg, and 186 Prospect St- N. Leominster, Mass.
KARR, Theo., Jr., (1921). Karr Supply Co- (for
mail), and 325 S. High St- Belleville, III.
KASTELLO, August, (1923), Mgr- (for mail).
C. A. Dunham Co- Ltd- 904 New Birks Bldg-
and 112 Rutland Ave- Town of Mt. Royal,
Montreal. Que- Can.
KATSUMOTO, Eljiro, (1926), Pres- (for mail),
Katsumoto & Co- Engrs. and Contractors, 29,
Awajicho, and 3 Kirishimacho, Darien, S.
Manchuria. China.
KAUFFMAN, Rufus, (1921). Htg. Engr. and
Contractor, (for mail), 4308 N, Broad St- and
326 W. Seymour St., Philadelphia. Pa.
KAUFFMANN, Frederick F., (1922), Consulting
Engr., (for mail), 13 North 13th St- Philadelphia,
, Pa- and 909 Pine St- Camden, N. J.
KAYSING, Harry C., (1926), Designer and Engr-
Hester-Bradley Co- 4200 Forest Park Blvd-
St- Louis, Mo.
,
KEASBEY, Aertsen Parry, (1922), Vice-Pres., (for
mail), Robert A..Keasbey Co- 445 West St., New
York, N. Y- and 298 Park St- Montclair. N. J.
KEENAN, P. Frank, (Associate 1921), pres- (for
mail), Leo Flush Valve Co- 331 Madison Ave.,
New York, and 283 Burns St- Forest Hills, L. I.
KEENEY, Frank P., (Associate 1915), Editor,
Domestic Engineering, 1900 Prairie Ave- and
70th St- and The Lake, Chicago, 111.
KEHM, August, (1901), (Board of Governors
1908; 1911; 1st Vice-Pres. 1909); Pres- Kehm
Bros. Co- 51 E. Grand Ave- Chicago, 111. KEISER, Walter, (Associate 1920), Vice-Pres.,
(for mail). Keiser Equipment & Engrg. Co- 580
Arcade Bldg- and Wydom Blvd. and Bolland
Drive, St. Louis, Mo.
-
KELLEY, James J., (Associate 1924), Vice-Pres-
(for mail). Ballard Oil Co- 535 Commonwealth
Ave- Boston, and 142 Governors Ave., Medford,
Mass. KELLOGG, Alfred,* (1916), (Council 1920-1921;
1923-1924), (for mail), 89 Franklin St- Boston,
. and 6 Hawthorne St- Waverly, Mass. KELLOGG, Clarence V., (Associate 1900), Pres-
(for mail), Kellogg-Mackay Co., 1357 West
37th Place, and 1338 Fargo Ave- Chicago. 111.
KELLOGG, Hosford D., (Associate 1916). Mgr.,
(for mail), H. B. Smith Co., 17th and Arch Sts-
Philadelphia, and Haverford, Pa.
-
KELLOGG, Thomas M., (Associate 1923),
Salesman, (for mail). The Bishop & Bibcock Co
. 444 Lafayette St- New York, and 23 Roxbury
Rd- Scaredale, N. Y. KELLY, John G., (Associate 1919), Plbg. and
Htg. Specialties, 210 East 45th St- New York,
and (for mail), 55 Cornell Ave- Yonkers, N. Y. KENT, Laurence F., (Junior 1924), Vice-Pres.
and Engr- Moncrief Furnace Co- P. O. Box
1673 Atlanta, and R. F. D. No. 2, Smyrna, Ga.
KERNEY, Thomas F., (Junior 1925), Engr., (for
mail), H. B. Hackett, Consulting Engr., Public
Ledger Bldg- and 2115 W. Ontario St- Phila
delphia. Pa. KERSHAW, Melville G- (Junior 1921; Associate
1926), Designing Engr- du Pont Engrg. Co-
Wilmington, Del- and 3957 N. Percy St-
PHiladelphia. Pa. KERSJES. William, (1922). Pres, and Gen.
Supt- Wheeler Blaney Co- 249 N. Burdick St
and (for mail), 728 Clinton St- Kalamazoo,
Mich. KEYES, Robert E.t (1913), Construction Engr-
(for mail). Drying Systems,' Inc- 11 S. Desplaines
St- Chicago, 111- and 2497 Grand Ave- New
York, N. Y. K1EB, August A., (1924), Engr- F. P. Merkel,
131 South 12th St., and (for mall), 112 S. Tenth
St- Newark. N. J.
.
KIEFER, Carl J., (1922), Consulting Engr- 901
. Schmidt Bldg- Cincinnati, O.
KIEWITZ, Arthur A., (1912). Htg. Engr., 23-80
Chauncey St- Astoria, L. I- N. Y.
KIEWITZ, Conway, (1907), Engr.. N. Y. Board
of Education, Flatbush Ave. and Concord St-
Brooktyn, and 70 King St., Floral Park, L. I-
,N. Y.
'
KILBY, Roger E., (1926), Supt- Northwestern
Htg. & Plbg, Co- 1465 Sherman Ave- Evanston,
III. KILLIAN, Maurice A., (1922). Pres- Glanz &
Killian Co- 1761 Forest Ave., W- and 4400
Leslie Ave- Detroit, Mich. KIMBALL. Charles W., (1915), Richard D.
Kimball Co- 6 Beacon St- Boston, Mass. KIMBALL, Dwight D.,* (1908), (Presidential
Member), (Pres. 1915; Board of Governors 1912;
1913; 2nd Vice-Pres. 1914; Council 1914-1916),
15 West 38th St- New York, and 230 23rd St.,
Jackson Heights, L. I- New York. KINEALY, John H.,* (Charter Member; Presi
dential Member), (Pres. 1901; 1st Vice-Pres. 1898; Board of Governors 1902), Consulting
Engr- 503 Granite Bldg- St. Louis. Mo.
KING, Thomson, (1923), Sales Mgr- (for mail).
Gas Boiler Dept- Peerless Heater Co- 5602
Baum Blvd- and 209 N. Lang Ave- Pittsburgh,
Pa. KINGSBURY, James W., (1924). B. B. Shine.
. 224 E. Walnut St- Green Bay, Wis.
KINGSLEY, E. A., (1926), Pres- E. A. Kingsley
& Co- Inc., 14 Gansevoort Ave- New York,
N. Y. KINNER, J- E., (1924), Bryant Heater & Mfg.
Co- 952 East 72nd St- and 1453 East U6th St-
Cleveland, O.
23
Roll of Membership
KIPE, J. Morgan, (1919), Philadelphia Mgr.,
(for mail). Standard Heater Co., 609 Otis Bldg.,
and Homestead and Beck Aves., Beechwood
Park, Philadelphia, Pa.
KIRBY, W. C., (1918), Consulting Engr., (for
mail), Grinnell Co., Inc., 276 Marrietta St., At
lanta, and 306 Ponce de Leon Place, Decatur. Ga.
KIRK, Charles D., (1909), Mgr., Chas. D. Kirk
Co., Sargent and Colleen Sts., and 774 McMillan
Ave., Winnipeg, Manitoba, Can. -
KIRK, George H., (1906). Engr. and Contractor,
6711 Wentworth Ave., Chicago, 111.
KIRK, Leonard G., (1923), Pres., L. G. Kirk Co..
Inc., 441 West 50th St., New York. N. Y.. and
859 Boulevard El, Weehawken, N. J.
KIRMES, Edwin W., (1923), Secy, and Chief
Engr., (for mail), Walworth-English-Flett Co.,
81 Commercial Wharf, Boston, and 29 Oakland
St., Melrose, Mass.
-
KISSICK, J. J.. (1918), Supt. of Operations.
Board of Education, Sixth and Rockwell Ave.,
and (for.mail), 1768 Wayside Rd., Cleveland, O.
KITAURA, Shlgeyukl, (1918), Mech. Engr..
Monopoly Bureau, Dept, of Finance, Tokyo,
Japan.
KITCH, Stanley B.,'(Junior 1925), Sales Engr.,
The Trane Co., 844 Rush St., Chicago, and (for
mail). 3330 Wesley Ave., Berwyn, 111.
`
KITCHELL, Herbert N., (Associate 1926). Mgr.
Htg. Dept., (for mail), Crane Co.. 824 Broadway,
and 4528 Circle Ave., Cincinnati, O.
KITCHEN, Francis A., (Junior 1923), John H.
Kitchen Co., 1012 Pioneer Trust Bldg., Kansas
City. Mo.
KITCHEN, John H., (1906), Htg. and Vtg;
Engr., (for mall), John H. Kitchen & Co.,
Pioneer Trust Bldg., 1016 Baltimore Ave.. and
5015 Westwand Terrace. Kansas City, Mo.
KITTLE, F. Carlton, (1923), Htg. Draftsman,
(for mail). Lord & Burnham Co., and 42 Main
St.. Irvington-on-Hudson, N. Y.
KLAUS, Louis J., (Junior 1921), Asst. Htg.
Engr., Socony Burner Corp., 26 Broadway, New
York, and (for mail), Farmingdale, L. I., N. Y.
KLEIN, Albert R., (1920), Mgr*. Carrier Luft-
technische Gesellschaft, Langestrasse 61, and
(for mail). Panoramastrasse 23, Stuttgart,
Germany.
KLEIN, Edward W., (1917). S. E. Dist. Mgr., (for
mail), Warren Webster & Co., 618 Atlantic
Trust Bldg., and 227 Myrtle St., Atlanta, Ga.
KLEIN, Walter A., (1919), Pres., (for mail),
Klein Htg. Co., 4209 Olive St., and 4061a Shaw
Ave.. St. Louis. Mo.
KLIE, Walter, (1915). Pres., (for mail). The
Smith & Oby Co.. 6107 Carnegie Ave., Cleveland,
and 18411 S. Woodland Rd., Shaker Heights,
Cleveland, O.
KLINE, George W., Jr., (1921), Proprietor, Kline
& Co., 311 North 13th St., and (for mail), 634
North 17th St., Philadelphia, Pa.
KLINE, Walter J., (1912), Sales Engr.. (for
mail), American Dist. Steam Co.. N. Tonawanda,
and 186 Pine St.. Lockport, N. Y.
KLONOWER, Arthur A., (1920), Mgr., J. S.
Cassedy Co., 133 Austin St., and 244 Brattle
St.. Cambridge. Mass.
KNAPP, A. F., (1923), Sales Engr., 419 Post Ave..
Lyndhurst. N. J.
KNIGHT, Alvin B., (Associate 1916). (for mail),
Warren Webster & Co.. 2123 Dime Bk. Bldg.,
and 8818 Dexter Blvd., Detroit. Mich.
KNOWLES, Arthur F., (Associate 1914), Knowles
Mushroom Ventilator Co., (for mail), 202 Frank- .
lin St., New York, N. Y., and 135 Haddon Place,
Upper Montclair, N. J.
KOCH, Harry O., (1916), Vice-Pres., American
Htg. & Vtg. Co., 804 Times Dispatch Bldg.,
Richmond- Va.
KOEHLER, George T., (1923), Br. Mgr., Rich
mond Radiator Co., 1480 Broadway, New York,
N. Y., and (for mail, 1111' Market St., Harris
burg, Pa.
KOHLBRY. Edward G., (1920), Pres., (for mail),
Kohlbry-Howlett Co., 63 W. Ontario St.,
Chicago, and 1144 Chestnut Ave., Wilmette, 111.
KOITHAN, William S., (1913), Sales Engr., (for
mail), Koithan & Pryor, 39 Cortlandt St., New
York, N. Y., and 46 Linden Place, Summit, N. J.
KORN, Charles B., (1922), Member of Firm.
Htg., Vtg., Roofing and Sheet Metal Con
tractors, 817 Cumberland St., and 1022 S.
Eighth St., Allentown, Pa.
KOTTCAMP, Horace A;, (1915), Pres, and Gen.
Mgr., Cbambersburg Construction Co., 139 N.
Second St., and (for mail), Philadelphia Ave.,
and Kenwood Rd., Chambersburg, Pa.
KRATZ, Alonzo- P.,* (1925), Research Prof..
Dept, of Mech. Engrg., (for mail). University of
Illinois, and 1003 Douglas Ave., Urbana, 111.
KREISSL, Hans George, (1925), Engr., (for
mail), American Radiator Co.. 816 S. Michigan
Ave., and 630K Cornelia Ave., Chicago. IU.
KREITNER, William, (Junior 1926), Htg.
Estimator, Alvord & Swift, Grand Central
Terminal, New York, and (for mail), 108 Linden
St., Brooklyn, N. Y.
.
KRESSLY, Maurice E., (1922), Htg. and Vtg.
Engr., Bureau of School Bldgs.. Dept, of Public
Instruction and (for mail), 1941 Lenox St..
Harrisburg, Pa.
-'
KR1EBEL, Arthur E., (1920), Service Engr., (for
mail), Haynes Selling Co., 2013 Sansom St.,
Philadelphia, and Berwyn, Chester Co.. Pa.
KRIES, Henry A.,: (1901), Pre9., (for mail),
Henry A. Knee & Sons Co., 6 W. Lombard St.,
Baltimore, and.Catonsviile, Md.
KROEGER, Alvin, (Associate 1923), Chicago
Mgr., (for mail), Richmond Radiator Co.. 568
Wrigiey Bldg., and 4056 N. Harding Ave.,
Chicago, III.
KRUEGER, James I., (1921), Mech. Htg. and
Vtg. Engr., (for mail), Illinois Engrg. Co.. 417
Market St., Suite 320, and 1770 Pacific Ave.,
San Francisco, Calif.
.
KRUEGER, William E., (Associate 1924), Mgr.
Htg. Dept., Passaic Plumbing Co., Passaic, and
(for mail), 453 Devon St.. Arlington, N. J.
L'
LaFOLLETTE, Byron E., (1916), Vice-Pres. and
Treas., The Tarpenning-LaFoHette Co., (for
mail), 1030 Canal St., and 3415 Guilford Ave.,
Indianapolis. Ind.
LAGODZINSKI, Harry J., (Junior 1920). Sales
Engr.. Ilg Elec. Vtg. Co., (for mail), 324 W.
Monroe St., and 3628 N. Tripp Ave., Chicago. 111.
LAIDLAW, Ernest J., (Associate 1923), (for mail).
Crane Co.. Ltd.. 306 Front St., and 629 Lonsdale
Rd., Toronto. Ont., Can.
LAMB. Foster W., (1906). Pres., F. W. Lamb Co..
24 E. Kinzie St., Chicago, and Oak Park Arms
Hotel. Oak Park, III.
LAMSON, F. S., (1924), Mgr. Htg. and Pumping
Dept., Central Supply Co.. 312 S. Third St., and
(for mail), 2319 Dupont Ave., S.. Minneapolis,
Minn.
LANCE, Joseph, (1923), Harrigan & Reid, 1705
First St.. Detroit, Mich.
LANDERS, John J., (Junior 1924), Htg. Engr..
(for mail), U. S. Radiator Corp., 133 E. Grand
River, and 17004 Log Cabin Ave., Detroit, Mich.
LANE, Alfred M., (1916), Pres., (for mail).
Monarch Metal Products Co., 5020 Penrose St.,
and 4238 Lafayette Ave., St. Louis, Mo.
LANE, Edward K.t (1916), Owner, (for mail).
Lane-Bowen Co., 201 Seventh St., and 333
Fourth St., Lorain, O.
LANG, Lawrence P., (Junior 1925), Htg. Engr.,
(for mail), Warren Webster & Co.. 549 W..
Washington St., and 1508 Larrabee St., Chicago.
III.
LANGDON, J. D., (1920), 2030 Fifth Ave..
Pittsburgh, Pa.
LANGENBERG, Everett B., (1914), (Council
1926), Vice-Pres., Langenberg Mfg. Co., 4519 N.
Euclid Ave., St. Louis. Mo., and 7214 Pershing
Ave., University City, Mo.
LARIMER, G. B., (1915), Pres.. Larimer &
Lauer, (for mail), 1824 S. Hope St., and 6666
Selma Ave., Hollywood Sta., Los Angeles, Calif.
/ 24
American Society of Heating and Ventilating Engineers Guide, 1926-27
LARIMER, Win. McCoy, (1922), Mgr. Htg.
Dept., (for mail). Crane O'Fallon Co., 1621 15th '
St., and 159 W. Second Ave., Denver, Colo.
LARSON, Gustus L., (1923), Prof. Steam and
Gas Engrg., (for mail), Univ. of Wisconsin, and
Route 7, Madison, Wis. LARSON, J. M., (1924), (for mail). National
Regulator Co.. 2301 Knox Ave., and 3541
Wnghtwood Ave., Chicago. IU. LARSON, W. C., (1925), Htg. and Vtg. Engr.,
Narowitx Htg. &'Vtg. Co., 1711 Park Ave., and
(for mail), 4224 N. Winchester Ave., Chicago.IU.
LATHAM, George, (1924), Engr. and Supt. of
Plant, Edmonton Public School Board, 504 Civic
Block, and 11317 9lst St., Edmonton, Alberta,
Can.
,,
LAU, Anton S., (1926), Mech. Engr.. Cross &
Cross, Archts., 385 Madison Ave., New York,
N. Y., and 35 Woodland Rd., Bloomfield, N. J.
LAUTENSCHLAGER, Fred, (1915), Mgr. Green
house Dept., (for mail), Brunswick-Kroeschell
Co.. 4221 Diversey Ave., and 3846 Alta Vista
Terrace, Chicago, IU. LAVAN, P. J., (1921), Htg. Contractor, (for
mail), 1319 Eighth Ave., and 4232 Bagley Ave.,
Seattle, Wash. LAWRENCE, Charles E., (1922), N. Y. Sales
Mgr., (for mail), Massachusetts Blower Co., 444
Lafayette St., New York, and 52 Waldorf
Circuit, Brooklyn. N. Y.
*
*
LeBEAU, John F., (1924), Cascade Automatic
Sprinkler Corp., Grand Central Terminal, New
York, and (for mail), 97-23 Whittier Ave.,
Jamaica, N. Y.
LeCOMPTE, William G., (Associate 1914). Sales
Mgr., (for mail), Jenkins Bros., 80 White St., and
112 East 81st St.. New York. N. Y.
LEEK, Walter, (1903). Leek & Co.. 1090 Homer
St., Vancouver, B. C. LEES, Herbert K., (Junior. 1912: 1924). Esti
mator, William Lees, 648 W. Washington Blvd.,
and 4946 Christiana Ave., Chicago. 111.
LEGEMAN, Ralph E., (Junior 1926), Engr.. (for
mail), Fowler & Karges, 707 Furniture Bldg., and
. 900 Powell Ave., EvansviUe, Ind.
LEGIER, Edward W., (1924). Monarch Metal
Products Co.. 5020 Penrose St.. St. Lotiis, Mo.
LEILICH, Roger L., (1922). Vice-Pres. and Mgr.,-
(for mail), Baltimore Heating Corp., 425 St.
Paul Place, and 2810 Elsinor Ave., Baltimore,
Md. LEITCH, Arthur S., (1908). Pres, and Mgr., The
Arthur S. Leitch Co., Ltd., (for mail), 1123 Bay
St., and 421 Russell Hill Rd., Toronto, Can. LELAND, William E:, (1915), Consulting Engr.,
58 Sutter St.. San Francisco, Calif.
LENONE, Jose M., (1919). Engr., Armour & Co..
General Office, U. S. Yards, and (for mail),
4808 Dorchester Ave., Chicago, IU.
LEONHARD, Frederick, (1921). Sales Engr. and
Mgr.. Jas. P. Marsh & Co., 536 East 123rd St,,
Cleveland, O. LEUSCH, Victor William, (Associate 1926).
Htg. and Vtg. Engr., W. W. Sibley. 416 S.
Fellows St., and (for mail), 1615 Medora St.,
South Bend, Ind.
.
LEVIN, Joseph, (Associate 1923), Power Equip
ment Co., 1015 Chestnut St.. Philadelphia.'Pa.
LEWIS, Edward B,, (1924). Natl. Htg. and Vtg.
Co., (for mail), 619 Washington Ave., S., Min
neapolis. and 2283 Commonwealth Ave., St.
Paul. Minn. LEWIS, George C., (1919), Sales Engr., American
Htg. & Vtg. Co.. 1505 Race St.. Philadelphia, Pa.
LEWIS, J. Clifford, (1913), Mech. Engr., (for
mail), Lewis & Warren , 1001-3 Realty Bldg., and
R. R. No. 1, Upper River Rd., Louisville, Ky.
LEWIS, John G., (1926). Mgr. and Partner,
Lewis & Davis, 412 East 31st St., Kansas City,
Mo. LEWIS, John W., (1926), Htg. Contr.. 7127
Grays Ave., and (for mail), 7038 Grays Ave.,
Philadelphia, Pa. LEWIS, L. Logan, (1918), Secy., (for mail).
Carrier Engrg. Corp.. 750 Frelinghuysen Ave.,
Newark, and 724 Carlton Ave., Plainfield. N. J.
LEWIS, Samuel R.,*- (1905), (Presidential
Member). (Pres. 1914; Board of Governors 1909,
1912; 2nd Vice-Pres. 1910; Council 1915), Con sulting Engr., (for mail). 407 S. Dearborn St.,
and 4737 Kimbark Ave., Chicago, 111. LEWIS, Thornton,* (1919), (Council 1923-1926),
Pres, and Gen. Mgr., (for mail), York Htg. & Vtg. Corp., 1502 Locust St., Philadelphia, and
346 Calvert Rd., Merion, Pa. LIBBY, Lawrence R., (1900). Pres, and Treas.,
(for mail), Libby & BUnn, Inc.. 135 Sheldon St.,
and 629 New Britain Ave., Hartford. Conn.
LICHTY, Arthur J., (Junior 1923). Sales Engr.,
(for mail). C. A. Dunahm Co., 507 North 22nd
St., and 1011 Tuscaloosa Ave., Birmingham,
Ala LICHTY, Charles P., (1920), Engr., C. P. Lichty.
507-509 North 22nd St., and 1011 Tuscaloosa
Ave., Birmingham, Ala. LINDEMAN, Henry, (Junior 1923). Estimator,
Baker, Smith & Co.. 572 Greenwich St.. New York, and (for mail), 157 Foxall St., Ridgewood,
L. I.. N. Y. LINDEMUTH, Nelson Rhoads, (Associate 1924).
Supt. and Mgr., (for mail), Lindemuth Engrg.
Co., Inc.. 155 N. George St., and 324 W. Jackson
St., York. Pa.
,,
LINER, John J., (Associate 1916), Pres., (for
mail), Philadelphia Asbestos Co., Roberts. Ave..
W. of Wayne Ave., Wayne Jet., Philadelphia, Pa.
and Haddon Ave., W. Berlin, N. J.
LINHARD, Howard V., (Associate 1921). Sales Mgr., Anchor Pipe & Supply Co., 14430 Dexter
Blvd., and (for mail). 7238 Webb Ave.. Detroit.
Mich. LINN, Homer R., (1914), Engr., American
Radiator Co.. 816 S. Michigan Ave.. Chicago,
and 321 S. Ashland Ave., LaGrange, IU. LIPPE, Ernest V., (1922), Consulting Mech.
Engr.. Rm. 840. 332 S. La Salle St.. Chicago, and
(for mail), 5340 S. Kimbark Ave.. Chicago. 111.
LIPPMAN, Orville S., (Associate 1920). Sales Repr., (for mail). The Ketlogg-Mackay Co., 1351
West 37th Place, and 7251 Princeton Ave.,
Chicago, 111.
, ...
LITTLE, C. W., (1921). Dept. Mgr., (for mail).
Grinnell Co.. Inc., 413 Capitol Theatre Bldg.,
and 489 Eastlawn Ave., Detroit, Mich.LITTLE, Edwin R., (1916), Consulting Engr., (for
mail), E. R. Little Co.. Inc., 1618-1920 Ford
Bldg., and 1463 Lawrence Ave.. Detroit, Mich. LOCKE, Hiram W,, (1920), Htg. Engr. and Sheet
Metal Worker, 1942 North 20th SL, Philadelphia,
Pa. LOCKER, Charles W,, (1916), Mgr., (for mail),
C. A. Dunham Co., Rm. 101. 2845 Grand River
Ave.. Detroit, and R. F. D,, Farmington. Mich.
LOCKWOOD, Edwin H.,* (1915). Asst. Prof.
Mech. Engrg., Sheffield Scientific School. Yale
University, and (for mail), 51 Sheldon Terrace,
New Haven, Conn.
. ...
LOEFFLER, Frank X., (1914). Pres., (for mail),
Frank Loeffler Supply Co., 710 N. Hudson St.,
and 320 West 26th St., Oklahoma City, Okla.
LONDON, Irving, (Junior 1924), Engr. and
Estimator, (for mail), Raisler Heating Co., 129 Amsterdam Ave., New York, and 1660 Union
St., Brooklyn. N. Y.
LONGENECKER, Howard J., (1917), Pres, and
Gen, Mgr., (for mail). York Htg. & ,,Vtg. Co.,
Bridgeport, Montgomery Co., and 1009 DeKalb
St., Norristown. Pa.
LONGWELL, Henry E., (1919), Vice-Pres.,
Pierce. Butler & Pierce Mfg. Corp., 41 East
42nd St.. New York, and (for mail), Brewster
Rd.. Hartsdale, N. Y.
LORD, Frank Russell, (1922), Mgr. Htg. Dept.,
(for mail), Walworth Mfg. Co., 245 Arch St.,
Philadelphia, Pa., and Delanco, N. J.
LOVE, Clarence H., (1919), Mfgr. Agent, (for
mail), Nash Engineering Co.. 840 Ellicott Sq.,
and 289 Norwalk Ave., Buffalo, N. Y.
LOVELACE, James A.. (1920). Vice-Pres. and
Gen, Supt., R. L. Spitzley Heating Co., 246
Lamed St., W., Detroit, Mich.
25
Roll of Membership
LOWNSBERY, Benjamin F,, (1920), Htg. Engr.. Benjamin F. Shaw Co., Second and Lombard Sts., and (for mail), 21 S. Sycamore St., Wil mington, Del.
LUCE, G. D., Jr., (1919), Mech. Engr., D. H.
Burnham Co., Archts., 1900 Burnham Bldg., and
(for mail). 3633 N. Harding Ave., Chicago, 111. LUCK, Alexander W. * (1919), Pres, and Gen.
Mgr., Reading Heater & Supply Co., Church and Woodward Sts., Reading, Pa.
LUCRE, C. E., (1924). Prof. Mech. Engrg.. Executive Htg. Dept., Columbia University, and 260 Riverside Drive, New York, N. Y.
LUMSDEN, Edward R., (1923). Pres., (for mail), E. R. Lumsden Co., 728 Philadelphia St., and 737 Water St., Indiana, Pa.
LYLE, Ernest T., (1919), Engr., (for mail). Carrier Engrg. Corp., 39 Cortlandt St., New York, N. Y., and The Braemore, 466 .Com monwealth Ave., Boston, Mass.
LYLE, J. Irvine, (1911), (Pres. 1917), (Council 1918), Treas. and Gen. Mgr., (for mail). Carrier Engrg. Corp., Newark, and 1200 W. Seventh St., Plainfield. N. J.
LYMAN, Samuel E., (Associate 1924), Erecting
Supt., Air Conditioning. 2021 Land Title Bldg., and (for mail), 132 North 49th St., Philadelphia,Pa.
LYMAN, William Ira, (Associate 1925), Engr.,
Grinnell Co., and (for mail), 225H Scott St., Warren, O.
. Me
McCAFFREY, H. Grattan, (1922), Chief Engr..
(for mail), Sheldons, Ltd., W. Main St., S., and
23 Rich Ave., Galt, Ont., Can. .
McCANN, Frank G.,'(I003), (Council 1914-1915),
Chief of Htg. and Vtg. Div., (for mail), Rm. 614,
131 Livingston St., and 1616 E. Tenth St.,
Brooklyn, N. Y.
McCarthy, Bernard J,, (1925), Mgr. Htg.
Dept., The P. & H. Supply Co., 225 Columbus
St., and 2306 Fairfield Ave., Ft. Wayne, Ind.
McCARTHY, Charles J., (1919), Contractor,
(for mail), Chas. J. McCarthy, 808 Otis Bldg.,
and 533 South 55th St., Philadelphia, Pa.
McCarthy. T., (1921). Htg.- Contractor, (for
mail), McCarthy & Crandall PIbg. & Htg.
Co., 529 S. Cascade Ave., and 444 W. Yampa
St., Colorado Springs, Colo.
McCAULEY, James H., (1921), Contractor,
565 W. Washington Blvd., and (for mail), 3831
Lexington St., Chicago, 111.
McCLELLAN, James E., (1922), Sales Engr., (for
mail), American Blower Co., 140 S; Dearborn
St., and 833 Galt Ave., Chicago, III.
McCLINTOCK, Alexander, Sr., (1917), Pres.,
(for mail). A. McClintock &* Son. 1937 Ridge
Ave., Philadelphia, and 121 Rochelle Ave.,
Wissahickon, Philadelphia, Pa.
McCLINTOCK, Alexander, Jr., (Junior 1920),
Htg. Engr., (for mail), 1937 Ridge Ave., Phila
delphia, and 121 Rochelle Ave., Wissahickon,
Philadelphia. Pa.
McCLINTOCK, John L., (1917), Member of
. Firm, (for mail), A. McClintock & Son, 1937
Ridge Ave., and 933 E. Rittenhouse St., Phila
delphia, Pa.
'
McCLOSKEY, John, (1923); 458 48th St..
Brooklyn, N. Y.
McCOLL, Jay R.,* (1916), (Presidential Member),
(Pres. 1922 ; 2nd Vice-Pres. 1920; 1st Vice-Pres.
1921; Council 1923), Dean of Engrg., Univ. of
Detroit. Consulting Engr., (for mail), McColl,
Snyder & McLean, 2348 Penobscot Bldg., and
825 Chicago Bivd.. Detroit, Mich.
McCORMICK, Edward T., (Associate 1923),
Br. Mgr., Pierce, Butler & Pierce Mfg. Corp.,
600 Second Ave., Pittsburgh, Pa.
McCOY, Thomas F,, (1924), Mgr., (for mail).
The Powers Regulator Co., 263 Summer St.,
Boston, and Glen Rd., Wellesley Farms,. Mass.
McCREA, Lester W., (1920), (for mail). Jas.
McCrea & Son, 19 N. Carrollton Ave., and 564
University Parkway, Baltimore, Md.
McCREERY, Hugh J., (1922), Mgr., (for mail) Combustion Engrg. Corp., Ltd., Bank Bldg,
and 1355 12th Ave., W., Vancouver, B. C.
McCULLEY, David E., (Associate 1917), Pres, and Treas., (for mail), D. E. McCulley Co., 1820
St. Mary's Ave., and 5104 Cuming St,, Omaha, Nebr.
McDONALD, John C., (1920), Br. Mgr., (for
mail), U. S. Radiator Corp., 1412 West 12th St., Kansas City, Mo.
McDONNELL, Everett N., (1923), Partner, (for
mail). McDonnell & Miller, Wrigley Bldg., 400
N. Michigan Bivd., and 627 Arlington Place,
Chicago, 111.
McELLROY, George Sheffler, (1925), Engr., R. T. Withers Sons Co., Ill N. Shenango St.,
and (for mail), 407 Clenmore Bivd., New Castle, Pa.
McEVOY, William J., (1917). Mech. Engr..
McFarland & Kitzelman Co., 520 West 36th St.,
Chicago, and (for mail). 1326 Columbia Ave ,
Rogers Park. Chicago, III. McFARLAND, William P.f (Associate 1923),
Salesman, Powers Regulator Co., 2720 Green-
view Ave., and (for mail), 1106 Columbia Ave.,
Chicago, 111. McGINNESS, J. E., (1903), Pres., (for mail),
McGinness, Smith & McGinness Co., 527
First Ave., and 142 Bellefield Ave., Pittsburgh,
Pa.
.-
McGLENN, G. Raymond, (1915), Secy., Ameri
can Wanning & Vtg. Co., 317-19 Pennsylvania
Ave., and (for mail), .259 Lormore St.. Elmira,'
N. Y.
- .
McGOWAN, Thomas F,, (1921). Htg. and Con
tracting Engr., 2832 Girard Ave., Philadelphia,
Pa.
McCREGOR, George H., (1920). Mgr., (for
mail), Western Htg. Co.`, 5051 W. Chicago Ave.,
Chicago, and 902 S. Cresent Ave., Park Ridge,
111.
McGUIGAN, L. A., (Associate 1919), Salesman,
Natl. Radiator Co., 215 Wood St., and (for mail), 724 Hastings St., Pittsburgh, Pa.
McHENRY, Robert W. M,, (1921), Asst. Engr.,
M. F. Thomas, 229 College St., and (for mail),
236 Eglinton Ave., E., Toronto, Ont., Can. McINTIRE, James F.t (Associate 1914; 1915),
(Council 1926), Vice-Pres., (for.-mail), U. S.
Radiator Corp.. 133 E. Grand River Ave., and 2061 Taylor Ave., Detroit, Mich. .
McINTOSH, Fabian C., (Junior 1917; 1921), Br. Mgr., (for mail). Johnson Service Co.. 10 E.
North Diamond St., N.S., and 3335 Portole St.,
Pittsburgh, Pa.
.
McINTYRE, William N., (1917), Supt., A.
Haltman Heating Co., 700 East 18th St., and
(for mail), 6027 Cherry St., Kansas City, Mo. McKENNA, William N., (1912), Treas., (for
mail), Wm. N. McKenna Co.. 79 Chestnut St.,
and 21 W. Cedar St., Boston, Mass. McKENZIE, Paul C., (Associate 1925), Sales
Engr., (for mail), Herr-Harris Co., 910 Fulton
Bldg., Pittsburgh, and 2724 Connecticut Ave., Dormont, Pa.
McKIEVER, Wm. H.* (Junior 1896; 1897).
, Consulting and Contracting Engr., (for mail),
/ Wm, H. McKiever, Inc., 247 West 13th St.,
New York, and 479 Eighth St., Brooklyn, N. Y.
McLAIN, Roland D., (1921), Htg. Engr., E.
Keeler Co., 238 West St., and (for mail), 716 Vernon Ave., Williamsport, Pa.
McLEAN, Dermid, (1917), (for mail), McColl,
Snyder & McLean, Consulting Engrs.; 2348
Penobscot Bldg., and 5140 Ridgewood Ave., Detroit, Mich.
McLEAN, Ivory D., (1924), Pres., (for mail),
McLean & Cousens Co.. 65 Chandler St,,
Boston, and 156 Coolidge St., Brookline. Mass.
McLELLAND, H. Burton, (Associate 1912),
Salesman, Jenkins Bros., 640 Washington Bivd.,
and 129 N. Menard Ave., Chicago. 111.
McMAHON, W. W., (Associate 1923). Mgr., (for
mail), Natl. Regulator Co.. 166 Lexington Ave.,
and 2950 Bainbridge Ave., New York, N. Y.
26
American Society of Heating arid Ventilating Engineers Guide, 1926-27
McMICHAEL, Peter, (Associate 1925), Pres, and
Mgr., Kewanee Boiler Co., Ltd., 66 Richmond
, St., E., and (for mail), 41 Spadina Rd., Apt. No.
7. Toronto, Ont., Can.
McMILLAN, Luther B.,* (1918), Consulting
Engr., (for mail), Jobns-ManviUe. Inc., 292
Madison Ave., New York, and Larchmont, N. Y.
McMORRAN, Francis J., (1917). Chief Engr.,
- Pecco, Inc., 2951 N. Market St., St. Louis, and
(for mail), 230 E. Argonne Drive, Kirkwood, Mo.
McMURRAY, John, (1920), Pres., Iron City
Htg. Co., 843 Jackson St., N.S., Pittsburgh, Pa.
McMURRER, Louis J., (Junior 1924), Drafts
man, The McMurrer Co., 303 Congress St.,
Boston, and (for mail), 37 Walnut St., Everett,
Mass.
'
-
McNAIR, Edward E., (1915), (Council 1921;
1922 ; 2nd Vice-Pres. 1923), Vice-Pres., (for
mail), U. S. Radiator Corp., 133 E. Grand River
Ave., Detroit, and Birmingham, Mich.
McVEHIL, Earl W., (1923), Mgr., McVehil
Plbg. Co., 40 E. Wheeling St., Washington, Pa.
M
MacDADE, Ambrose H., (1923), Haynes Selling
Co., Inc.. 1711 Sansora St.. Philadelphia, Pa.
MacDOUGALL, Burgess W., (1923), Mech.
Supt., State of New Jersey, State Office Bldg.,
Trenton, and (for mail). 219 Netherwood Ave.,
Plainfield, N. J.
.
MACFARLANE, J. Grant, (Associate 1925), P.
O. Box 147. Cumberland, Md.
MACKENSEN, Wm. H,, (1923). Estimator and
Designer, (for mail). The Huffman-Wolfe Co., 669
N. High St., and 84 Brevoort Rd., Columbus, O.
MacKENZIE, Burt, (1924), Htg. and Vtg. Con
tractor, 349 N. Elm St., and P. O. Box 353,
Greensboro, N. C.
MacKENZIE, John J., (1925), McNaughton &
MacKenzie. 1029 Shaw St., and (for mail), 664
Shaw St., Toronto, Ont., Can.
MACKIE, James, (1917), Mgr., James Mackie
Plbg. .& Htg. Co., 357 Langside St., and 254
Montrose St., Winnipeg, Man.
MACON, William W.,* (1908), (Secy. 19JL1; 1912;
Board of Governors 1913; Council 1914), Editor,
(for mail). Iron Age, 239 West 39th St., New
York, and 711 Ave. J., Brooklyn. N. Y.
MADISON, Richard D., (1926), Research Engr.,
(for mail). Buffalo Forge Co.. 490 Broadway,
.and 133 Lisbon Ave.. Buffalo. N. Y.
MAGINN, Peter F., (1908). P. F. Maginn & Co.,
207 Fulton Bldg., Pittsburgh, Pa.
MAHONEY, David John, (Associate 1926), Br.
Mgr., (for mail), Johnson- Service Co., 503
Franklin St., and 546 Delaware Ave., Buffalo,
N. Y.
MAIER, George M., (1921). Engr., Planning and
Research Dept., (for mail), American Radiator
. Co.. 40 ,West 40th St., New York, and Apt. 54,
Peldean Court, Pelham, N. Y.
.
MAIER, Herman F., (1926), Designing Engr.,
New York Blower Co., 2246 S. Halsted St., and
(for mail). 1044 West 70th St., Chicago, III.
MALLIS, William, (1914), Architect and Engr.,
(for mail), 326 Lyon Bldg., and North Gate
Apts.. First Ave., Seattle. Wash.
MALONE, Dayle G., (Associate 1925). Htg.
Engr., Hardin-Lavin Co., 121-139 W. Pershing `
Rd., and (for mail), 5439 Kimbark Ave., Chicago,
111. MANAHAN, James E., (Junior 1926), Vice-Pres.,
Manahan Engrg. & Equipt. Co., 6732 Oakland
Ave.. St.' Louis, Mo.
MANDEVILLE, Edgar W,, (1914), E. W. Man-
deville, Inc.. 623 Parkstde Ave., and (for mail),
1171 East 37th St.. Brooklyn. N. Y.
MANN, Carl P., (1924), Construction Engr.,
Beverly, N. J.
MANSELL, P. C., (1921), (for mail), Purdy-
Mansell, Ltd., 63 Albert St., and 26 Grassmere
Rd., Toronto, Ont., Can.
MANSFIELD, F. A., (Associate 1920), Dist. Mgr.,
(for mail), The Louis Allis Co.. 1213 Bessemer
Bldg., and 600 Shady Ave.. Pittsburgh, Pa.
MAPPETT, Alfred S., (Charter Member), Treas.,
Fowler & Wolfe Mfg. Co;, 621 Bulletin Bldg., Philadelphia, Pa. MARCH. Ralph C., (1919), Htg. Engr., (for
mail). Public Service Co. of North Illinois, 114 S. Oak Park Ave., Oak Park, and 376 Grove St., Lombard, 111. MARKEL, Frank E., (1923). Mech. Engr.. (for
mail). The Markel Co.. Engrs.. 1001-3 WynnsClaughton Bldg., and 937 E. North Ave.,
Atlanta. Ga. MARSHALL, H. Hall, (1923). Consulting Engr.,
(for mail), 37 West 43rd St., New York, and 63 Pine St., Garden City, N. Y.
MARTENIS, John V., (1918), Associate Prof, of Mech. Engrg., Mech. Engrg. Dept., Univ. of
Minnesota, and (for mail), 131 Orlin Ave., S.E.,
Minneapolis, Minn. MARTIN, Albert B., (1917), Dist. Sales Mgr., (for
mail). Kewanee Boiler Co., 822 W. Washington Bivd.. Chicago, and 997 Vine St., Winnetka. 111.
MARTIN, George W., (1911). Pres., (for mail).
New York Service Co.. 141 East 29th St., New York. N. Y., and 314 Prospect St., Ridgewood,
N. J.
MARTIN, Jeremiah F., (1926), Estimator and
. Supt. of Construction, H. L. Graham, 66 Ex
change St., and (for mail), 166 Glenwood Ave.,
Pawtucket, R. I.
MARTIN, .O. Waldemar, (1925), Chicago Mgr.,
(for mail), Flax-li-num Insulating Co., 133 W.
Washington St., Chicago, and 1044 Asbury Ave.,
Evanston. 111. MASON, Orion Augustus, (Associate 1922),
Vice-Pres. and Sales Mgr., Homer & Perkins Co., Oliver St., Boston, and (for mail), 30 Vista
Ave.. Auburndale, Mass. MASON, Ray B., (1925). Engr.. (for mail),
Kewanee Boiler Co., 2014 Wyandotte St., and 2940 Forest Ave., Kansas City, Mo. MATCHETT, James C., (1923), Vice-Pres. and Mgr., (for mail), Illinois Engrg. Co., Racine Ave., at 21st St., and 9936 W. Winchester Ave.,
Chicago, III. MATHEY, Nicholas J., (1915), Htg. and Vtg.
Engr., Mathey Plbg. Co., 31 Third Ave., N.E.,
LeMars, Iowa. MATHIS, Eugene, (1922), Pres., (for mail), A.
Mathis & Sons, Inc., 3155 Shields Ave., and
9151 S. Hoyne Ave., Chicago, 111.
`
MATHIS, Henry, (1921). New York Blower Co..
2248 S. Halsted St., and (for mail), 143 West
71st St., Chicago, 111. MATHIS, Jullen W., (Associate 1921), Pres.,
New York Blower Co., 2248 S. Halsted St., and
(for mail). 7003 S. Peoria St., Chicago, 111. MATHY, Joseph, Jr., (1925), Chief Engr. and
Gen. Supt., (for mail), R. B. Hayward Co.. 1714 Sheffield Ave., and 3415 West 61st Place,
Chicago. 111. MATSON, Taylor, (Associate 1925), Mech.
Engr., Taylor Matson Co., 6141 Girard Ave.,
Philadelphia, Pa. MATTHEWS, Charles Russell, (1924). Htg.
Engr., (for mail). Warren Webster & Co., 220 Devonshire St., Boston, and 48 Dana St., Cam
bridge. Mass.
'
MATTHIESSEN, H. G. F., (1923), Sales Engr., Hoffman Specialty Co.,. 512 Fifth Ave., New
York. N. Y., and (for mail), 179 Renner Ave.,
Newark, N. J.
.,
MATTHEWS, John K., (1923), Morgan Htg.
& Plbg. Co., Box 843, Charleston, W. Va.
MATZEN, Harry B.t (1919). Mgr., Carrier Engrg.
Corp., 923 Union Trust Bldg., and 2642 N. More land Bivd.. Cleveland, O.
MAUER, William J.. (1919), Sales Engr., Dwyer Equipment Co., 4534 W. North Ave., Chicago, and (for mail), 2624 Central St., Evanston, 111.
MAUPAI, Ralph G., (Associate 1925), Pres.,
R. G. Maupai Co.. 73 South St., Jersey City, and (for mail), 219 Eighth St.. West New York, N. J.
MAURER, Edward D., (1921), Secy, and Treas.,
Maurer Bros. Co.. 8600 Detroit Ave., Cleveland, and (for mail), 1527 Mars Ave., Lakewood, O.
27
Roll of Membership
MAY, Edwin A., (1906), 171 N: Kenilworth Ave.,
Oak Park, III.
MAYER, Robert S., (1911), Br. Sales Mgr., (for
mail). Heggie-Simplex Boiler Co., 2026 East
22nd St., and 9327 Amesbury Ave., Cleveland, O.
MEAD, Edward A., (1926), Sales Dept., Nash
Engrg. Co., South Norwalk, Conn.
MEAD, Walter R., (1924), Sales Repr., Hoffman
Specialty Co.. Waterbury, Conn., and (for mail),
711 Highland Ave., San Mateo, Calif.
MEADOWS, Frank H., (1923). The Meadows
Heating Co., 94 Second St., Milwaukee, Wis.
MEARA, John J., (junior 1925), Estimator and
Engr., Hunt Heating Co., 1515 Olive St., and
2733 Gamble St., St. Louis, Mo.
MEDWAY, Fred J,, (Associate 1919), Mgr., (for
mail), Johns-Manville, Inc., Madison Ave. and
41st St., New York, N. Y., and 803 Boulevard.
E.. Weehawken, N. J.
MEHAFFEY, William Chambers, (1922).
Engr., Chambersburg Construction Co., Cham-
bersburg, Pa.
MEHRING, George, (Charter Member), Pres.,
Mehring & Hhnson, 162-166 N. Clinton St.,
Chicago, III.
MEIER, Konrad,* (1916), Consulting Engr..
Rychenbergstrasse 57. Winterthur. Switzerland.
MELLON, James T. J,, (1911), (Council 1915).
Owner, Mellon Co., (for mail), 4419 Ludlow
St., ami 431 North 63rd St., Philadelphia, Pa.
MENK, Rudolph W., (1919), Gen. Mgr., Htg.
Systems & Supply Co., 169 N. May St.. Chicago,
and (for mail), 814 Clement St., Joliet, 111.
MENSING, Frederick D., (1920), Consulting
Engr., (for mail), Mensing & Co., 928 Presser
Bldg., and 2845 Frankford Ave., Philadelphia,
Pa.
MENZIES, Frederick Robert, (Junior 1926),
New Haven Mgr., (for mail). The Trane Co., 410
. Temple St., New Haven, and Long Hill, Wood-
bridge. Conn.
MERKEL, Fred P., (1924), Prop., (for mail), 131
South 12th St., Newark, and 2 Garfield Place,
E. Orange, N. j.
MERRILL, Carle J., (1919), Treas., (for mail),
C. J. Merrill, Inc., 54 St. John St., and 15 Long
fellow St., Portland, Me.
MERRITT, C. J., (1925), Andersen Meyer & Co.,
Ltd.. Shanghai, China.
MERTZ, Walter A., (1919), Secy., (for mail).
Kehm Bros. Co.. 51 E. Grand Ave., and 3753
N. Keeler Ave., Chicago, 111.
.
MERVTNE, Thomas R., (1922), Partner, Mervine
Bros.. 208 S. Seventh St., and (for mail), 5852
N. Fifth St., Philadelphia, Pa.
MERWIN, Gile E., (Junior 1923; 1924), Htg.
Engr., (for mail), Rockford Brass Works, and
1225 N. Church St., Rockford, 111. MESSMER, George E,, (Junior 1g25), Htg.
Engr.. (for mail); Bridge & Beach Mfg. Co.,
4204 N. Union Blvd., and 3020 Walton Place,
St. Louis, Mo.
'
MESTON, A. B., (Associate 1925), 201 W. Second
St., Des Moines, la.
MEWSHAW, James P., (1923). C. A. Dunham
Co.. 605-6 Hill Bldg., 17th and Eye St.. N.W..
and 2700 35th Place, N.W., Washington. D. C.
MEYER, Hans J., (1919), (Council 1922), Pres.,
(for mail), Chas. L. Pillsbury Co., 1200 Second
Ave., S., and 2736 Hennepin Ave., Minneapolis,
. Minn.
`MEYER, Henry C., Jr., (1898), (Council 1915;
1916), Consulting Engr., 101 Park Ave., New
York. N. Y.
MEYER, John W., Jr., (1921), Mgr. Order and
Credit Depts., (for mail). American Blower Co.,
6004 Russell St., and Webster Hall, Detroit,
Mich.
MEYER, Richard C., (1926), Sales Engr.. Walter
H. Eagan & Co., 315 Stephen Grand Bldg., and
(for mail). 1705 Porter St., Philadelphia, Pa.
MEYERS. John, (Junior 1925), 258 S. Van Pelt
St., Philadelphia, Pa.
MEYERS, Samuel H., (Associate 1924). Meyers
Bros.. 219 Hale St., and 1502 Virginia St.,
Charleston, W. Va.
MEYERING, Archer S., (1922). Htg. and Vtg.
Engr., (for mail). Br. Mgr., C. A. Dunham Co..
1721H Carey Ave., and 1211 West 31st St..
Cheyenne, Wyo.
MICHAEL, L. A., (1921), Htg. and Vtg. Engr..
414 W. Colfax Ave., Denver. Colo.
MILLAR, Rowland J., (1925), Vice-Pres. and
Mgr., (for mail), Pease Foundry Co., Ltd., 118
King St., E., and 53 Oakmount Rd., Toronto,
Out., Can.
MILLER, Alan A., (Associate 1926), Htg. Engr.,
Bridgman Co., 120 South 30th St., Philadelphia,
and (for mail), 731 Cornell Ave., Drexel Hill, Pa.
MILLER, Charles A., (Associate 1917), Salesman,
(for mail). The H. B. Smith Co.. 10 East 39th
St., and 2178 University Ave., New York, N. Y.
MILLER, Charles W., (Junior 1908; 1919),
Pres., (for mail), Rado Co.. 192 Reed St., Mil
waukee, and R 1, Box 62, Menomonee Falls,
Wis.
MILLER, Edwin A., (Associate 1925), Coheen
Corp., (for mail), 331 Madison Ave.. and Emer
son Hotel, 75th St., Amsterdam Ave., New
York, N. Y.
MILLER, Floyd A., (1911), Inspection Engr.,
U. S. Treasury Dept., 477 Federal Bldg., Chicago,
III.
MILLER, Harry M., (1920). Htg. and Vtg.
Engr., 6089-91 Plankinton Bldg., Milwaukee,
and 1290 Stowell Ave., Shorewood, Wis.
*
MILLER, Harvey N., (1921), Sales Engr., Illinois
Engrg. Co., 21st St. and Racine Ave., Chicago,
111., and (for mail), 744 Lafayette Ave., S.E.,
Grand Rapids, Mich.
MILLER, James E., (Junior 1912; 1914),.Vice-
Pres., (for mail), C. W. Johnson. Inc., 211 N.
Desplaines St., Chicago, and 2210 Coifax St.,
Evanston, 111. .
MILLER, John F. G., (1916). Vice-Pres. and
Treas., American Blower Co., 6004 Russell St.,
Detroit, Mich.
MILLER, Leo B., (1926). Partner, (for mail).
McDonnell & Miller, Wrigley Bldg., and Allerton
Club, Chicago, 111.
MILLER, Max Paul, (1911), (for mail), W. D.
Cashin & Co.. 35 Hartford St., Boston, and 12
ByfieliJ Rd., Waban, Mass.
MILLER, Peter, (1926), Htg. Engr. and Estima
tor, Davidson & Miller. Htg. and PIbg. Con
tractors, 119 Broadway. Saranac Lake. N. Y.
MILLER, Robert B., (1922), Pres, and Mgr., (for
mail). Miller & Brady, Inc., 210 East 38th St.,
New York, and Woodhaven, L. I., N. Y.
MILLET, Tolbert G., (Junior 1921), Piping
Engr., Pennsylvania R. R-, Harrisburg, and (for
mail), Wormleysburg, Pa.
MILLER, William C., (1918). Pres., (for mail),
Htg. Specialties Co., 10 South 18th St., Phila
delphia, and Collegeville, Pa.
MILLIKEN, James H., (1923). Chicago Mgr.,
(for mail). Reed Air Filter Co., 140 S. Dearborn
St.. Chicago.and 618 Hinman Ave., Evanston, 111.
MILLIS, Linn W.,* (1918), Secy, and Treas.,
Security Stove & Mfg. Co., 17th and Oakland
Sts., and (for mail), 3534 Wabash Ave., Kansas
City. Mo.
M1LWARD, Robert K., (Associate 1920), Br.
Mgr., (for mail). U. S. Radiator Corp., 4004
Duncan Ave.,. St. Louis, and 434 Lee Ave.,
Webster Grove, Mo.
MINNICH. Harry S., (1921). Philadelphia Mgr.,
Richmond Radiator Co., 2241 N. American St.,
and (for mail). 4526 Walnut St., Philadelphia,
Pa. MITCHELL, Charles H., (1924), Engr., Barber
Co.. 26 Warrenton St., Boston, and (for mail).
179 Thatcher St., Mattapan, Mass.
MODIANO, Rene, (1925), Continental Sales
Engr., Carrier Engrg. Co., Ltd., Elysee Bldg.,
Rue du Faubourg, St. Honore. and (for mail).'
10. Rue Gustave Dore, Paris (17 eme), France.
MOFFETT, William S., (1907), Consulting and
Construction Engr., Staunton. Va.
MOLER, William H., (Junior 1923). Pacific
Coast Br. Mgr., (for mail). Carrier Engrg. Corp.,
911 Mateo St., Fresno. Calif.
28
American Society of Heating and Ventilating Engineers Guide, 1926-27
MOLO, Harold E., (1922). Mgr., (for mail),
Linehan & Molo, 135 W. Fifth St., and 1018 W.
Fifth St., Dubuque. Ia.
MOLTZ, George N. (Associate 1925), Sales
Engr.. Standard Heater Co.. 315 Pearl St.,
Hartford, Conn.
MONAGHAN, Thomas H., (1914), Pres., (for
mail), Robert Gordon, Inc., 22 W. Austin Ave.,
and 623 Demine Place, Chicago. III.
MONDAY, Charles E., (1920), (for mail), Chas.
E. Monday Co., 1320 Olive St., Philadelphia, Pa.,
and 15 N. Chelsea Ave., Atlantic. City, N. J.
MONIN, E. H., (1923). E. H. Monin, Inc., 70
Delaware Ave., Buffalo, N. Y.
MONROE, Lewis O., (Junior 1917; Associate
1925), Gen. Mgr., (for mail), Clarage Fan Co.. -
and 2415 S. Westnedge St., Kalamazoo, Mich.
MONTAGNA, C. J., (1924). Owner, (for mail),
2913 Colonial Ave., and 1215 DeBree Ave.,
Norfolk, Va.
MONTGOMERY, W. Ray, (Associate 1923).
Co*Partner, Montgomery Bros.. 500 N. Dearborn
St.. Chicago, 'III.
MOODY, Lawrence E., (1919), Engr., (for mail),
Isaac H. Francis, 1520 Locust St., Bonbrigbt
Bldg.. Philadelphia, Pa., and 237 jefferson Ave..
Haddonfield. N. J.
'
MOON, L. Walter, (1915), Engr., (for mail).
Bradley Htg. Co., 3834 Olive St., and 6069
Cates Ave.. St. Louis, Mo. MOORE, Donald S., (1923). Treas.. (for mail).
Flexlume Sales Co.. 122 W. Forsythe St., and
34 W. Ninth St.. Jacksonville. Fla.
MOORE, H. Lee, (1919), Pittsburgh Mgr., Buffalo
Forge Co., Union Trust Bldg.. Pittsburgh, and
7065 Flaccus Rd.. Ben Avon, Pa.
MOORE, Herbert S., (Associate 1923). Sales
Mgr., The Atlas Engrg. & Mach. Co., Ltd., 23
River St., and 107 Clendenan Ave., Toronto,
Ont., Can.
MOORE, Josiah C., (1921), Consulting Equip*
ment Engr., (for mail). Aero Alarm Co.. 508
Thompson Bldg., and 2409 E. Prospect St.,
Seattle, Wash.
` - MOORE, Raymond Francis, (Associate 1926),
Architect. Cedar Rapids. Ia.
MORAN, Frank E., (1922), Pres., (for mail).
Ben Rigby, Inc., 2652 Elston Ave., Chicago, and
3034 S. Maple Ave., Berwyn, 111.
MORAN, F. N,, (1916), 128 W. Main St.. Staun
ton, Va.
MORAN, Roger J., (1926), Prop., 1300 Jefferson
Ave., Buffalo, N. Y.
MORGAN, C. Stanley, (Associate 1919), (for
mail). 445 W. Lamed St., and 14595 Harbord
Rd., Detroit, Mich.
MORGAN, Francis H., (1912), Pres, and Treas.,
(for mail). J. F. Morgan & Son, Inc., 67 Blake
St., and 194 Maple St., Lynn, Mass.
MORGAN. Glenn C., (1911), Vice-Pres. and
Secy., (for mail). Morgan-Gerrish Co.. 808
LaSalle Ave., and 134 West 49th St., Minnea
polis. Minn.
MORGAN, J. Scott, (Associate 1922), Mgr., (for
. mail). Morgan Bros., 7227 Tioga St., and 7031 .
Hamilton Ave., Pittsburgh, Pa.
MORGAN, Robert C., (1915), Chief Engr., (for
mail), Stewart A. Jellett Co.. Engrs.. 1200 Locust
St., and 314 W. Seymour St., Philadelphia, Pa.
MORRIS, C. Raymond, (1921). (for mail), 55
Lexington Ave., Passaic, and 381 20th Ave.,
Paterson, N. J. .
MORROW, Charles F., (Associate 1919), Mgr.,
(for mail), National Radiator Co., 1509 Arrett
Bldg., Wood and Fourth Ave., Pittsburgh, and
Wampum. Pa.
MORSE, C. T., (1921), Sales Mgr., American
Blower Co.. 6004 Russell St., Detroit, Mich.
MOSHER, Clarence H., (Associate 1919), Dist.
Sales Agent. American Schaeffer & Budenberg
Corp., 338 Berry St., Brooklyn, and (for mail),
423 Ashland Ave., Buffalo, N. Y.
MOSS, Edward, (1920), Supervisor, Plbg. and
Htg., (for mail). New York Rapid Transit Corp..
1130 Atlantic Ave., Brooklyn, and 9053 204th
St.. Hollis, L. I., N. Y.
MOTEJL, J. A., (1917), Secy., (for mail). Board
of Education, 705 First Ave., and 220 16th Ave.,
Cedar Rapids, Ia.
MOTT, Abram C., Jr., (1921), Pres., (for mail),
Abram Cox Co., American and Dauphin Sts.,
Philadelphia, and "The Woods," Lansdale. Pa.
MOUAT, Thomas G., (1914), Pres., (for mail).
The Mouat Vapor Htg. Co., 1246 W. Fourth
St., and 360 East 105th St., Cleveland. O.
MOULDER, Albert W., (1917), Chief Engr.. (for
mail), Grinnell Co., Inc., Dana and Paige Ave.,
and 74 Roosevelt-Ave., Warren, O.
MOULTON, David, (1926), Mech. Engr.. (for
mail). Monks & Johnson, 99 Chauncy St., and
30 Meridian St., Malden, Mass.
MOWER, William P., (1924), Htg. Engr., (for
mail), Warren Webster & Co., 220 Devonshire
St., Boston, and 48 Middlesex Ave., Swamp-
scott. Mass.
,
MOYNIHAN, John C., (Junior 1925; Associate
1926), 136 Myrtle St.. Indian Orchard. Mass.
MUELLER, Paul E., (1919), Pres., (for mail).
The Paul E. Mueller Co., 320 Park St., and 924
Summit Ave., Milwaukee, Wis.
MUIR, George A., (1917), Engr., Muir & Brooks.
136 W. Lake St., Chicago, and (for mail), 234
S. ScoviUe Ave.. Oak Park, 111.
MUNDER, J. F., Jr., (Junior 1924). Sales Engr.,
American Blower Co., 50 Church St., and 1738
University Ave., New York, N. Y.
MUNIER,Leon L., (Junior 1915; 1919). Secy.and
Treas.. (for mail), Wolff & Munier, Inc., 222
East 41st St., New York; and 610 Lafayette
Ave., Mt. Vernon, N. Y.
MUNRO, Edward A., (1920), Htg. and Vtg.
Engr., (for mail), 506*7 Metropolitan Bk. Bldg.,
Washington, and 3837 Livingston St.. Chevy
Chase. Washington, D. C.
MUNROE, Edward K., (1904), Engr. Salesman.
Republic Boiler & Radiator Co., Union St., and
5924 Bellona Ave.. Baltimore. Md.
MUNSON, Morris G., (1925). _ Sales Repr..
Herman Nelson Corp., (for mail), 501 Essex
Bldg., and 2811 Dean Blvd., Minneapolis. Minn.
MURCH, Greenwood E.. (1923), Richardson
Boynton Co., 3639 S. Ashland Ave.. and (for
mail), Chicago Athletic Assoc.. Box 120, Chicago,
III.
MURPHY, Edward T. * (1915), Vice-Pres. and
Gen. Sales Mgr., (for mail). Carrier Engrg.
Corp., 2021 Land Title Bldg., and 4621 Osage
Ave.. Philadelphia, Pa.
MURPHY, Howard C.. (1923), Vice-Pres., (for
mail), Reed Air Filter Co.. Inc., 215 Central
Ave., and 2114 Edgehill Rd., Louisville, Ky.
MURPHY, J.. (Associate 1924). 304 Main St.,
Cambridge. Mass.
MURPHY, Joseph Richard, (Associate 1925),
Asst, to Pres., Thermal Appliance Co., Inc., 342
Madison Ave., New York, and (for mail), Kew
Beverly B-2, Kew Gardens. L. I., N. Y.
MURPHY, William A., (1926), Sales Engr., (for
mail). Hoffman Specialty Co., 25 West 45th St.,
New York, N. Y., and 23 South 17th St.. Harris
burg. Pa.
,, ._
MURPHY, William R., (1911), Pres, and Treas..
American Htg. & Vtg. Co., 804 .Times Dispatch
Bldg., Richmond. Va., Vice-Pres. and Treas.,
American Htg. & Vtg. Co., 1505 Race St.,
Philadelohia.and 226 Valley Rd.. Merion Sta., Pa.
MURRAY, Thomas F., (1923), Engr.. State
Architect, and 300 Washington Ave., Albany,
N. Y.
MUSAUS, John, Jr., (1923), Steam Htg. Con
tractor, (for mail), John Musaus Sons, 5912 New
Utrecht Ave., and 1108 85th St., Brooklyn, N. Y.
MUTH, Herbert, (1912), Pres, and Treas., (for
mail). Muth Htg. & Engrg. Co.. 4338 N. Western
Ave.. and 4117 Greenview Ave.. Chicago, 111.
MYERS, David R.t (1923). Mgr., (for mail). Ill
Old Lancaster Rd., Bala. Pa., and 5629 32nd St.,
N.W.. Washington. D. C.
.
MYERS. George W. F., (Junior 1923), Asst.
Sales Mgr.; (for mail). York Htg. & Vtg. Corp.,
1502 Locust St., and 2233 South 15th St..
Philadelphia, Pa.
29
Roll of Membership
MYRICK, James W. H., (1909), Vtg. Engr.,
Owner, (for mail), New England Air Condition ing Co., 53 Devonshire St., Boston, and 398 Columbia Rd., Dorchester, Mass.
N.
NACEY, Harry M., (1908). Pres, and Gen . Mgr'.,
(for mail), 927 S. State St., and 229 Lake Shore
Drive, Chicago, 111.
NADEN, Lester James, (Junior 1925), Sales
Engr., 22 Beverly Ave., Albany, N. Y.
NAROWETZ, Louis L., Jr., (Associate 1912),
Contracting, Secy., (for mail). Narowetz Htg.
& Vtg. Co., 1711-1717 Maypole Ave., Chicago,
and Park Ridge. III.
'
NATKIN, Benjamin, (Junior 1907; 1909), Pres.,
(for mail), Natkin Engrg. Co,, 208 Mutual
Bldg., and 3725 Tracy Ave., Kansas City, Mo.
NAYLOR, Ben C., (Associate 1922), Vice-Pres.
and Sales Mgr., (for mail), Standard Asbestos
Mfg. & Insulation Co., and 3204 Windsor Ave.,
Kansas City. Mo.
*
NEILER, Samuel G., (1898),. Sr.' Member, (for
mail). Neiler, Rich & Co.. Consulting & Design
ing Engineering, 431 S. Dearborn St., Chicago,
and 737 N. Oak Park Ave., Oak Park, 111.
NEITZEL; Carl W,, (1921), Mgr., The C. W.
Neitzel Co.. 1327 East 105th St., Cleveland, and
Belvoir Bldg., S. Euclid. O.
NELSON, Prank, Jr., (1923), Partner, (for mail),
Frank Nelson & Son. 1826 Cherry St., and 6349
Greenway Ave., Philadelphia, Pa.
NELSON, George O., (1923), Carstens Bros.,
Ackley. la.
NELSON, Harold A., (1926), Supervising Engr.,
Nelson & Wylie, Sixth and Olive Sts., and (for
mail), 1009 S. Plymouth Blvd., Los Angeles, Calif.
NELSON, Herman W., (1909), Pres., (for mail).
Herman Nelson Corp.. 1824 Third Ave., and
2500 11th St.. Moline, 111.
NELSON, Ralph L-, (Junior 1913; 1917). Engr.
' and Sales Repr., Ralph L. Nelson, 506 Empire
State Bldg., and 218 W. Buckeye, Spokane, Wash.
NESBIT, David M.,* (1895), (Board of Governors
1900), Chairman, Ashwelt & Nesbit, Ltd.,
Ashwell Lodge, Barkby Lane, Leicester, Eng.
NESBITT, Albert J.,* (1921), Secy, and Treas.,
(for mail), John J. Nesbitt, Inc., 213 N. Vermont
Ave., and 212 S. Victoria Ave., Atlantic City,
N. J.
..
NESBITT, John J., (1923), Pres., (for mail),
J. J. Nesbitt, Inc., 213 N. Vermont Ave.,
Atlantic City, N. J., and Rockfield Farm,
Ambler. Pa.
NESDAHL, Ellert, (1915), Sales Engr., Carrier
Engrg. Corp., 1032 Burnham Bldg., Chicago. 111.
NEWCOMB, Raymond, (Junior 1924), New
England Mgr., Kewanee Boiler Co., Inc.. 1140
' Little Bldg., Boston, and (for mail), 15 Walnut
St., Newtonville. Mass
NEWPORT, Charles F.,* (1906), Sales Engr.,
Weil, McLein Co., Michigan City, Ind., and (for
mail), 10001 Longwood Drive, Chicago, 111.
NICELY, John Eyster, (Associate 1925). Sales
Mgr., Corbit Bros. Plbg. & Htg. Co., 147-151
N. Fifth St., and (for mail), 406 Green Terrace,
Reading, Pa.
NICHOLLS, Percy* (1920). Fuel Engr.. (for
mail). U. S. Bureau of Mines, and 273 N. Craig
St.. Pittsburgh, Pa.
NICHOLS, George B., (1915). (Council 1919
1920), c/o Hagerman-Harris, Boston, Mass. '
NICOL, Norman C., (1923), Field Engr., National
Tube Co.. 71 Broadway, New York, N. Y.
NIESTRATH, W. H., (Associate 1921). Jas. P.
Marsh & Co., 3324 S. Jefferson Ave., St. Louis,
Mo.
NILSON, Andrew, (1917), Pres., Eureka Smoke
less Furnace Co., 3222 N. Halsted St., and (for
.mail), 5407 Wayne Ave., Chicago. 111.
NILSON, Karl A., (Junior 1926), Engr. and
' Salesman. Nilson Bros., 3222 N.' Halsted St.,
and (for mail). 5547 Magnolia Ave., Chicago, 111.
NOBBS, Walter W., (1919), 50 Fairhazel Gardens,
London, N.W., 6, Eng.
NOBIS, Harry M., (1914), Htg. Engr.. 2010
East 102nd St., Cleveland, and (for mail), 1827
Stanwood Rd.. E. Cleveland, O.
NOBLE, Milner, (Junior 1924), (for mail).
Aerofin Corp.. 750 Frelinghuysen Ave., and 80
Broad St., Newark,.N. J.
NOLAND, Lloyd U., (1915), Pres., (for mail),
Virginia Engrg. Co.. 322-330 28th St., and 319
54th St., Newport News, Va..
NOLAND, Ralph W., (1914), Consulting and
Mech. Engr., 824 Lafayette Life Bldg.. Lafayette,
and 1001 Roberts St., Lafayette, Ind.
.
NOLL, William F., (1924), The Paul E. Mueller
Co., 320 Park St., and (for mail), 1188 48th St.,
Milwaukee. Wis.
NORDINE, Louis F., (1914). Sales Engr.. Herman
Nelson Corp., and (for mail), 1170 25th St..
Moline, 111.
NORMAN. Mehrold A., (1926). Htg. Engr..
Warren Webster & Co., Rm. 506, 549 W. Wash
ington St., Chicago, 111.
NORRIS. Edward, (1909). Utica Heater Co., Utica. N. Y.
NORRIS, James K., (1920), Vice-Pres., (for mail).
Utica Heater Co., and 1 Jewett Place, Utica.
N. Y.
'
.
NORTON, Frederick W., (Junior 1922; Associate
1925), Engr., Gillis & Geoghegan, 537 W. Broad
way, New York, and 47 Rokeby Place, Livings
ton, S. I., N. Y.
NULSEN, Car! A., (1919), Engr.. (for mail).
Hanley & Co.. 6 N. Clark St., and 931 Ainslie
St.. Chicago. 111.
'
NUNAN, John F., (Junior 1921; Associate 1925),
Foreman, (for mail), Jas. Spear Stove & Heater
Co.. 1823 Market St., and 238 W. Highland Ave.,
. Chestnut Hill, Philadelphia, Pa.
NUSBAUM, Lee,* (1915), Engr., (for mail),
Pennsylvania Engrg. Co., 1119 N. Howard St.,
and 315 Carpenter Lane, Philadelphia. Pa. ,
OAKS, Orion O., (1917), Chief Engr.. N. Y.
Div., (for mail). American Radiator Co., 40
West 40th St., New York, N. Y., and 13 Russell
Place, Summit, N. J.
OBERT, Casin W., (1916), (Secy. 1916-19237?
Secy, to A. S. M. E. Boiler Code Committee, 29
West 39th St., New York, and (fpr mail), 122
N. Columbus Ave., Mt. Vernon, N. Y. .
O'BRIEN, J. H., (1923), Chicago Dist. Mgr., (for mail), American Blower Co., 140 S. Dearborn
St., and 6525 Glenwood Ave., Chicago. 111.
O'CONNELL, Edward D., (Associate 1925), Htg. Engr., Robt. Scott, Inc., 1512 Vine St., and (for
mail), 1432 North 53rd St., Philadelphia, Pa.
O'CONNELL, Presly M., (1916), Repr.. Hoffman
Specialty. Co., and (for mail), 5749 31st Ave.,
N.E., Seattle, Wash.
'
O'CONNOR, Joseph M,, (1923). C. A. Dunham
Co.. 302 Orpheum Bldg., and (for mail), 421 Sedgwick Bldg., Wichita. Kans.
O'DONNELL, Thomas J., (1920). Secy, and
Treas., (for mail), William H. McKiever. Inc.,
247 West 13th St,, and 31 Park Terrace West, New York, N. Y. . .
OFFNER, Alfred J., (1922), Consulting Engr.,
(fon mail). 1182 Broadway, New York, and
Beechhurst, L. I., N. Y.
,
OGELSBY, William P., (1923). Sales Mgr., Oil
City Boiler Works, 1043 Real Estate Trust Bldg..
Philadelphia, Pa.
.
OHMES, Arthur K.,* (1913), (Council 1915; 2nd
Vice-Pres. 1916; 1st Vice-Pres. 1917). Consulting
Engr., 101 Park Ave., New York, N. Y.
OLSEN, A. J., (Junior 1924). C. J. Olsen. 109-11
Center St., and 452 Center St., Winona, Minn.
OLSEN, Carlton F., (Junior 1920; Associate 1925). Combustion Engr., Kewanee Boiler Co.. 822 W.
Washington, and (for mail). 6238 Evans Ave.,
Chicago, 111.
30
American Society of Heating and Ventilating Engineers Guide, 1926-27
OLSON, Arvid E., (1925), Engr., Board of PARKHILL, David, (1915). Supt.. (for mail).
Education, 1009 Milton St., and (for mail). 3133
N. Keating Ave., Chicago, III. OLSON, Robert G., (1923), Milwaukee Mgr., (for
mail), American Blower Co.. 911 Majestic Bldg., and 245 Prospect Ave.. Milwaukee. Wis. OLVANY, William J., (1912), Engr. and Con
tractor, 100 Charles St., New York. N. Y. O'NEILL, James Walter, (Junior 1925). Chief
Engr.. The Trane Co., 21-23 River St., and (for
mail), 207 McRobert Ave., Toronto, Ont., Can. O'NEILL, Peter, (1920). Treas. and Mgr.,
Bartley-O'Neill Co.. 224 Third Ave.. Pittsburgh.
The Graff Furnace Co., 116 Wooster'St., New York, and 197 Rutland Rd.. Brooklyn, N. Y.
PARKS, Vernon H., (1918), Mgr., Meyer Furnace & Supply Co., 1051 St. Louis, and (for mail),
4321 Charlotte St.. Kansas City. Mo. PARROTT, Lyle G., (1922), Consulting Engr.,
McColl, Snyder & McLean. 2348 Penobscot
.Bldg., and (for mail), 3788 Gladstone Ave.,
Detroit. Mich. PARTER, Samuel C., (Junior 1907; 1909). Secy.,
James H. Merritt & Co.. Inc., 207 Water St., and (for mail), 642 West 172nd St., New York,
Pa.
N. Y.
ORR, Fred B., (1924), Asst, to Vice-Pres.. (for PARTLAN, James W., (1916), (for mail). 13900
mail). Illinois Maintenance Co., 72 W. Adams
Goddard Ave., and 478 Algonquin Ave., Detroit,
St., and 700 Irving Park Blvd., Chicago. 111.
Mich.
ORR, Merrill J., (1917), Pres, and Mgr.. Orr Co.. PASK, Raymond J., (Junior 1924), Consulting
(for mail), 513 Jackson St., and 1815 Jackson
Engr., Crytser & Pask, Tribune Tower, and (for
St., Sioux City. Ia.
mail), 14 S. Homan Ave., Chicago. III.
ORTH, John W., (1919), Pres., Orth Plbg. PATERSON, G. E., (1926). Owner. Paterson
Co.. 509 Columbia St., Lafayette, Ind.
Htg. Co., 28 Waugoo St.. Oshkosh. Wis.
OSBORNE, Gurdon H., (1922), Gen. Mgr., (for PATERSON, James S., (1922), Htg. Engr.. (for
mail). The Vtg. & Blow Pipe Co.. Ltd., 144
mail), Board of Education 155 College St., and
.Inspector St., and 275 Addington St., Apt. No.'
23 Norton Ave., Toronto. Ont., Can.
7. Montreal. Que., Can.
. PATERSON, Wm. B., (Junior 1920; Associate
OSBORNE, Maurice M., (1925), Advertising
1921). Asst.. H. H. Angus. Consulting Engr.. 2
Counsel for. Technical Products, Osborne & Co.. . Bloor St., W.. and (for mail), 198 St. Germain
755 Boylston St., and (for mail), 367 Beacon St.,
Boston, Mass. OSMON, Thomas R., (1916), Htg. and Vtg.
Engr., Spohn Htg. & Vtg. Co.. 1775 East 45th St., and (for mail). 851 Paxton Rd., Cleveland.
O.
OSTRANDER, Lewis F., (1923), Vice-Pres. and
Htg. Engr., O-E Specialty Mfg. Co.. 8-12 Keefe Ave.. and (for mail), 411 Newberry Blvd.,
Milwaukee. Wis. OSWALD, Walter L., (1919). Sales Engr.. Crane
Co.. 23 West 44th St., New York, and (for mail).
562 Hutchinson Blvd., Mt. Vernon. N. Y. OTIS, Gerald E., (1922), Vice-Pres.. (for mail).
Ave.. Toronto. Ont., Can. PATORNO, Sullivan A. S., (1923). Htg. and
Vtg. Engr.. (for mail), Meyer. Strong & Jones, Inc., 101 Park Ave., and 150 East 50th St.,
New York. N. Y. PATTERSON. D. Finley. (Junior 1925), Engr.,
Vapor Htg. Co., (for mail), 215 South 17th St., and 6428 N. Woodstock St., Philadelphia. Pa. PAULDING, Lewis Grant, (1926). Partner, (for
mail), Frank Paulding & Son, 405 Lexington Ave., and 8733 117th St., New York. N. Y. PEACOCK, James K., (1921). New York Mgr., . (for mail), Hoffman Specialty Co.. 512 Fifth'
. Ave., New York, and 440 Fowler Ave.. Pelham'
The Herman Nelson Corp., and 1921 23rd Ave.,
Manor. N. Y.
_ Moline. 111.
. PEARCE. C.E., (1911), Chief Engr., Guilbert
OTT, Oran W., (1925), Consulting Mech. Engr., . & Betelle,. Architects, Chamber of Commerce
(for mail), 13004 Washington Bldg., and 123 S.
Bldg., Newark, and (for mail), 1255 Clinton
Virgil Ave.. Los Angeles. Calif.
Place. Elizabeth, N. J.
;.
OTTO, Robert W., (1912), Chief Engr.. Andrews PEARSON. Fred L., (1925). Consulting Engr.,
- Heating Co.. 2529 University Ave., S.E.. Min
(for mail). 6 N. Michigan Ave., and 7702 East-
neapolis. and (for mail), 2147 Carroll Ave., St.
lake Terrace, Chicago, 111.
Paul, Minn.
PEARSON, Harry D., (1917). Pres, and Mgr., (for
mail). Michigan Warming & Vtg. Co., 363
P . Houseman Bldg., and 700 College St., S:E.,
PADGINTON, George, (1919). Supt. of Htg. and
Plbg., Board of Education, 906 Genessee Bldg.,
and (for mail). 73 Huntington Ave., Buffalo,
N. Y.
'`
PAETZ, Herbert E.t (1922), Sales Engr., (for
mail), American Blower Co., 2539 Woodward
Ave., and 2506 Cadillac Ave., Detroit. Mich.
PAGE, Harry W., (1923). Vice-Pres. and Gen.
Mgr., - Bayley `Mfg. Co., 732 Greenbush ' St.,
Milwaukee, and 119 Warren Ave.. Wauwatosa,
Wis. PAGE, Sidney H.t (1923), Mech. and Elec.
Grand Rapids, Mich.
.
PEASE, Harrison H., (Associate 1922), Com
mercial Trust Bldg., and (for mail). 8409 Shawnee
St.. Chestnut Hill, Philadelphia, Pa.
PEASE, John G., (1917), Owner. John G. Pease
Co.. 310 Minor Bldg., and 1718 East 59th St.,
Kansas City, Mo.
PECKHAM, Randolph R., (1919). Supt., (for
mail). 650 W. Baltimore Ave., and 3018 Hograth
Ave., Detroit, Mich.
PEEBLES. John K., (Junior 1924; Associate
1925), Peebles & Ferguson, 733 Law Bldg.,
Engr.. Charles Foster. 612 Sellwood Bldg., and
Norfolk, Va.
-'
(for mail), 5407 London Rd., Duluth, Minn.
PENHALLEGON, R. L., (1925). Burnham Boiler
PAGET, B. K., (Junior 1924), L. J. Wing Mfg.
Corp. of Calif., 1385 Harrison St., San Francisco,
. Co.. 352 West 13th St., New York, N. Y., and
Calif.
(for mail), 20 E. Park St., Newark, N. J. PAINE, Kenneth A., (Junior 1925). Mgr., Paine
Heating Co.. 217 S. State St., and (for mail),
P. O. Box, 13, Jackson, Miss. PAINE, Leonard G., (1920). Philadelphia Mgr.,
(for mail), Dunham Vacuum Heating System, 112 South 16th St., and 5915 Carpenter St.,
Philadelphia, Pa. PAINTER, David H., (Associate 1924). Salesman.
Hoffman Specialty Co., and (for mail), 3124
Forest Ave., Sioux Apts., Kansas City, Mo. PALMER, Geo. J., (1923). (for mail). 14-16 W.
Market St., and 419 Walnut St., W. Chester, Pa. PARKER, Philip, (1915). Engrg. Dept., Braman
Dow & Co., 239 Causeway St.. Boston, and (for
PENNELL, S. Howard, (1925), Member of Firm, (for mail). William Macy Stanton. Archt., S.W. Cor. Broad and Chestnut.Sts., Philadelphia, Pa.
PENSINGER, Luther C., (Associate 1925), Partner, Burdick Pensinger Co.,. 3409 East 18th St., and 19 West 42nd St., Kansas City. Mo.
PERHAM, Stanley H., (1920). Associate Engr., ' (for mail). Charles R. Ammennan. Consulting
Engr., 925 Continental Bk. Bldg., and 4507 Carrollton Ave., Indianapolis, Ind.
PERKINS, Fred C., (Associate 1923). PerkinsLeNoir Co.. 1068 Drexel Bldg.. Philadelphia. Pa.
PETERKIN, Stuart MacC., (1922), Engr.. C. A. Dunham Co., 229 College St., and (for mail),
mail), 8 Middle St., Woburn, Mass.
71 Deloraine Ave., Toronto, Ont., Can.
31
Roll of Membership
PETERMAN, Robert M., (1917). Engr.. School
Dist.. of Philadelphia, 19th St., above Chestnut
St., Philadelphia, and (for mail). 205 Lauriston
St.. Wissahickon. Pa.
'
PETERS, Harry G., (Associate 1924), Prop., (for
mail}, Peters Htg. Co., P. O. Box 763. and 638
N. Congress St., Jackson, Miss.
,
PETERSEN, Gustave, (Associate 1916), Treas. and Gen. Mgr., (for mail). Htg. and Vtg. Maga
zine, 1123 Broadway, New York, N. Y., and 216 11th St., Hoboken, N. J.
PETERSON, Evan A., (1923), Sales Engr., Crane. Ltd., 386 Beaver Hall Sq., and 122 Kenaston
Rd., Town of Mt. Royal, Montreal, Que., Can. PETERSON, H. K,, (1920), Htg. Engr., Nelson
Co., 2604 Fourth Ave., and (for mail). 14572 Coyle Ave., Detroit, Mich.
PETHERICK, David H., (Associate 1916), Salesman, U. S. Radiator Corp., 517 Dime Bk. Bldg., Detroit, and (for mail), 9 Kenberton
. Drive, Pleasant Ridge, Mich. '
PFEIFFER, Benjamin J., (Junior 1925), Htg. Contractor, 435 West 41st St., and (for mail),
30 West 112th St., New York. N. Y. PFEIFFER, John Frederick, (Junior 1925).
' Mech, and Htg. Engr., (for mail), Standard Heater Co., and 346 Louisa St., Williamsport, Pa.
PFEIFFER, Jos. F., (1921), Owner, (for mail),
1140 California St., and 717 Vine St., Denver, Colo.
PFLUGRADT, Allen G,, (Junior 1926). Partner, (for mail). Pflugradt Heating Co., 979 Grant St,,
and 1588 Murray Ave., Milwaukee, Wis. PFUHLER, John L., (Junior 1923; Associate
1925), Plbg. and Htg., 600 Manor Rd., S.I., N. Y.
PHEGLEY, Frank G., (1913), (Council 1918
1919), Research Engr.. Hart-Crouse Co., 301
Turner St.. Utica, N. Y.
PHELPS, Glen H., (Associate 1925), 238 South 11th St., Lincoln, Nebr.
PHILLIPS, Frank T., (1919), Sales Engr., (for
mail), American Radiator Co., 25th and Reed
Sts.. Philadelphia. Pa., and 827 Belmont Ave.,
Collingswood, N. J.
PHILLIPS, Frederic W.. Jr., (1921), Engr.. (for
mail), E. W. Mandeville, Inc., 623 Parkside Ave., and 825 East 38th St.. Brooklyn, N. Y. PHILLIPS, Lee, (1920), Htg. Engr., 308 Ferguson
Bldg., 319 Third Ave., Pittsburgh, and Terrace Ave.. Carnegie. Pa.
PICKER, Frederick C., (Associate 1926). Pres., The Air Conditioning & Engrg. Co., 2914 S.
Jefferson Ave., and 4568 Tower Grove Place, St. Louis, Mo. ' PICKETT, Clinton A., (Associate 1923). Sales Repr., (for mail). Herman Nelson Corp., 510
Rialto Bldg., and 8003 Canton Ave.. Vivita Park. St. Louis. Mo.
PIERCE, Edward F., Jr., (Junior 1925), Sales Engr., Hoffman Specialty Co., 72 Lynn Fells Parkway, Melrosei Mass.
PIERON, Anton, (1921), Htg. and Vtg. Engr.,
Warren & Wetmore. 16 East 47th St., New York, and (for mail). Sterling Place, St. Albans, N. Y.
PINDER, Percy H., (1919). Merchant, (for mail),
Standard Steam Specialty Co., 366 Third Ave.,
New York, N. Y., and 12 Forest Rd., Ridgewood,
N. J.
.
PINES, Sidney, (1920), Asst. Mgr., (for mail),
Natkin Engineering Co., 208 Mutual Bldg., and 5012 Forest Ave., Kansas City, Mo.
PIPER, Albert, (1920). Plbg. and Htg. Contract
ing, (for mail). Piper Bros., 340-346 N. Broad St., Trenton, N. J.
PISEL, Joseph W., (Junior 1921; Associate 1926), Engr.. I. H. Francis. Consulting Engr., 1520
Locust St.. Philadelphia, and (for mail), 53
Brookline Blvd- Upper Darby P. O- Pa.
PITCHER, Lester J., (Junior 1924), Chief Draftsman. Illinois Engrg. Co.. 21st and Racine
Ave., and (for mail), 7214 E. End Ave., Chicago,
111.
PITTELKOW, Arthur G., (1907), Pres., Pit-
telkow Htg. & Engrg. Co., (for mail), 2340 W.
Lafayette Blvd., and 355 Chalmers Ave., Detroit,
Mich.
PIZIE, Stuart G., (Associate 1926), Partner,
B. J. Pizie & Son, Millbrook, N. Y.
PLACE, Clyde R., (1924), Consulting Engr., (for
mail). Grand Central Terminal, and 53 East
66th St., New York, N. Y.
PLACE, Herman.R., (1924), Vice-Pres., Sprague,
Bates, Place Co., 28 Union St., Boston, and (for
mail), 835 Watertown St., W. Newton, Mass.
PLAYFAIR, George A., (Associate 1924), Mgr.,
(for mail), Johnson Temperature Regulating Co..
147 Church St., and Stop 33, Kingston Rd.,
Toronto, Ont., Can.
PLEWES, Stanley E.. (1917). Philadelphia Mgr.,
(for mail). Johnson Service Co., 258 S. Van Pelt
St., Philadelphia, and Evergreen Rd., Jenkin-
town. Pa.
PLUNKETT, John H,, (1925), Chief of Inspec
tions. Dept, of Public Safety, Bldg, and Boiler
Inspection, Rm. 24, State House, Boston, and
(for mail), 81 Woodrow Ave., Dorchester, Mass.
POOL, Sterling H., (1913), Pres., (for mail).
Howard F. Pool Co.. 22 Market St.. Lynn, and
60 Pinckney St., Boston, Mass. .
. POOLE, Ernest F., (1921), Engr., (for mail),
F. P. Sheldon & Son, 1009 Hospital Trust Bldg.,
and 74 Farragut Ave., Providence. R. I.
POPE, S. Austin, (1917), Contracting Engr., (for
mail), 26 N. Jefferson St., Chicago, and 410
Ashland Ave., River Forest, 111.
POPE, William A,, (1906). Contracting Engr.,
26 N. Jefferson St., Chicago, and 293 Keystone
Ave., River Forest, 111.
*
PORTRUDE, William M,, (Junior 1926). Plbg.
and Htg. Salesman. Andersen. Meyer & Co., and
115 Pere Robert, Shanghai, China.
.
POSEY, James, (1919), Consulting Engr.. (for
mail), 1309 Lexington Bldg., and 4005 Liberty
Heights Ave., Baltimore, Md.
POTTINGER, C. T., (1917), Dist. Mgr.,American
Blower Co., 614-615 Bona Allen Bldg., Atlanta,
. Ga.
POWERS, Fred I., (1920), Salesman. P. O. Box
324, Bozeman, Mont..
'
POWERS, Fred W., (1911), (Council 1918-1919),
Treas. and Gen. Mgr., (for mail). The Powers
Regulator Co., 2720 Greenview Ave., and 900
Castlewood Terrace, Chicago, 111.
PRATT, Edwin D,, (1922). Asst, to Gen. Mgr.,
Childs Restaurants, 200 Fifth Ave., New York,
and (for mail), 283 Glen Ave., Port Chester,
N. Y.
PREBLE, J. Jarvis, (1919), Vice-Pres., (for mail).
Spray Engrg. Co., 60 High St.. Boston, and
38 Bowdoin St., Newton Highlands. Mass.
PRESDEE, Cliff W., (Associate 1926). Western
Mgr., (for mail), Htg. & Vtg. Magazine.105 S.
Dearborn St., and 7909 Eberhard Ave., Chicago.
PRICfe-, Frank E., (Associate 1922), Mgr. Htg.
Dept., Standard Sanitary Mfg. Co.. 1720 Blake St., and (for mail), 1544 Jasmine St., Denver, Coio. PROBST, Alfred H., (1919), Sales Engr.. (for
mail), Morgan-Gerrish Co., 808 LaSalle Ave., and 2902 James Ave., S., Minneapolis, Minn. PROX, Robert F., (Junior 1922; 1923), Vice-Pres..
(for mail). Frank Prox Co., P. O. Box 61, and 1608 S. Fourth. St., Terre Haute, Ind. PRYOR, Frederick L., (1913), Advisory, (for
mail). National Silk Dyeing Co., 5 Colt St., Paterson, and Towaco, Morns Co., N. J.
PRYOR, Robert W., Jr.* (1913), (Council 1919-1920), Mech. Engr., (for mail). Koithan & Pryor, 39 Cortlandt St., New York, N. Y., and 199 Roseville Ave., Newark, N. J.
PURCELL, Arthur J., (1914). Htg.. Plbg. and
Steam Specialty Engr., 631 New Britain Ave., Hartford, Conn. PURCELL, Frederick C., (1926), Sales Engr..
(for mail), F. C. Purcell & Co., 2847 Grand River Ave., and 1501 Virginia Park, Detroit,
Mich.
32
American Society of Heating and Ventilating Engineers Guide, 1926-27
PURCELL, Robert E., (1918). Htg.. Vtg. and
Plbg. Contractor, 1735 Willis Ave., W., and (for
mail), 128 Avery Ave., Detroit, Mich.
PURDY, Alexander K., (1922), Pre9., (for mail).
Purdy. Mansell, Ltd., 63 Albert St., and 30
Glenrose Ave., Toronto, Ont., Can.
PURINTON, Dexter J., (Associate 1923), Head
of Mech, Dept., (for mail), McKenzie, Voorhees
& Gauline, 342 Madison Ave., New York, N. Y.,
and 23 Sachem Rd., Greenwich, Conn.
PURSELL, H. E,, (1919), Br. Mgr., Kewanee
Boiler Co., 1226-28 California St.. Denver; and
(for mail), 212 S. Tremont St., Kewanee, 111.
PYLE, John W., (1919), Supt., (for mail). Peru
Htg. Co.. 30 W. Canal St., and 371 W. Third
St., Peru, Ind.
O
QUALTROUGH, Ben F., (Associate 1926). 928
Wyandotte St., Kansas City, Mo. QUAY, D. M.,* (Charter Member), (Pres. 1909;
2nd Vice-Pres. 1895; 1st Vice-Pres. 1896. 1899).
D. M. Quay Co., Builders Exch., and 1352 East
84th St., Cleveland, O. QUENTIN. Edward H.. (Associate 1919), Mgr.,
(for mail), Johnson Heat Regulating Co., 14
North 12th St., and 3259 Geyer Ave., St. Louis,
Mo.
-
QUESNEL. N. W., (1925), C. A. Dunham Co.,
Ltd., 14 Struchen Ave., and (for mail), 23 Carey
Rd., Toronto. Can. QUIGLEY, WllUam J., (1920). Salesman, (for
mail). Gurney Heater Mfg. Co., P. O. Box 184,
Buffalo, and 27 Knowlton Ave.. Kenmore, N. Y.
QUIRK, Clinton H., (Junior 1915; 1916), Sales
Engr., Vtg. Div., (for mail), American Radiator
Co.. 40 West 40th St., New York, and 36 Kilburn
Rd., Garden City, N. Y.
R
RAE, Thos. W., (1924), Salesman, (for mail).
American Radiator Co., P. O. Box 882, and
. James Hotel , Oklahoma City, Okla.
RAINE, John J., (1912). G. S. Blodgett Co-
Burlington, Vt. RAINGER, Wallace F- (Junior 1924). Chief
, Draftsman, Jaros & Baum, Consulting Engrs-
J 116 West 39th St- New York, and (for mail). 68
Livingston Ave., Yonkers, N. Y. '
RAISLER, Louis, (1925). Raisler Htg. Co- 129
Amsterdam Ave., New York, N. Y.
RAISLER. Samuel. (1921). Pres., Raisler Htg.
- & Sprinkler Co- 129 Amsterdam Ave- and (for
mail), 202 Riverside Drive, New York. N. Y.
RALSTON, Louis T.-M., (1926), Consulting Engr- (for mail), Ralston & Hattenhof, Inc- 52
Vanderbilt Ave- and 875 W. End Ave- New
York. N. Y.
RANDOLPH, Charles H., (Junior 1926); Sales
Engr., American Foundry & Furnace Co- 805
36th St- and 705 Bartlett Ave- Milwaukee.
Wis. RASMUSSEN, Elnar, (Junior 1925; Associate
1926), Westinghouse Elec. & Mfg.Co- E. Pitts burgh, and (for mail), 414 Whitney Ave-
Wilkinsburg, Pa.
RATHER, Max F., (1919). Cleveland Mgr-
Johnson Service Co- 2028 East 22nd St.. Cleve
land, and 3098 Huntington Rd- Shaker Heights,
O. .
REARDON, J. Albert, (1921), Pres- (for mail).
Reardon Bros. Co- 341 Union St- Lynn, and 18
Marion Rd- Clifton, Mass.
RECK, Anders B.,* (1899), Pres., (for mail).
Reck Htg. Co- Ltd- 15, Esromgade, Cope-
hagen, and 16, Christiansvej, Hellerup, Denmark.
REDERER, Benedicts., (1922), Mgr., (for mail),
B. S. Rederer & Co- 513 Arrott Bldg- and 1515
Rockland Ave., Pittsburgh, Pa.
.
REED, John F., (Associate 1923). Vice-Pres.. (for
mail), Reed Air Filter Go- 50 Church St- New
York. N. Y.. and 63 Watchung Ave- Montclair.
N. J.
REEDER, Charles L., (1911). Consulting Engr-
(for mail). 916 N. Charles St- Baltimore, and 222 Longwood Rd- Roland Park. Md. * REEDER, Frank C., (Associate 1919). Factory
Repr- The Fulton Co- and (for mail). 204 E.
Oklahoma Ave- Knoxville. Tenn. REESE, Henry L.. (1923). Pres, and Gen. Mgr-
(for mail). Keystone Plumbing & Htg. Co- 229
N. Sixth St- and 835 Pear St.. Reading, Pa.
REEVES, Charles G., (1916), 257 W. Clapier St-
Germantown, Philadelphia, Pa.
REICHWALD, Charles W- (1923). Htg. Engr.,
(for mail), C. W. Reichwald, Inc- 763 Paterson
Ave., Jersey City, and 22 Adelina Place, North
Bergen. N. J.
`
,,. _
REINHARD, Edward L., (1919), Buffalo Br.
Mgr- (for mail), American Radiator Co- 1807
Elmwood Ave., and 99 N. Lincoln Blvd- Buffalo,
N. Y. REPP, Harry L., (1922), Br. Mgr., U. S. Radiator
Corp- 908 N. Senate Ave- and 525 S. Central
Circuit, Indianapolis, Ind. REUSS, Edward H., Jr., (Associate 1919; 1921),
Htg. Contractor, (for mail), Edward H. Reuss,
Jr.. 30th and Race Sts- and Bryn Mawr and
Woodbine Ave- Philadelphia, Pa. REUTER, Albert G- (1922). Sales Engr.. The
Daly Co- 1425 16th St- and (for mail), 702 S.
Corona St- Denver, Colo. REYNOLDS, Harry A., (1925), Engr- S. J.
Reynolds Co- Inc- 2223 Ogden Ave., and 721
N. Lotus Ave- Chicago, III. REYNOLDS, Henry M., (1915). Vice-Pres.,'
General Boilers Co- Waukegan, 111. REYNOLDS, Thurlow W- (1922), Engr- Clyde
R. Place, Consulting Engr., Grand Central
Terminal. New York, N. Y- and Portland Rd-
Htghlands. N. J.
RHODES. Solomon V., (1921). Supt. of Htg- (for
mail), Farrell Htg. & Plumbing Co- 25 Houston
St., and 45 E. Cain St- Atlanta. Ga. RIBLET, William H- (Associate 1921). Eastern
Div. Mgr., (for mail). C. A. Dunham Co- 101
Park. Ave- and 32 West 40th St- New York,
N. Y.
,,
RICE, Clarence J- (Associate 1923). Pres- for
mail). Sterling Engrg. Co- 1640 Holton St-
Milwaukee. and 2425 Thompson Ave- Whitefish
Bay. Wis. RICE. William W., (1915), Contracting Engr.,
Melton Co- 4417-19 Ludlow St- Philadelphia,
and (for mail), 830 Morgan Ave- Upper Darby,
Del. Co- Pa.
_
RICHARDS, Frank A- (1920), Sales Engr-
Richard & Wolfe, Sales Reprs- The Herman
Nelson Corp- and (for mail), 832 Atlas Bldg-
Columbus. O. RICHARDS, Samuel F- (1915). Eastern Sales
Repr.. H. A. Thrush & Co- Peru, Ind- and (for
mait). 335 W. Riverview Ave- Bellevue Br.,
Pittsburgh. Pa.
. __
RICHARDSON, A. Howard, (Associate 1922),
2nd Vice-Pres- (for mail); Richardson & Boynton
Co- 3639 S. Ashland Ave- and 1302 Ritchie
Court, Chicago, 111. RICHARDSON, D. Ralt,* (1915). Pres- (for
mail). Richardson & Boynton Co- 260 Fifth
Ave- and 299 Park Ave- New York, N. Y.
RICKER, John J- (1925). Pres- (for mail).
Ricker & Kneblin, Inc- 528-530 Jefferson St-
40 18th St- W. New York, N. J. R1DLER, Harry C- (1919), Plbg- Htg. and Vtg.
Engr. and Mgr- (for mail), 310 West 33rd St and 3248 Pleasant Ave., Minneapolis, Minn. RIETZ, Elmer W- (1923), Asst. Sales Mgr., (for
mail). Powers Regulator Co., 2720 Greenview
Ave- and 5246 Glenwood Ave- Chicago, 111. RILEY, Champlain L-* (1906). (Presidential
Member). (Pres. 1921; Council 1918-1922; 1st
Vice-Pres. 1920). (for mail), Clark MacMuJlen
& Riley. 101 Park Ave- New York, N. Y- and
Plainfield. N. J.
,
RILEY, DeWitt H., (1921). Engr., Research
Dept- American Radiator Co., 1807 Elmwood
Ave-and (for mail), 815 Tonawanda St.. Buffalo,
N. Y.
33
Roll of .Membership
RINKENBERGER, George, (1924). Sales and
Htg. Engr., (for mail), Paul Plumbing & Htg.
Co., 811 Railroad St., and 831 Franklin St., Johnstown, Pa.
RITCHIE, Edmund J., (1923), Gen. Sales Mgr.,
(for mail), 183 Madison Ave., New York, and 19
Grace St., Brooklyn, N. Y.
,
RITCHIE, William, (1909), 17 Van Reipen Ave.. Jersey City. N. J.
RITTER, Arthur, (1911), N. Y. Mgr., (for mail), American Blower Co., 50 Church St., New York,
and 589 Fourth St.. Brooklyn, N. Y. RIVARD, Melvin M., (Junior 1926), Sales Engr.,
American Radiator Co., and (for mail), 5829
Woodland Ave., Kansas City, Mo. ROBB, John M.,* (1913), Htg. Engr., 1513
Columbia Terrace, Peoria, 111.
ROBBINS, Loring G., (1907), Robbins, Gamwell
& Co., 68 West St.. Pittsfield, Mass.
ROBERTS, Henry L., (1916), Engr. and Con
tractor, 228 North 16th St., Philadelphia, Pa.
ROBERTS, J. H., (1926), c/o Mrs. E. C. Fell,
Upper Lake St.. (Carrier No. 19), Elmira, N. Y.
ROBERTS, Wm. L., (1923), 183 Harrison Ave.,
Boston, and (for mail), 85 Baker St., W. Roxbury. Mass.
ROBERTSON, George A., (1902), Supervising
Inspector Htg. and vtg.. Div., (for mail), Board of Education. Bureau of Plant Operation, 131
Livingston St., and 1081 East 39th St., Brooklyn,
N. Y.
ROBERTSON, John M., (Junior. 1926), Sales
Engr., E. K. Campbell Htg. Co.. 2445 Charlotte
St., Kansas City, and (for mail), 7123 Clayton Rd., St. Louis. Mo.
ROBINSON, Albert G., (1924), (for mail). 4
Thomson Block, and 18 Harrison Ave., Glen Falls, N. Y.
ROBINSON, S. Whitmore, (Associate 1902; 1910), Consulting Engr., 10 Kilburn Priory,
London, N.W., Eng.
ROCKART, Edward R., (1921). Mech. Engr.,
Minneapolis Board of Education,- 245 Ninth
Ave.. N., Minneapolis, and (for mail), 1173
Arkright St., St. Paul, Minn.
RODMAN, Robert W.; (1922), Supt. of Plant.
Operation, (for mail). Dept, of Education, 500
Park Ave., and 2102 Broadway, New York,
N. Y.
ROEBUCK, WUllam, Jr., (1917), Sales Engr.,
(formail). The R. T. Coe Cos.. 522 Cutler Bldg., and 1625 East Ave., Rochester, N.'Y. ROGERS, A. Carle, (1921), Consulting Engr.,
752 Euclid Ave., Toledo, O. ROGERS, C. W., (1921), Chief Engr.. (for mail).
The New York Blower Co.. 2246 S. Hafsted St.,
and 3156 Cambridge St., Chicago, 111.
ROGERS, George Howell, (1920). Salesman and
Htg. Engr., International Heater Co., Linthicum
. Heights. Md.
ROLLINS, Fred D., (1919), 4107 Washington
Blvd.. Chicago, 111.
.
ROLLINS, Lewis M., (1916), Morris & Co.,
Union Stock Yards, and (for mail), 218 N.
Milton St., St. Paul, Minn.
RONEY, Thomas G., (1916), (for mail). T. G.
Roney Htg. Co.. 3461 Fort St.. W., and 748 25th St., Detroit, Mich.
ROONEY, Martin A. * (Associate 1917; 1918), . Sales Engr., (for .mail), American Radiator Co.,
1807 Elmwood Ave., Buffalo, and Eggertsville, N. Y.
ROSEBROUGH, Robert M,, (1920), Br. Mgr.,
(for mail), L. J. Mueller Furnace Co., 1409 Olive St., and 5502 Maple Ave., St. Louis. Mo.
ROSENBACH. Rudolph G,, (1920), Sales Engr.,
(for mail), Warren Webster & Co., 549 W.
Washington St., Chicago, and 343 N. York St., Elmhurst, 111.
ROSS, John O., (1920). Pres., (for mail), J. O. Ross Engrg. Corp., 30 East 42nd St., and 875
W. End Ave., New York, N. Y.
ROSSMAN, Vincent D., (1919), Secy., (for mail).
Modern Htg. Co., 3935 Olive St., and 2365 Klemm St., St. Louis, Mo.
ROTHROCK, John T., (1920). Supt. Mech.
Engr., Thompson-Starrett Co., Packard Bldg.,
' Philadelphia. Pa.
-
ROTZ, John M., (1918), Member gf firm, (for
mail), Snider & Rotz, Consulting Engrs., 703
Merchants Bk. Bldg., and 3930 Broadway,
Indianapolis, Ind.
ROW, Oliver M., (1912), Director. Royles. Ltd.,
Irlam, near Manchester, Eng.
ROWE, WUllam A., (1921), Chief Engr., Ameri
can Blower Co., 6004 Russell St., and 7477
Churchill Ave., Detroit. Mich.
ROWLEY, Frank Benj.,* (1918). Prof, of Mech.
Engrg. and Dir. of Experimental Engrg. Labora
tories, University of Minnesota, and (for mail),
63 Barton Ave., S.E., Minneapolis, Minn. '
RUCKEL, John B., (Associate 1919), Pres., (for
mail), J. H. Ruckel & Son, 81-83 Main St., and
183 Cleveland Ave., Buffalo, N. Y.
RUDDELL, Wm. H., (1921), Mgr., (for mail)'.
West Coast Htg. Co.. Inc., 1627 Fourth Ave.,
and 319 Garfield St., Seattle, Wash.
RUDIO, H. M., (1921), Carrier Engrg. Corp., 923
' Union Trust Bldg., Cleveland, O., and 142
Winspear Ave., Buffalo, N. Y.
RUFF, DeWitt C., (1922). Co-Partner, (for mail),
Healy-Ruff Co., 765 Hampden Ave., and 2211
St. Clair St., St. Paul, Minn.
RUGART, Karl F. K., (Associate 1924). Sales
Engr., (for mail), Warren Webster & Co.,
. Camden, N. J., and 5830 Willows Ave., W.
Philadelphia, Pa.
.
.
RUPPERT, E. H., (Associate 1923), (for mail),
Excelso Specialty Works, 85 Eastern Parkway.
Brooklyn, and 210 East 45th St., New York,
N. Y.
RUSSEL, Donald Peters, (1925), Htg. and Vtg.
Engr., Thomas Haverty Co-, 316 E. Eighth St.,
Los Angeles, and 451 Edwards Ave., Wilmar,
Calif.
RUSSELL, Hugh C., (1911), Inspector. Mech. and Elec. Engr., Supervising Arch. Office, (for mail), U. S. Treasury Dept., Post Office Bldg.,
and 909 E. Tenth St., Chattanooga, Terin.
RUSSELL, Joseph N,, (1899). Mgr.. Rosser & Russell. Ltd., 37 Duke St.. Oxford St.. London, W. 1.. Eng.
RUSSELL, W. A., (1921), Asst. Gen. Sales Mgr.,
(for mail), U. S. Radiator Corp., 500 N. Dearborn
St., Chicago, 111., and 2484 Pingree, Detroit,
Mich.
'
RUSSELL, Willard E., (1921), Mgr., C. A. Dun ham Co., 219 E. Hanover St., Trenton, N. J.
RUSSELL, William Arthur, (Charter Member).
Pres., W. A. Russell & Co., Grand Central
Terminal Bldg., 70 East 45th St.. New York, and
563 Palisade Ave., Yonkers, N. Y.
.
RUSSELL, William L. A., (Associate 1925), St.
Louis Sales Mgr., (for mail). Skinner Bros. Mfg.' Co., 1474 S. Vandeventer St., and 5605 Etzel Ave., St. Louis, Mo.
RYAN, Harry J., (1922), Consulting Engr., 91 Elm St.. Albany, N. Y.
RYAN, Henry B., (1920), Vice-Pres., (for mail). Barry, Byrne & Ryan Co., 104 S. Michigan Ave.,
Chicago, and 170 Fuller Lane, Winnetka, 111.
S
SABIN, Edward R., (1919). Pres., (for mail), Edward R. Sabin Co.. Htg. Contractors.. 4710-12 Market St., Philadelphia, and Lansdowne. Pa.
SACHLEBEN, Edward H., (Associate 1921), (for mail), E. H. Sachleben & Co.. 2829 Locust St., and 5814 Maple Ave., St. Louis, Mo.
SAKOUTA, Mathieu L., (1924), Consulting Engr. Expert, Gavan, Simanskaia 4, Leningrad, Russia.
SAMUELS, Sidney, (Junior 1925), Secy., (for mail). Wholesale Htg. Supplies, 262 West 145th St., and 1673 University Ave., New York, N. Y.
SANBERN, E. Nute, (1923), Engr., (for mail). Mensing & Co., 928 Presser Bldg., Philadelphia, Pa., and 119 Haviland Ave., Audubon, N. J.
34
American Society of Heating and Ventilating Engineers Guide, 1926-27
SANBORN, Stephen H., (Associate 1924), S. H.
Sanborn Engrg. Co., 123 E. Main St., P. O. Box
289, Middletown, N. Y.
SANFORD, Arthur L., (1915), Mech. Engr., (for
mail). Board of Education. 245 Ninth Ave., N.,
and 301 East 48th St.. Minneapolis, Minn.
SANVILLE, Charles P., (1922). Sales Engr.,
Schade Valve Mfg. Co.. 2527 N. Bodine St., and
1456 Sparks St., Philadelphia, Pa. -
SARGENT, Leonard F., (1919). Mgr., National
Htg. & Vtg. Co.. P. O. Box 103, Wausau. Wis.
SAULSON, Saul, (1916), Mech. Engr., Albert
Kahn, Inc., 1000 Marquette Bldg., and 2491 W.
Euclid. Detroit, Mich.
SAVILLE, Thos. H., (1924), (for mail), Interna
tional Correspondence Vtg. Schools, and 1121
Lafayette St.. Scranton, Pa.
'
SAWADE, Carl A., (Associate 1920). Mgr. Boiler
Sales, (for mail), Continental Heater Corp.,
Dunkirk, and 35 Curtis Place. Fredonia, N. Y.
SAWDON, Will M., (1920), Prof. Exper. Engrg.,
(for mail). Cornell Univ., and 1018 E. State St.,
Ithaca, N. Y.
.
SCANLON, John J., (Associate 1924), Ames Iron
Works, 1035 Commercial Trust Bldg., and 30
South 54th St., Philadelphia, Pa.
SCHANK, George B.t (Associate 1926), 155 16th
St., Buffalo. N. Y,
SCHANZE, A. G., (Associate 1925). Service-and
Sales Engr.. (for mail), Hanson V. Parker, 50
Congress St., Boston, and 232 Warren St.,
Allston, Mass.
SCHEER, Frederick W., (1922), Htg. Con
tractor. (for mail), 131 Hartwell Rd., and 221
Commonwealth Ave., Buffalo, N. Y.
'
SCHEIBEL, Albert H., (1919), Asst. Engr.,
Stone & Webster, 147 Milk St., Boston, and (for
mail). 92 Milton Ave., Hyde Park, Mass.
SCHEIDECKER, Daniel B., (Associate 1919),
Salesman, (for mail). Bayley Mfg. Co., Rm.
1156, 38 S. Dearborn St., and 4626 N. Kilbourn
Ave., Chicago. 111.
SCHELLHAMMER, Alfred L., (1919), Scheli-
hammer & Co., Warren, 111.
SCHILDMILLER, George H., (1922), Asst.
Mgr., (for mail), American Radiator Co., 400
Barium Bldg., Detroit, and 908 Yorkshire Rd.,
Birmingham, Mich.
SCHLEY, Arthur A., (1920), Mgr.. Htg. Dept.,
Schley & Nash Co., 709 Columbia Bk. Bldg.,
Pittsburgh, Pa.
SCHLOSS, Newton L., (1913), Imperial Brass
Mfg. Co., 51 East 42nd St., New York, N. Y.
SCHMIDT, George G., (Junior 1912; 1914), Gen.
Eastern Repr., McCann-Harrison Corp., 39
Cortlandt St., New York, and 67 Burns St.,
Forest Hills, L. I., N. Y.
.
SCHNEIDER, Charles, (1923), C. Schneider Co.,
492 East 163rd St., New York, N. Y.
SCHNEIDER, Paul W., (1919), Pres., P. W.
Schneider, Inc., 307 Lafayette St., and 2039
Genesee St... Utica, N. Y.
SCHOENIJAHN, Robert P., (1919), Consulting
Engr., (for mail). Industrial Trust Bldg., Tenth
and Shipley Sts., and 7 Crawford Circle, Wil
mington, Del.
.
SCHOEPFLIN, Paul H., (1920). Pres., (for mail),
Niagara Blower Co., 673 Ontario (Ontario at
N. Y. C. Tracks), and 155 Fordham Drive,
Buffalo, N. Y. SCHOPP, Walter J., (1922), Partner, (for mail).
General Engrg. & Construction Co., 419 Perry
Bldg., and 1704 Ludlow St., Philadelphia, Pa.
SCHRADER, C. C.,* (Junior 1923; Associate
1925), Research Engr., (for mail), Armstrong
Cork Co., Argo Laboratory, Gloucester, N..J.,
and 4842 N. Fifth St., Philadelphia, Pa.
SCHROTH, August H., (1911), Gen. Sales Mgr.,
Richmond Radiator Co.. 1480 Broadway, New
York, N. Y., and (for mail), 90 Oraton Parkway,
E. Orange. N. J.
SCHULZ, Howard I., (Associate 1915), Local Mgr.,
Crane Co., 1217 W. Broad St.. Richmond, Va.
SCHULZE,. Ben. H., (1921), Sales Engr;. (for
mail). Hester-Bradley Co., 4200 Forest Park
Blvd., and 1914 Forest Ave., St. Louis, Mo.
SCHWAB, Henry E., (1923), Vice-Pres.. (for
mail). R. J. Schwab & Sons Co., 283 Clinton St.,
and 266 Juneau Ave., Apt. 210, Milwaukee, Wis.
SCIPIO, Lynn A.* (1921), Dean School of
Engrg., Robert College, Constantinople, Turkey.
SCOLLAY, Ulysses G., (Charter Member),
(Council 1894; Board of Managers 1895; Treas.
1904; 1911), Pres.. J. A. Scollay, Inc., 76 Myrtle
Ave., Brooklyn, N. Y.
SCOTT, A. P., (1924), Dennison Mfg. Co.. 300
Howard St., Framingham, Mass.
SCOTT, Charles E., (1907), Pres, and Treas., (for
mail). Vapor Engineering Co., 489 Fifth Ave.,
New York, N. Y., and West Ave., Darien, Conn.
SCOTT, Edwin A., (1912). Pres, and Treas., (for
mail), Edwin A. Scott Publishing Co., 45 West
45th St., and 3224 Grand Concourse, New York,
N. Y.
SCOTT, George M., (1915), Child & Scott Co.,
108 Wooster St., New York, N. Y.
SEELIG, Alfred E., (1926), Pres, and Gen. Mgr.,
L. J. Wing Mfg. Co., 352 West 13th St., and (for
mail), 310 Convent Ave,, New York. N. Y;
SEELIG, Lester, (1925), MechJ Engr., Drying
Systems, Inc., 1800 Foster Ave., and (for mail),
2630 N.-Spaulding Ave., Chicago, 111.
SEIDERS, John T., (1926), Mfgr's. Repr. and
Engr., 5 W. State St., Columbus, O.
SEKIDO, Kunlsuke, (1903), Nakano, Tokio
Suburb. Japan. -
SELIG, Ernest T.', (1926), Member of Firm, (for
mall), SeJig & Wilson 707 Telegraph Bldg., and
920 North 16th St.. Harrisburg, Pa.
.
SELLARS, Fred J., (1917), Pres., (for mail), Sell-
Orr Heating Co., 311 N. Penn Ave., and 619 N.
Ninth St., Independence, Kans.
SELLMAN, Niles T., (1922), Engr. of Utilization,
(for mail). Consolidated Gas Co., 130 East 15th
St., and 135 West 183rd St., New York. N. Y.
SELTZER, A. P.v (1921), Show Rm. Mgr., (for
mail), American Radiator Co., 820 S. Michigan
Ave., Chicago,and Evanshire Hotel, Evanston, 111.
SENIOR, Richard L., (1925), Engr. and Supt.,
J. Gescheidt & Co., Inc., 142 East 43rd St., New
York, and (for mail), 73 Coligni Ave., New
Rochelle, N. Y.
SETZER, Walter C., (Junior 1922; Associate
1926). H. B. Smith Co.. 17th and Arch Sts.,
Philadelphia, and (for mail), N.W. Cor. Gillham
St. and Hasbrook Ave., Lawndale, Philadelphia,
Pa.
SEWARD, Perclval :H.,* (Charter Member),
Vice-Pres., Richmond Radiator Co., 1480 Broad-
way. New'York, and (for mail), 369 Washington
Ave., Brooklyn, N. Y. .
SEWELL, John M., (1919), Consulting <Engr.,
(for mail), 1822 Ludlow St., Philadelphia; and
Warren Ave., Berwyn, Pa. .
. . .
SHANKLIN, John R., (1899), Pres, and Gem
Mgr., (for mail). West Virginia Htg. & Plumbing
Co., 233 Hale St., and 1507 Quarrier St., Charles
ton. W. Va. SHAW, Clinton E., (1921), Instr.. (for mail).
Northeast High School, Eighth and Lehigh Ave.,
and 6412 North 11th St., Philadelphia. Pa. .
SHAW, Edgar, (1923), Pres., Lynch & Woodward,
Inc., 202 Harrison Ave., Boston, and 51 Royal
St.. Wollaston. Mass.
;
SHAW, N. J. H., (Junior 1925), Sales' Engr.,
Barnes & Jones, 5 Melrose St., Boston, and (for
mail), 99 Melrose St., Arlington, Mass. ,
SHAW, Raymond E., (1921), Sales Mgr., (for
' mail), B. F. Sturtevant Co., Hyde Park, and
Boston Athletic Assn., Boston, Mass.
SHAY, Russell A., (1924), Htg. Engr., 108
Linwood St., Brooklyn, N. Y.
SHEA, John R., (1925), Asst. Supt. of Develop
ment, (for mail). Western Elec. Co.. Inc., Haw
- thome Sta., Chicago, and 319 N. Forest Ave.,
River Forest, 111. SHEA, M. B., (1921). Mgr., (for mail). American
Radiator Co., 417 S. Tenth St., and 3616 Lincoln
Blvd., Omaha. Nebr.
SHEARS, Matthew W., (1922), Htg. Engr.. C. A.
Dunham Co., Ltd., 1523 Davenport Rd.. and
(for mail), 53 Sylvan Ave., Toronto, Ont,,. Can.
' 35
Roll of Membership
SHEFFIELD, Edward B.t (1921). Sales Engr.,
(for mail), Armstrong Cork Co.. 11 Brant St.,
Toronto, and Lambton Mills, Ontario, Can.
SHEFFLER, Morris, (1821),-Member of -Firm,
(for mail). Sheffler-Gross Co.. 205-211 Drexel
Bldg., and 5451 Lebanon Ave., Philadelphia, Pa.
SHEPPARD, Frank A., (1918), Kansas City Mgr.*
(for mail). Johnson Service Co.. 411 E. Tenth
St., and 4550 Mill Creek Blvd., Kansas City, Mo.
SHEPPARD, William G., (1922), Partner, (for
mail). Sheppard Sc Abbott, 119 Harbord St., and
479 Dovercourt Rd., Toronto, Ont.,
SHERET, Andrew, (Associate 1925), Pres., (for
mail). Andrew Sheret, Ltd., 1114 Blanchard St.,
and 1030 St. Charles St., Victoria, B. C.
SHERIFFS, Walter A., (1918). Mehring 8c
Hanson Co., 162 N. Clinton St.. Chicago. III.
SHINOHARA, Shlro, (1924), Takata & Co..
Marunouchi, and (for mail), 51 Iga Machi,
Yotsuyaku, Tokio, Japan.
SHIPP, C. C., (1923). Owner, (for mail), C. C.
Shipp & Co.. 230 E. Ohio St., and 3405 Guilford
Ave.. Indianapolis, Ind.
SHODRON, John G., (1921), Research Engr.,
James Mfg. Co., 411 E. Milwaukee Ave., Ft.
Atkinson. Wis.
SHORE, WUI A., (1909), Treas.. Field & Shorb
Co.. 133 W. William St., and (for mail), 3 Lincoln
Place. Decatur, 111.
SHOZO, Salto, (1923), Htg. and Vtg. Engr. and
Contractor, (for mail]). Marunouchi Bldg., and
171 Kitakamata, Tokio, Japan.
SHREINER, Dewey C., (Junior 1923; Associate
1926), Partner, Harry E. Shriner 8c Son, 116 W.
High St., and 1240 Southern Blvd., Elkhart,
Ind.
SHROCK, John H., (1924). Vice-Pres.. (for mail).
New York Blower Co., and Bellevue Apts.,
LaPorte, Ind.
SHUELL, Frank W., (Associate 1921), Pres, and
Gen. Mgr., (for mail), Ever Hot Heater Co.,
5241 Wesson Ave., and 360 E. Boston Blvd.,
Detroit, Mich.
SHULTZ, Earie, (Associate 1919). Vice-Pres., (for
mail), Illinois Maintenance Co.. Rm. 1136,
Edison Bldg., and 1310 Birchwood Ave., Chicago,
IU.
SIEGEL, John F., (Associate 1915), Mgr., (for
mail). Fuel Oil Burner Engrg. Co., 101 Park
Ave., New York, and 220 Sheridan Ave., Mt.
Vernon, N. Y.
SIEGEL, Leo, (Junior 1924; Associate 1925),.
Mech. Engr.. Board of Education, Htg. and Vtg.
Division, Flatbush and Concord Sts., and (for
mail). 1507 Avenue U, Brooklyn, N. Y.
SIMONSEN, Lawrence A., (1920), Estimator
and Engr., E. J. Claffey Co., 10 W. Illinois St.,
and (for mail). 6419 Vernon Ave., Chicago. 111.
SIMPSON, William A., (1925), Mech. Engr.,
Johnson 8c Morris. 538 West 23rd St., and (for
mail). 600 West 169th St.. New York, N. Y.
SIMPSON, William K., (1919), Secy., (for mail).
Hoffman Specialty Co., 193 Grand St., and 61
Fiske St.. Waterbury, Conn.
SKAGERBERG, R., (Junior 1921; 1924). Dept.
Mgr., Drying Systems, Inc., 1800 Foster Ave.,
Chicago, III.
SKELLY, John F.. (1921), Htg. Contractor, J.
F. Skelly, 303 Catherine St., Ogdensburg, N. Y.
SKINNER, Henry W., (1920). Mech. Engr., (for
mail). W. C. Hedrick, Archt., 1005 First Natl.
Bk. Bldg., Ft. Worth, Tex.
SLADE, Arthur J., (Associate 1925), Director of
Sales, (for mail). American District Steajn Co.,
and Louise St., N. Tonawanda, N. Y. "
SLIGHT, Irvin, (Junior 1925; Associate 1926),
Slight Bros., Willow Grove, Pa.
SMALL, John D., (1910), Consulting Engr., (for
mail). 127 N. Dearborn St., Chicago, and 411
Maple Ave.. Wilmette. 111.
SMALLMAN, Edwin W., (1920). Htg. and Vtg.
Engr., Monks 8c Johnson, 99 Chauncy St., and
(for mail), 87 Essex St., Melrose, Mass.
SMALLMAN, William T., (1911), Treas.. (for
mail). Isaac Coffin Co., 52 Sudbury St.. Boston,
and 127 Rockland Ave., Malden, Mass.
SMITH, Leslie L., (1919), Mech. Engr., (for
mail). Smith, Hinchman 8c Gryils, 800 Mar
quette Bldg., and 1931 Delaware Ave.. Detroit,
Mich.
'
SMITH, Milton S., (1919). Production Mgr., Carrier Engrg. Corp.. 750 Frelinghuysen Ave.,
Newark, and (for mail), 13 North Terrace. Maplewood, N. J.
SMITH, Patrick J., (1923), W. J. McGuire. Ltd.,
91 Jarvis St., and (for mail), 98 Woodfrey St., Toronto. Ont., Can.
SMITH, Sidney S., (1926), Vice-Pres., (for mail),
Andes Range 8c Furnace Corp., and 517 Castle St., Geneva, N. Y.
SMITH, Virgil A., (Junior 1923), Sales Engr., (for
mail), C. A. Dunham Co., 1434 Franklin Ave.,
Tampa. Fla.
SMITH, Woodworth M., (Associate 1924), Pres., The Koppen-Smith Co., 2629 Olive St., St. Louis, Mo.
SNELL, Ernest, (1920), Htg. and Vtg. Engr., 3914 LeMay Ave., Detroit, Mich.
SNYDER, Jay W., (1917), Member of Firm, ((or
mail). McColl. Snyder 8c McLean, 2348 Penob scot Bldg., and 8987 Martindale Ave., Detroit, Mich.
SNYDER, Joseph S., (Associate 1925), Sales Engr., (for mail), American Radiator Co., 1807
Elmwood Ave., and 39 Granger Place, Buffalo.
N. Y.
SODEMANN, Paul W., (Junior 1920; Associate
1925; 1926), Sales Engr., Fischer Htg. Co.,
367-369 Adams St., and (for mail), 1307 Worths ington Place, Memphis. Tenn. SODEMANN, William C,, (1919), Vice-Pres.. Sodemann Htg. 8c Power Co., 2300 Morgan St., and 3510 University St., St. Louis. Mo.
SODERBERG, Charles H., (1919). Consulting Engr.. (for mail), 608 Donovan Bldg., Detroit, and 220 Puritan Rd., Birmingham, Mich.
SOMMER, Louis J., Jr., (1922), Sole Owner. - Louis J. Sommer & Son, 2436 Brown St,, and 4809
Chestnut St., Philadelphia, Pa.
SOPER, Horace A., (1916), Vice-Pres.. (for mail), -
American Foundry 8c Furnace Co., and 1122 E. Monroe St., Bloomington, 111.
SOPER, Ira N., (1919), Sales Engr., (for mail), Warren Webster 8c Co.. 549 W. Washington St., and 6915 Harper Ave., Chicago, 111.
SOULE, Lawrence C., (1908), Secy.. Aerofin Corp., 750 Frelinghuysen Ave., Newark, and 26
Wootton Rd., Essex Fells. N. J. SOWERS, Paul E., (1922), Br. Mgr., Vapor
Heating Co., 201 N. George St., and (for mail), P. O. Box 295. York, Pa.
SPECKMAN, Charles H., (1918). Rm. 572, Bourse Bldg., Philadelphia. Pa.
SPELLER, Frank N.,* (1908). Metallurgical
Engr., (for mail), National Tube Co., 1810
Frick Bldg., and 6411 Darlington Rd.,' Pitts
burgh, Pa.
'
SPERZEL, Henry J., (Associate 1918; 1919),
N. W. Br. Mgr., Kewanee Boiler Co.k 708 Builders Exch.. and 4644 Bryant Ave., S., Minneapolis, Minn.
SPIELMAN, Gordon P., (Junior 1923), Treas.,
Harrison-Spielmann Co., Heating Contractors, 480 Milwaukee Ave., Chicago, and (for mail), 515 N. Prospect Ave., Park Ridge, 111.
SPITZLEY, Ray L., (1920), Pres, and Gen. Mgr., (for mail), R. L. Spitzley Heating Co., 246 W.
Larned St., and 1050 Yorkshire Rd., Grosse Pt., Detroit, Mich.
SPOFFORD, Harry H. R.. (1923), Copper and
Brass Research Assn., 25 Broadway, New York, N. Y.
SPOONER, Harold R., (1921), Engr. and Esti
mator, Atlas Heating Co., Inc., Jamacia, and (for mail), 33 Woodhull Ave.. Hollis, L. I., N. Y.
SPRAGUE, Frank H., (1923). Sales Mgr., (for
mail). Skidmore Corp., 1535 Dayton St., Chicago, and 1522 Forest Ave.. Wilmette, 111.
SPROULL, Howard E., (1920), District Mgr..
American Blower Co.. 1109 Keith Bldg., Cincin
nati, O.
.
36
American Society of Heating and Ventilating Engineers Guide, 1926-27
SPURGEON, Joseph H,, (1924), 2403 First
-Natl. Bk. Bldg., Detroit, Mich.
-
STACEY. Alfred E., Jr.,* (1914). Research
Engr., Carrier Engrg. Corp., 750 Frelinghuysen
Ave., Newark, and (for mail), Wootton Rd.,
Essex Fells, N.J. STACK, Murle F., (Associate 1925), Vice-Pres.,
(for mail). Sunkel Appliance Corp., 4511 Delmar
Blvd., and 308 N. Newstead, St., Louis Mo.
STACKHOUSE, Raymond M., (Associate 1908;
1919). Mgr., (for mail), American Radiator
Corp.. 509 Hannah Bldg., and Parkside Dwel
lings. Cleveland, O.
STAMMER, Edward L. * (1919). Supt., Htg. and
Vtg. Repairs, St. Louis Board of Education,
Ninth and Locust Sts., and 4430 Tennessee Ave.,
St. Louis. Mo. STANFORD, Leland E., (1921), Mgr.. Forbs-
Stanford Co.. 756 Upson St., and (for mail),
120 E. Cuyahoga Falls Ave., Akron, O. STANGER, Ralph B., (1920). Sales Engr.,
Robinson 8t Stanger, 917 Empire Bldg., Pitts
burgh, Pa.
_
STANCLAND, B. F., (Charter Member), (Board
of Managers 1895; 1899, Council 1896; 1897;
Board of Governors 1905; 1906; 1909; 2nd Vice-
Pres. 1908), Morton, N. Y.
STANNARD, James M.,* (1906). (Board of
Governors 1913; Council 1914. 1917). Pres, and
Treas., (for mail), Stannard Power Equipment
Co., 926 Monadnock Block, Chicago, and 1402
Elinor Place, Evanston. 111. STANWOOD, J. B., (1924), Vice-Pres. and Con
sulting Engr., The Stanwood Corp., and (for
mail), 2415 Maplewood Ave., Cincinnati, O.
STAPLES, William H., (Associate 1924), GiUis
& Geoghegan, 537 W. Broadway, and 137 West
96th St., New York. N. Y. STARK, Edward A., (Associate 1914 1916),
Br. Mgr., (for mail). U. S. Radiator Corp*. 1248
First Ave., S., and 2338 Broadway, N., Seattle,
Wash.
,, .,
STARKS, Verne E., (1922), Dist. Mgr., (for mail),
Ilg Elec. Vtg. Co., 1314 Schofield Bldg., and
13502 Fourth Ave., Cleveland, O.
STEARNS, William F., (Associate 1925), (for
mail), Stearns 8c Eaton, 100 Boylston St.,
STEVENS, Harry L., (Junior 1924), Member of
Firm, (for mail), M. M. Stevens Co., 108 W.
Sherman St., and 111 West 16th St., Hutchinson,
Kans. STEWART, C. W., (Associate 1918; 1919), 644
Riverside Drive, Apt. 2F, New York, N. Y.
STEWART, Earl A.; (1922), Associate Prof.
Agriculture Physics, Univ. of Minnesota, Uni
versity Farm, St. Paul, Minn. STILL, Fred R.,* (1904). (Presidential Member),
(Pres. 1918; 2nd Vice-Pres. 1917; Council 1916
1919), Vice-Pres. and Secy., (for mail). American
Blower Co., 50 Church St., New York, N. Y.
STITT, Eugene W., (1917), Sales Repr.. Hoffman
Specialty Co., 1535 Park Blvd., Dormont, and
P. O. Box 45, S. Hills Branch. Pittsburgh, Pa.
STITT, Howard B., (Associate 1922). Htg. Engr.,
506 West 29th St., Indianapolis. Ind. STOCK, Edward L., (Associate 1918), Sales Mgr.,
(for mail), Niagara Radiator & Boiler Co., 11-17
Investment Bldg., Washington, D. C., and
Bradley Hills, Bethesda, Md.
STOCKENBERG, Ruben, (1922), Sales Engr.,
(for mail), Johnson Service Co., 1355 W. Wash
.ington Blvd., and 1314 Columbia Ave., Chicago,
111 STOCKLY, Harold A., (1925). 240 S. El Molins
St., Alhambra, Calif. STOCKWELL, William R., (Junior 1001; 1903),
Gen. Mgr., Weil-McLain Co., Michigan City,
Ind.
.. ,,
STOKES, Ralph E., (1920), Residence Mgr.,
Vtg. Engr., (for mail), Ilg Elec. Vtg. Co.. 1024
Bessemer Blag., Pittsburgh, and 843 River Rd.,
Avalon Borough, Pa. STOLTENBERG, Thomas R., (1922) .Sales Repr.,
Htg. and Vtg. Engr., (for mail), P. O. Box 1168,
and Kenmark Hotel, Denver, Colo. STONE, Eugene R,, (1913). Pres., Stone-Under
hill Htg. & Vtg. Co., 171 Harrison Ave., Boston,
and 86 Sea Ave.. Quincy, Mass. STONE, George F., (1918), Engr.'and Estimator,
Wm. H. Walters & Sons, 1314 N. Carlisle St.,
and 4520 N. Carlisle St, Philadelphia, Pa.
STOREY, Thomas G., (Associate 1925). Sales
Engr., The Toledo Edison Co.. Jefferson and
Superior, and (for mail), 1170 W. Woodruff Ave.,
Boston, and 2 Salisbury Rd., Winchester, Mass.
Toledo. O.
STEDMAN, Charles N., (1921), Dist. Sales Mgr., STORM, Edwin S., (1916), Vice-Pres.. (for mail),
(for mail). C. N. Stedman Co., 610 Wrigley
Hoffman Specialty Co., 130 N. Wells St., and
Bldg., and 6917 Crandon Ave., Apt. 2D, Chicago.
5220 Cornell Ave., Chicago, ill.
STRANDWITZ, William J., (1919), Secy, and
5TEIM, Charles J., Jr., (1923), Mgr. Htg. Dept.,
Treas., (for mail), Strandwitz & Scott, Inc.,
(for mail). Samuel Sloan & Co., 67 Exchange St.,
537-49 S. Second St.. Camden, and Hawthorne
and 94 Elm St., Rochester, N. Y.
Ave., Haddonfield, N. J.
STEINER, John G., (Associate 1922). (for mail), STRONG, Ralph C., (1919), Salesman. Pierce.
Utica Heater Co.. 235 15th St., and 1368 Eliza
Butler & Pierce Mfg. Corp., 31st and Oxford
beth St.. Denver, Colo.
.
STEINHORST, Theodore F., (1919), Engr. and
Estimator, (for mail). Emil Steinhorst & Sons.
1158 Mohawk St., and West Shore R. R.. and
1664 Brinckerhoff Ave., Utica, N. Y.
STEINKE, Bernard H., (Associate 1925), 17
Westewelt Place, W.. Englewood. N. J.
STEINKE, G. B., (1924), Pres., (for mail). 103
Sts., and (for mail), 4515 Larchwood Ave.,
Philadelphia, Pa.
STROUSE, Sidney B., (1921), Dist. Mgr., (for mail), Warren Webster & Co., 429 Guarantee Trust Bldg., and 22 S. Illinois Ave., Atlantic
City. N. J. SUITS, George A., (1923), Mgr., Hoffman
Park Ave.. New York, and 2730 Decatur Ave..
Specialty Co., 26 Stanley Ave., Medford, Mass.
Brooklyn, N. Y.
SULLIVAN, Daniel A.. (1923). Miller 8t Brady,
STEINMULLER, J. M., (1925), 245 Hunters
Inc.. 210 East 38th St., and 3178 Rochambeau
Point Ave., Long Island City, N. Y.
Ave., New York, N. Y.
STEPHENSON, Lewis A., (1917), Mgr., (for SUTCLIFFE, Arthur G., (Associate 1918; 1922),
mail). Powers Regulator Co., 409 East* 13th St.,
Engr.. Ilg Elec. Vtg. Co,. 2850 N. Crawford Ave.,
and 801 West 57th St., Kansas City, Mo.
STERN, H. Richard, (1923), (for mail), Johnson 8c Morris, 538 West 23rd St., and 225 West 86th
and (for mail), 4146 N. St. Louis Ave., Chicago,
111.
SUTER, George, (1921), Htg. Contractor, (for
St., New York, N. Y.
. mail), 210 E. Second St., and 1842 Barrett Ave.,
STERNBERG, I. C., (1926), Htg. and Vtg.
Sedalia, Mo.
Engr., Sprague 8c Slocum. 12 East 42nd St., and SUTTERLEY, W. W., (1919), 503 North 52nd
(for mail). 1271 Morris Ave., New York, N. Y..
St.. Philadelphia, Pa.
'
STETSON, Lawrence R., (1913). (for mail). SWAIN, WUbur A., (Associate 1926), Repr. and
McMurrer Co.. 303 Congress St., Boston, and
Engr., (for mail), Jenkins Bros., 80 White St.,
35 Bradfield Ave., Roslindale, Mass.
New York, N. Y.f and 441 Elmora Ave., Eliza
STEVENS, Frank H,, (Associate 1924), Sales . beth. N. J.
Engr.. (for mail), Heggie Simplex Boiler Co., 622 SWAN, Thomas J., (Junior 1925). Sales Engr.,
First St.. Detroit, Mich., and 4618 Kenraore
Hoffman Specialty Co., and 23 Athelwold St.,
Ave., Chicago, 111.
Dorchester, Mass.
37
Roll of Membership
SWANEY, Carroll R., (Junior 1921), Salesman,
(for mail), Gilbert, Howe, Gleason, 25 Hunting*
ton Ave,, Boston, and 24 Southgate Park, W. Newton, Mass.
SWARTWOUT, Jay D.f (1917), Secy, and Treas.,
J. D. Swartwout Co., 349 S. Weadock Ave., and
349 S. Weadock Ave., Saginaw, Mich.
.
SWEENEY, Sylvester H., (1915), Engr. and
Contractor, S. H. Sweeney, Inc., 208 East 45th
St., and 1916 Loring Place, New York, N, Y.
SZEKELY, Ernest, (1920), Consulting Engr., (for
mail), 500 B. & R. T. Bldg., and 12537 Arliss
Drive, Cleveland, O.
T
TAGGART, Ralph C., (1912), Chief Engr., Dept, of Architect, 14 Lyon Ave., Menands, Albany,
TAIT, George M., (1909), Htg.. Vtg. and Sanitary
Engr., 34 W. First St., Mansfield, O.
TALIAFERRO, Robert R., (1919), Carrier Engrg.
Corp., (for mail), 1402 Land Title Bldg., and
Beechwood Park, Philadelphia, Pa.
TALLMADGE, Webster, (1924), 50 Church St.,
New York, N. Y.
TANGEMAN, Bruno W., (Associate 1919), Mgr.,
(for mail), A. Y. McDonald Mfg. Co., 822
Third St., S., and 2716 Aldrich Ave., S., Min neapolis, Minn.
TANNEHILL, Louis W.t (1925), 1420 S. Flower
St., Los Angeles, Calif.
TATE, Sidney, (Associate 1926), Own Business,
The Tate-Habelman Co., Htg. Contractors,
14113 Orinoco Ave., E. Cleveland, O.
TAVERNA, Frederick F,, (Junior 1924). Htg.
and Vtg. Engr., Raisler Heating Co., 129 Amster
dam Ave., New York, N. Y., and 406 12th St.,
Union City. N. J.
TAYLOR, Milton A., (Associate 1925), Asst, to
Pres., (for mail), Taylor-Forbes Co., Ltd., and
178 Queen St., Guelph, Ont., Gan.
TAYLOR, R, Frederick, (1915), Consulting
Engr., R. F. Taylor, 1020 Western Indemnity
Bldg., and 5742 Richmond Ave., Dallas, Tex.
TAYLOR, Thomas S., (1921), Chief Research
Physicist, Bakelite Corp., (for mail), 230 Grove
St., Bloomfield, and 96 Westville Ave., Caldwell, N. J.
TEMPLIN, Charles L., (1921), Chief Engr.,
American Htg. '& Vtg. Co., P. O. Box 876, and
(for mail). 2223 Circle Drive, Raleigh, N. C.
TENKONOHY, Rudolph J., (1923), Sates Engr.,
(for mail), American Blower Co., 2136 Oliver
Bldg., Pittsburgh, Pa., and 37 Stevens Ave.,
Highland PaTk, Mich.
TERRELL, Herbert A., (1915), Carrier Engrg.
Corp.. 39 Cortlandt St., New York, N. Y., and
(for mail), 210 Manor Place, Cranford, N. J.
TERRY, Frank W., (Associate 1923), Sales Engr.,
Richmond Radiator Co., 1480 Broadway, New
York, N. Y., and (for mail), 109 S. Grove St..
E. Orange, N. J.
THATCHER, George S., (1919). Pres., (for mail).
Thatcher Heating Co., 455 E. Exchange St., .
and 140 Momingside Drive, Arkon, O.
THEISEN, Edwin F., (1922), Pres, and Htg.
Engr., Industrial Plumbing & Htg. Co., 606
Second St., and (for mail), 1835 Des Moines St.,
Ft. Madison, la.
'
THEORELL, Hugo G. T,, (1902), Consulting
Engr., 4 Skoldungatan, Stockholm, Sweden.
THINN, Christian A., (1921). Asst. Sales Mgr.
and Engr., (for mail), C. A. Dunham Co., 450
E. Ohio St., and 1907 Nebraska Ave., Chicago,
in
THOMAS, Bernard A., (Junior 1923), Sales
_ Engr., Crane Co., Jacksonville, and (for mail),
109 W. Elm St.. Winter Haven, Fla.
THOMAS, Herbert G., (1917). Sales -Engr.,
Warren Webster & Co., 549 W. Washington St.,
Chicago, and (for mail), 2312 Ridge Ave., Evanston, HI.
THOMAS, Melvem F., (1909), Consulting Engr.,
(for mail), 229 College St., and 24 Ralph Ave.,
Toronto, Ont., Can.
1
THOMAS, R. H., (1920). Pres., (for' mail). Economy Pumping Machine Co., 122-124 N.
Curtis St., Chicago, and 426 Forest Ave., Oak Park, 111.
THOMPSON, Hugh, (Associate 1925), Div. Mgr., Holland Furnace Co.. 913 W. Eighth St., and 3415 Michigan Ave.. Kansas City. Mo.
THOMPSON, James, (1920). Pres., (for mail).
Philadelphia Boiler Works. 1737 Filbert St., Philadelphia, and 158 Stoneway Lane, Bala. Pa. THOMPSON, Nelson S.,* (Junior 1897; 1917),
Chief Mech. and .Elec. Engr., Office of Super vising Engr.. U. S. Treasury Dept., and (for mail), 1615 Hobart St., N.W., Washington, D. C. THOMPSON, William P., Jr., (1915), (for mail).
Thompson Bros., 520 Buttonwood St., and 1349 Colwvn St., Philadelphia, Pa.
THOMSEN. William T., (1919). Secy, and Treas.. (for mail). International Engrg. & Supply Co.,
. Suite 609, Tower Bldg., and 3408 Magnolia Ave., St. Louis, Mo.
THORNTON, Roger T., (1919), Sales Engr., (for
mail), Buffalo Forge Co., 490 Broadway, and 46 Burbank Terrace, Buffalo, N. Y. THRUSH, Homer A., (1918), Pres., (for mail).
H. A. Thrush & Co.. 21-23 E. River St., and 271 S. Broadway, Peru, Ind.
.THUEM, Adolph E., (Junior 1922), Htg. and Vtg. Engr., (for mail), Board of Education, Bureau of Construction and Maintenance, Htg.
. and Vtg. Div., Flatbush Ave., Extension- and Concord St., Brooklyn, and 444 East 87th St., New York, N. Y.
TIBBETS, John C., (1920). Htg. and Vtg. Engr.,
B. & O. R. R. Co.. 1303 B. & O. Central Bldg., Baltimore, and (for mail), Ellicott City, Howard Co., Md.
T1LDEN, Elwyn E-, (1924), (for mail). Warren
Webster & Co., 220 Devonshire St., Boston, and Holbrook. Mass.
TIMMERMAN, Manford M., (Junior 1921;
1925), Works Engrg. Dept., Westinghouse Elec. & Mfg. Co.. E. Pittsburgh, and (for mail), 859 E. Hutchinson Ave., Swissvale, Pa.
TIMMIS, Pierce, (1920), Service Equipment
Engr., (for mail), Dwight P. Robinson & Co.,
Inc.. 125 East 46th St., New York, and Little Neck Rd., Douglaston, L. I., N. Y.
TIMMIS, Walter S.,* (1911), (Presidential Member), (Pres. 1919; Council 1916; 1917; 1920; 1st Vice-Pres. 1918). Consulting Engr., (for mail), 315 Fifth Ave., New York; and Hill side and Homer Lee Aves., Jamaica, N. Y.
TIMMIS, William W.t (Associate 1925), Sales Engr., Hoffman Specialty Co;, 512 Fifth Ave.,
New York, and (for mail), 8828 181st St., Jamaica, L. I. TINKER, William E., (Associate 1922), (for mail). Natl. Radiator Co., 121 N. Broad St., and 600 South 48th St., Philadelphia, Pa.
TISNOWER, William, (1923). Htg. Engr.. 131 Livingston St., Brooklyn, N. Y.
TITZELL, J. Edgar, (1923), Vice-Pres.. (for mail),
Pacific Boiler Co.. Inc., 101 Park Ave., and 27 West 95th St.. New York. N. Y.
TJERSLAND, Alf. (Junior 1906; 1916), E. Sunde & Co., Christiania, Norway.
TOBIN. George J., (1905), Sanitary,' Htg. and
Vtg. Engr., (for mail), 187 North Ave., and 510 Grant Ave., Plainfield, N. J.
TODD, James, (1922), Pres., (for mail). Sterling Varnish Co., 528 Fulton.Bldg., Pittsburgh, and Sewickley, Pa.
TOENNIGES, George C., (1915), Sales Engr., 3417 N. Lincoln St., Chicago. 111.
TOMLINSON, Malcolm C. W., (1924). Mech. Engr., Development Br., Western Elec. Co.,
Kearny, and (for mail). 191 Bellevue Ave., Upper Montclair, N. J.
TOOKER, Charles C., (1918), Htg, Engr.. 113 North 27th St., and (for mail), 208 Terry Ave.,
Billings, Mont.
TRANE, Reuben N., (1915), Pres., (for mail),
. The Trane Co., Htg. Specialty Mfgrs., and 1514
King St., LcCrosse. Wis.
.
38
American Society of Heating and Ventilating Engineers Guide, 1926-27
TRIPP, Louis H., (1915), Chief Engr.. U. S.
Veterens Bureau. Arlington Bldg., and (for mail).
3721 Fulton St., N.W., Washington, D. C.
TRUITT, Joseph E., (Associate 1911; 1920),
Pres., Autovent Fan & Blower Co., 736 W.
Monroe St., Chicago, III.
TUCKER, Frank N., (1926), Field Engr., (for
mail), Ilg Elec. Vtg. Co.. Rm. 1108, 13 Park
Row, and 9 West 28th St., New York, N. Y.
TURNO, Walter G. W., (Associate 1912; 1917),
Engr. and Estimator, 71 Lafayette Ave., E.
Orange, N. J.
TUSCH, Walter, (1917), Htg. and Vtg. Engr..
Tenny & Qhmes, 101 Park Ave., New York, and
(for mail). 881 Sterling Place, Brooklyn, N. Y.
TUTTLE, J. Frank, (1913), Mgr., (for mail).
Warren Webster & Co., 220 Devonshire St.,
Boston, and Winchester, Mass.
TWEED, Carieton F., (1916), Chief -Engr.,
Arlington Engrg. Corp.. Rm. 812. Ill W.
Jackson Blvd., and 338 N. Latrobe Ave.,
Chicago. 111.
TWIST, Charles F., (1921). Secy, and Treas., (for
mail), Ashwell, Twist & Cook, Inc., 305 Bell St.,
and 2310 Tenth Ave.. N., Seattle, Wash.
TYLER, Frank T., (1922), Mgr., (for mail).
Estimating Dept., Herman Nelson Corp., and
1615 Eighth Ave., Moline. 111.
U
UHL, Edwin J., (1925), Sales Engr., Uhl Co.. 132 S. Tenth St., Minneapolis, Minn.
UHL, Willard F., (1918), Sales Engr., (for mail), Uhl Co., 132 S. Tenth St., and 4716 Lyndale Ave.. S., Minneapolis. Minn.
UHLHORN, W. J-, (1920), Sales Engr., Drying Sustems, Inc., 11 S. Desplaines St., Chicago, and (for mail), 733 S. Highland Ave., Oak
Park, 111. ULRICH, Kay Flemming, (Junior 1926). Mech.
Engr., L. Ulrich, Smedegade, Slagelse, Denmark. UNDERHILL, William W., (1913). Treas., (for
mail), Stone-Underhill Htg. & Vtg. Co., 171 Harrison Ave., Boston, and 15 Kinwood St.,
Brookline, Mass. UPINGTON, George P-. (1917). Sales EngT.,
Clarage Fan Co., 149 Broadway, New York, and 770 Greene Ave., Brooklyn, N. Y.
VALENTINE, Howard D.,* (1924), Direct Sales
Engrs., The Peoples Gas Light & Coke Co., (for
mail), 122 S. Michigan Ave., Chicago, and 245
Washington Blvd., Oak Park, 111.
VAN ALEN, Walter T., (1924). Sales Engr.. Htg.
Dept., Standard Sanitary Mfg. Co., Pittsburgh,
and (for mail), 1300 Darlington Rd., R. F. D.
No. 1, Beacon Falls, Pa. VANCE, Louis G., (1919). Owner. Vance &
Vance, 1207 Garrett .Bldg., and (for mail), 3601
Garrison Ave., Baltimore, Md. -
VAN INWAGEN, Frank, (1916). Pres.. Central
Brake Shoe & Foundry Co., Railway Exch. Bldg.,
Chicago, and (for mail), 151 County Lene Rd.,
Hinsdale. 111. VAN NORDEN, Ernest M., (1923), The New
York Edison Co., 130 East 15th St., New York,
N. Y..
.
VAN SICKLE, William B., (1915). Pres., (for
mail), The W. B. Van Sickle Co., 707 Frankfort
Ave., Cleveland, and 1530 Grace Ave., Lakewood,
O.
VANZANDT, John H.. (1914), Mfgrs. Agent,
1903 Santa Fe Bldg., and 4416 Bryan St., Dallas,
Tex.
'
VAUX, Frederick J., (1919). yice-Pres. and Gen.
* Mgr., Monitor Bi-Loop Radiator Co., and (for
^mail), 202 E. King St.., Lancaster, Pa.
VAUX, Noble, (Associate 1923), Htg. Engr.,
R. T. Vaux & Son. 12 Fawcett St., and (for
mail). 11 Holmelands Park S., Sunderland, Eng.
VER HALEN, Edward T., (Associate 1925), Edw.
T. Ver Halen, Inc., 610 Milwaukee St., Mil
waukee. Wis.
VERNER, William F. * (1913). Mech. Engr.. (for
mail), Vemer, Wilhelm & Molby, 824 Book
Bldg., Detroit, and 908 Lincoln Ave., Ann Arbor,
Mich. VERNON, J. Rexford, (Associate 1926), Sales
Engr., (for mail), Johnson Service Co., 1355
Washington Blvd., and 1563 Birchwood Ave.,
Chicago, 111.
VIVARTTAS, Eugene A.t (1910); Consulting
Engr., 84 Fenimore St., Brooklyn, N. Y.
VOGEL, Andrew, (1926), Plant Engr., (for mail),
General Electric Co., and 611 Lenox Rd.,
Schenectady, N. Y.
VOGELBACH, Oscar, (1923), Htg. and Vtg.
Engr., Guilbert & Betelle, Archts., Brandford
Place, Chamber of Commerce Bldg., Newark,
and 195 Devon St., Kearney, N. J.
VOGT, J. H., (Associate 1925), (for mail), 124
East 28th St., New York, and 87 Grant Ave.,
Brooklyn. N. Y.
VOIGT, Charles O., (1921), Sales Engr., The
Stearns Roger Mfg. Co., 1720 California.St., and
60 Albion St., Denver, Colo.
.
VOLK, Joseph H., (1923), Thos. E. Hoye Htg.
Co-. 1910 St. Paul Ave., Milwaukee, Wis. VOORHEES, Guy A,, (1922), Engr., Century
Htg. Service Co., 32-36 W. Tenth St., and (for
mail), 3451 Broadway. Indianapolis, Ind..
VOSE, Richard H.t. (1923), Johnson & Morris.
538 West 23rd St., New York, and (for mail),
18 Leland Ave., New Rochelle, N. Y.
W
WACHTER, John A., (1914), Pres., 723-25 W.
Pratt St., Baltimore, and 112 Ailsa Ave., Hamil
ton, Baltimore, Md. WADDINGTON, Bertram C., (1922), Engr.,
805 World Herald Bldg., Omaha, Nebr. .
WADDINGTON, Earle C., (1917), Sales Engr.,
W. B. Irwin, 911 Bankers Mortgage Bldg.,
Houston. Tex., and 3230 Tracy Ave., Kansas
City. Mo.
.
WADLEY, Calvin Page, (1919). Pres., (for mail),
Excelso Specialty Works, Inc., 65 Clyde Ave.,
and 60 Agassiz Place, Buffalo; N, Y. WAGNER, A. M., (Associate 1921), Mgr.,
American Radiator Co., 692 Prior Ave., N., St.
Paul, and 1626 West 25th St., Minneapolis, Ind.
WAGNER, John P., (Associate 1921), Concrete Products Mfg. Co., 705 Ralston Bldg., Miami,
Fla. WALDON, Charles W., (Associate 1924), (for
mail). American Larson Vtg. Co., 204 Keystone
Bk. Bldg., Pittsburgh, Pa., and 1006 Ninth St.,
Portsmouth, O.
WALKER, Alex., (Associate 1925), Br. Mgr., (for
mail). C. A. Dunham and Powers Regulator Co.,
311 Dominion Bk. Bidg., Calgary, Alta, Can.
WALKER, George Francis, (Junior 1925),
Sales Engr., (for mail), Standard Heater Co;,
433 Jackson Bldg., and 184 St. James Place,
Buffalo. N. Y. WALKER, James B.t (1919), Treas., (for mail),
Pittsburgh Htg. Co., 715 Magee Bldg., and 202
Iroquois Apt., Oakland, Pittsburgh, Pa.
WALKER, James H.,* (1916), Supt., Central
Heating, (for mail), Detroit Edison Co., 2000
Second Ave., and 1520 Virginia Park, Detroit,
Mich. . WALKER. William K.t (Junior 1924), Htg. and
Vtg. Engr., McKenzie, Voorhees & Gmelin, 342
Madison Ave., Rm. 2022, New York, and 191-02
Central Ave., St. Albans. L. I., N. Y.
WALLACE, Albert, (1921), Htg. Engr., A.
Wallace & Co., 402 Jacobson Bldg., and (for
mail). 2971 Irving St., Denver, Colo. WALLACE, George J., (1923), Principal Engr.
and Contracting. 206 East 57th St., New York,
. and 27-36 Ericsson St., E. Elmhurst. L. I.. N. Y.
WALLACE, John F., (1921). Secy, and Treas.,
Wallace Plumbing Co., 1238 California St., and
1320 S. Josephine Sf.. Denver, Colo.
WALLICH, A.'CM (1919), (for mail). Wallich
Ice Machine Co.. 517 E. Lamed St., and 1211
E. Grand Blvd., Detroit, Mich.
39
Roll of Membership
WALSH, Arthur F., (Associate 1923). Htg. and Vtg. Contractor, A. F. Walsh, 7445 Exchange
. Ave., and 7536 S. Shore Drive. Chicago, 111.
WALSH, Malcolm, (1924), Secy., (for mail),
Walsh & Wertheim, 55 W. Houston St., New
York, and 25' Sherman Ave., St. George. S. I.,
N. Y.
WALTERS, Arthur L., (Junior 1924; Associate
1925; 1926), Mgr. Furnace Dept., (for mail).
The Buck's Stove & Range Co., 3550 N. Second
St., St. Louis, and 7284 Richmond Place, Maple
wood, Mo.
WALTERS, Victor, (Junior 1924), Inspector 111.
Central R. R. Co.. Rm. 700. 109 East 12th St.,
.* and (for mail), 7049 St. Lawrence Ave., Chicago, 111
WALTERS, William T,, (1917), Htg. and Vtg.
Engr.. Illinois Engrg. Co., 21st and Racine Ave.,
and 1422 East 69th St., Chicago, 111.
WALTHER, Harry J., (1919), Harry B. Pancoast
Co., 946-62 N. Front 5t.. Philadelphia, Pa.
WALTHER, Owen N., (1919), Vice-Pres. and
Chief Engr., (for mail). York Htg.'& Vtg. Corp.,
1502 Locust St., and 222 W. Rjttenhouse Sq., Philadelphia, Pa.
WALTHER, Vernon H., (Junior 1925), Asst, in
Mech. Dept., C. W. & Geo. L. Rapp, 190 N. State St,, Rm. 1200, and (for mail), 6821 Osceola Ave.. Edeon Park, Chicago, 111.
WALTHERTHUM, John J., (Associate 1922),
J. J. Waltherthum, 173 East 62nd St., New
. York, N. Y.. and 834 Grand St., Jersey City, N. J.
WALTON, Hiram L,, (1916), Mech. Engr., (for
mail). Smith, Hinchman & Grylls, 800 Marquette
Bldg., Detroit, and 218 Monterey Ave., Highland Park, Mich.
WANDLESS, F. W,, (1925), Chief Engr.. (for
mail). Haynes Selling Co., 2013 Sansom St.,
Philadelphia, and Berwyn, Pa.
WARD, George C., (1925), Inspector Bureau
Industrial Hygiene, N. Y. State Dept. Labor,
124 East 28th St., New York, and 86-87th St.,
Brooklyn. N. Y.
.
WARD, Oscar G,, (1919), Dist. Mgr., (for mail),
Johnson Service Co.. .1230 California St., and
1515 E. Ninth Ave., Denver, Colo. WARNKE, Fred E., (Associate 1921). Sales Engr.,
(for mail). 5005 Euclid Ave., Cleveland Heights, - and 2641 Taylor Rd.. Cleveland Heights, O.
WARREN, Clarence N., (1919), Vice-Pres. and
Engr.. Hayes Bros., Inc.. 236 W. Vermont St.,,
and (for mail), 419 East 48th St., Indianapolis,
Ind.
WASH, William Percy, (1923), Sales Engr., (for
mail). Richmond Radiator Co... P. O. Box 381,
and 131 Wellington Ave., Roanoke. Va. -
WASNER, W. M., (Associate 1924). Wasner &
Reddig, 206 N. Sixth St., Reading, Pa.
WATKINS, James A., (1919), Sales Engr..
American Blower Co.. 140 S. Dearborn St., and
(for mail), 7526 Kingston Ave., Chicago. 111.
WATSON, John Howard, (1925), Chief Drafts
man. Drying Systems, Inc., 1800 Foster Ave.,
and (for mail), 1909 Argyle St., Chicago. 111. '
WATSON, Raymond E., (1925), Designer, Muir
& Brooke. Consulting Engrs., 163 W. Washington
St., and (for mail), 5721 Magnolia Ave., Chicago,
III. .
WATTERS, Peter J,, (1921), Mgr., John Watters.
55 Church St., and (for mail), 52 Ann St., Port
Richmond, S. I,, N. Y.
WEAGER, T. A., (1920), Cleveland Mgr., (for
mail), Buffalo Forge Co., Rockefeller Bldg.,
Cleveland, and 3124 Berkshire Rd., Cleveland
Heights, O.
WEBB, John S,, (1920), Pres., (for mail). Willey
& Calhoun Co., 46 Market St., and 45 Lincoln
St., Woodfords, Portland, Me.
WEBER, Erwin L., (1921), Consulting Engr., (for
mail), 723 Seaboard Bldg., and 3046 18th Ave.,
S.. Seattle, Wash.
.
WEBER, G. A,, (1922), Htg. Engr., McGinness,
Smith, McGinness Co., 527 First Ave., Pitts
burgh, and 618 Chautauqua St., Bellevue. Pa.
WEBSTER, E. Kessler, (1915). Secy, and Asst.
Gen. Mgr., (for mail), Warren Webster & Co.,
17th and Federal Sts., Camden, and 320 Wash
ington Ave., Haddonfield, N. J.
.
WEBSTER, Warren, (Associate 1899; 1906),
Pres, and Gen. Mgr., Warren Webster & Co.,
17th and Federal Sts., and 626 Cooper St., Camden, N. J.
WEGMANN, Albert, (1918), Blower and Vtg.
Engr., A. and W. Wegmann. 2813 Fletcher St.,
and (for mail), 2842 N. Bonsall St., Philadelphia,
Pa.
WEI BERT, Charles J., (1921), (for mail),
Weibert & Zibold Corp., 331 Vanderbilt Ave.,
and 89 Lewis Ave., Brooklyn, N. Y.
WE1DER, Frederick J., (1919). Vice-Pres. and
Treas., (for mail), Barr & Creelman Co., 74
Exchange St., and 40 Kenwood Ave., Rochester,
N. Y.
WEIL, Martin, (Associate 1925), Secy., (for mail),
Weil-McLain Co., 641 W. Lake St., and 4259
Hazel Ave., Chicago, 111.
WEIMER, Fred G., (Associate 1919), Milwaukee
Mgr., Kewanee Boiler Co., 440 Barclay St., and
(for mail), 1308 Stowell Ave., Milwaukee. Wis.
WEINSHANK, H. T,, (Junior 1924). Sales Engr.,
(for mail). The New York Blower Co., 2246 S.
Halsted St., and 2638 N. Spaulding St., Chicago,
WEINSHANK, Theodore,* (1906). Board of
Governors 1913), 3301 Schubert Ave., Chicago,
111.
WEISS, Carl A., (Associate 1924), Partner, Supt.,
(for mail), Kornbrodt Komice Ko., 1811-13-15
Troost Ave., and 4920 Walrond, Kansas City
Mo.
WELAMB, Victor N., (1918), Contractor,-(for
mail), V. N. Welamb Co., 2313 Walnut St., and
1741 North 33rd St., Philadelphia, Pa.
WELSH, Harry S., (1906). Pres., The Boiler &
Radiator Corp.. 999 E. Main St., and 37 Flower
City Park, Rochester, N. Y.
WELTER, Michael A., (Associate 1925). M. A.
Welter & Co., (for mail), 2118 Lyndale Ave., S.,
and 4306 GarBeld Ave.. S., Minneapolis, Minn.
WENDT, Edgar F.t (1918), Vice-Pres. and Treas.,
(for mail), Buffalo Forge Co., 490 Broadway, and
731 Lafayette Ave., Buffalo, N. Y.
WENDT, Henry W,, (1917), Pres., (for mail).
Buffalo Forge Co., 490 Broadway, and 120
Lincoln Parkway, Buffalo. N. Y.
`
WESCHLER, George A., (1923), Consulting
Engr., and Prof, of Mech. Engrg., Catholic
University of America, Transportation Bldg.,
and 2803 13th St., N.E.. Washington, D. C.
WEST, Perry,* (1911), (CouncU 1920-1925; Treas.
1924-1925), Consulting Engr., (for mail), 13
Central Ave., and 322 Park Ave., Newark, N. J.
WHEELER, Charles W,, (1916). Br. Mgr., (for
mail), C. A. Dunham Co., 1104 May Bldg.,
Pittsburgh, and R. R. No. 1, Allison Park, Pa.
WHEELER, Otto J., (1923). Mgr. and Secy., The
Samuel A. Esswein Htg. & Plumbing Co., 548
OW.. Broad St., and 504 Linwood Ave., Columbus,
WHEELOCK, Harry C., (1919), 118 College St.,
Burlington. Vt.
WHELAN, William J,, (1923), Harrigan Reid.
1705 First St., Detroit, Mich.
WHELLER, Harry S., (1916), Vice-Pres.. L. J.
Wing Mfg. Co., 352 West 13th St., New York,
N. Y., and (for mail), 230 Stiles St., Elizabeth.
N. J.
.
WHITAKER, Ernest C., (1925), Chief Engr.,
Buerkel & Co., Inc., 24.Union Park St., Boston,
and (for mail), 35 Sherborn St., Arlington, Mass.
WHITBY, Stephen S., (Associate 1922), Treas.,
Culbert & Whitby Co., Inc., 2019 Rjttenhouse
St., Philadelphia, Pa., and (for mail), 208 Yale
Rd.. Audubon, N. J.
WHITE, Elwood S., (1921), Pres., Thermal
Appliance Co., 342 Madison Ave., and 21
Washington Sq., New York, N. Y.
WHITT, Everett A., (1921), Head of Engrg.
Dept., Crane Co., 30 South 16th St., and 4611
Delor St., St. Louis, Mo.
'
40
American Society of Heating and Ventilating Engineers Guide, 1926-27
WHITE, Harold A., (Associate 1923), Mulley & White, 245 Greenpoint St., New York, and (for mail), 852 Knickerbocker Ave., Brooklyn. N. Y.
WHITE, M. G., Jr., (1925). 41 East 42nd St.,
New York, N. Y. WHITE, Walker G,, (Associate 1925), Westing-
house Elec. & Mfg. Co., 150 Broadway, New York. N. Y. WHITLEY, James, (1919), Consulting Engr..
Whiteley & Sanders, 3000 Grand River Ave., and
520 Navahoe Ave., Detroit, Mich. WHITTEN, II. E., (1924), Pres, and Treas., (for
mail), H. E. Whitten Co., 9 Federal Circuit,
Boston, and 56 Highland Rd., W. Somerville,
Mass. WHITTEN, Herbert W.,* (Associate 1908; 1909).
Htg. and Mech. Engr., Chamberlin Metal
Weather Strip Co., 1644 Lafayette Blvd., W,, Detroit, Mich. WHITTEMORE, Edward H. * (1920). Engr., (for mail), Stone & Webster, Inc., 147 Milk St., Boston, and 96 Church St., W. Roxbury, Mass.
WHOMES, Harry, (1926), Works Mgr., (for mail).
Bayley Mfg. Co., 732 Greenbush St., Milwaukee, and 529 11th Ave., Wauwatosa, Wis. WHY, H. Berkeley, (1919). Constructing Engr., 312 Earlham Terrace. Germantown, Phila
delphia, Pa. WIDDICOMBE, R. A., (1903), 1120 Lake Shore
Drive. Chicago, III. WIEGNER. Henry B., (1919), Mgr., (for mail).
Johnson Service Co., 31 Waltham St., Boston, and 77 Chester Rd., Belmont. Mass. WIGGS, Gordon L., (Junior 1924), Mechanical Supply Co., Ltd., (for mail), 80-90 St. Paul St., and 189 Grande Allee, Quebec, P. Q.. Can. WIGLE, Bruce M,, (Associate 1926). Owner,
Bruce Wigle Plumbing & Htg. Co., 9117 Hamil ton Ave., and 855 Clairmont Ave., Detroit, Mich. WILCOX, Oscar H., (Associate 1917), Salesman,
Ideal Furnace Co.. 530 Jefferson Ave., and (for mail), 2545 Canton Ave.. Detroit, Mich.
WILCOX, William. (1916), Dist. Engr.. (for
mail). Whitlock Coil Pipe Co.. 6 Beacon St., Rm. 511, Boston, and 7.Biltmore St., Jamaica Place,
Mass.
*
WILD, Walter H.t (Associate 1921), Mfgrs.
Agent, (for mail), 1212 Land Title Bldg., Phila delphia, and 122 Cynwyd Rd., Bala. Pa.
WILDE, Ray S. M., (1916), Consulting Engr.. (for mail), 305 Huron Bldg., Detroit, and 194 Con
necticut Ave., Higlhaiid Park, Mich.
WILDER, Edward L., (1915), Mgr. Industrial
Sales Dept., (for mail), Rochester Gas & Electric Corp.. 89 East Ave., and 16 Ericsson St., Roches ter, N. Y.
WILEY, Charles S., (1921), Htg. and Vtg. Engr., (for mail), Eastman Kodak Co., Kodak Park,
and 239 Mulberry St., Rochester, N. Y.
WILEY, Edgar C., (1909), Consulting Engr.,
Wiley & Wilson, Lynchburg, Va.
WILLARD, Arthur C., (1914). (2nd Vice-Pres. 1926; Council 1925-1926), Prof. Htg. and Vtg.,
and Head of Dept, of Mech, Engrg., (for mail). University of Illinois, and 1208 W. California
St., Urbana, 111.
WILLIAMS, Allen W., (Associate 1915), SecyNational Warm Air Htg. & Vtg. Assn., 52 W.
Gay St., and 51 Meadow Park Ave., R. R. No.
5, Columbus. O.
WILLIAMS, Jesse M., (Associate 1925), Pres., (for mail), Williams Radiator Co.. 1864 W. Washington St., and 861 Harcourt Ave., Los
Angeles, Calif.
WILLIAMS, J. Walter, (1915). Pres, and Treas.. Forest City Plumbing Co., 332 E. State St., Ithaca. N. Y.
WILLIAMS, Oliver L., (Associate 1925), Br.
Mgr., (for mail), Bryant Heater & Mfg. Co., 1305 E. End Trust Bldg., and 814 N. Negley
Ave., Pittsburgh, Pa.
.
WILLIAMS, Robert Eubank, (1926), Consulting
Engr., (for mail), 308 Home Insurance Bldg., and 2427 Broadway, Little Rock. Ark.
WILLIAMSON, Arthur H., (Associate 1915), Sales Mgr., (for mail), American Radiator Co. of Michigan, Broadway and Grand River Ave., Barium Bldg., and 2272 Glynn Court, Detroit, Mich.
WILLIAMSON, Fred W.t (1914), Consulting Engr.. 324 New York Ave., Brooklyn, N. Y.
WILLIAMSON, George R., (1920), Sales Engr., The Mouat Vapor Heating Co.. 1246 W. Fourth St., and 11016 St. Clair Ave., Cleveland, O.
WILLIS, Frederick H.. (1921), Chief Engr.. (for mail), W. N. Bowman Co., 612 Insurance Bldg., and 1110 Jackson St., Denver, Colo.
WILLIS, Ralph P., (1923), Sales Engr., (for mail). Peerless Unit Ventilation Co.. Inc., 301 House Bldg., Pittsburgh, Pa., and 227 Audubon Ave., New York, N. Y.
WILMOT, Chas. S., (1919), Phoenixville, Pa. WILSON, Benjamin W., (1922), Htg. and Vtg.
Engr., (for mail). The Ballinger Co., S.E. Cor. 12th and Chestnut Sts., and 5935 Windsor Ave., W. Philadelphia, Pa. WILSON, Charles H., (1920), Htg. and Vtg. Engr., Fuller & Warren Co., 468 Pawling Ave.,
Troy. N. Y. WILSON, Ernest J. F., (1923), Partner, Wiley &
Wilson, Consulting Engrs., 801 Main St., and Oakwood Place, Lynchburg, Va. WILSON, Eugene K-, (1919), Wilson & Co., (for mail). 1017 Duke St., and 12 Lafayette Blvd., Norfolk, Va. WILSON. F. A., (1910), 20945-110 Ave., Bellair,
L. I.. N. Y. WILSON. George T., (1925), Gurney Foundry
Co., Ltd., 500 King St.. Toronto, and (for mail). Tyre Ave., Islington, Ont., Can. WILSON, Harry A., (1903), Box 1903, Washing
ton. R. I. WILSON, Howard M., (Associate 1925), Br. Mgr.,
(for mail), Standard Heater Co., 136 Federal St., Boston, and 15 Chestnut St., Wellesley Hill,
Mass. WILSON, J. J., (Charter Member), Consulting
Engr., Most Supply Co., Fourth and Girard Ave., and (for mail), 5514 Paschall Ave., Phila
delphia, Pa. WILSON, William H.f (Associate 1923), Wis.
Mgr., (for mail), Johnson Service Co., 149-159 Michigan St., and 431 Olive St., Milwaukee. Wis.
WILSON, William S., (Associate 1924), Mgr. Lands Dept., The Lake Superior Corp.. and 210 McGregor Ave., Sault Ste. Marie, Ontario, Can.
WINCH, Franklin R., (1925). Mech. Engr., (for mail). Walker & Eisen, Architect and Engr., 746 S. Spring St., and 5462 Carlm St., Los
Angeles, Calif.
WINTERBOTTOM, John W., (1915), VicePres. and Engr., Lock Box 2045, Sta. A., Water
loo. Ia. WINTERBOTTOM, Ralph F., (Associate 1923),
Mgr., Faultless Heater Mfg. Co., and (for mail). P. O. Box 2217, Sta. A, Waterloo. Ia.
WINTERER, Frank C., (1920). Htg. Dept., (for mail), Cochran-Sargent Co., Fifth and Sibley Sts., and 836 Juno St., St. Paul, Minn.
WINTERER, Raymond J., (1919), Mgr. Htg. Dept., Crane & Ordway Co., Fifth and Rosabel Sts., and (for mail), 197 S. Fairview St., St. Paul,
Minn.
WISE, Frank W., (Associate 1918), Sales Engr.. (for mail). General Boilers Co., 207 Davidson Bldg., and 2751 Charlotte St.,-Kansas City, Mo.
WISE, Mason W., (1923), Prop., (for mail). M. W. Wise Co., 215 Glenn Bldg., and R. F. D. No. 2, Atlanta, Ga.
WITTLEDER, Edward A., (Junior 1926), Mech. Draftsman. Narowetz Htg. & Vtg. Co., 1711-17 Maypole Ave., and (for mail),' 3429 Medill Ave.,
Chicago, 111. WOHLMAN, Anton C., (Associate 1923). Pres.,
(for mail),' Metal Equipment Co.. 2033 West 106th St., and 1257 Beach Ave.. Cleveland, O.
WOLF, J. C., (1923), Bayley Mfg. Co.. 732
Greenbush St., Milwaukee, Wis.
41
Roll of Membership
WOLFF. Richard A.. (Junior 1915;1919). Pres.,
(for mail), Wolff & Munier, Inc., 222 East 41st
St.. New York, and Hewlett. L. I.. N. Y.
WOLFSFELD. Charles F., (1923), Chief Drafts
man, Board of Education, Flatbush Ave~ and
Concord St., Brooklyn, and (for mail). Vista
Ave., Bayside, L. I., N. Y.
WOOD, James Sydney, (1926), Estimator, (for'
mail). The Bennett & Wright Co., Ltd., 72
Queen St., E., and 25 McMaster Ave., Toronto,
Ont., Can.
'
WOODLING, Miner D., (1926), Prop., (for mail).
Miner D. Woodling Htg. & Vtg. Co., 428-30
Dwight Bldg., and 301 West 51st Terrace,
Kansas City, Mo.
WOODRUFF, G. G., (Associate 1925). 3121
Main St., Kansas City, Mo.
'
WOOLLEY, Thos. R,, (1916), Sales Engr., Woolley
Engineering Co., 2457 Woodward Ave., and (for
mail). 920 Seward Ave.. Detroit. Mich.
WOOLSTON, Alfred H., (1919), Member of
Firm, (for mail). Bowers Bros. & Co., 2015
Sansom St., and 4815 North 12th St., Phila
delphia, Pa.
WOOLSTON, C. Elmer, (1924), Bowers Bros. &
Co.. 2015 Sansom St., Philadelphia, Pa.
WORM, Amdi, (Associate 1924), Factory Repr..
Flaxlinum Insulating Co., 1425 Grand Ave., and
(for mail), 2424 East 68th St., Kansas City, Mo.
WORTHING, E., (1923), Bayley Mfg. Co., 732
Greenbush St., and 56 Prospect St., Milwaukee,
Wis.
WORTHINGTON, Thomas, (1922), Htg. Engr..
Kewanee Boiler Co., 141 Albany Ave., Toronto,
Ont., Can.
WRIGHT, Charles Leslie, (1925), Mgr., Htg.
and Vtg. Dept.; (for mail). Geo. E. Gibson Co.,
Inc., 441 Lexington Ave., and 54 West 94th.St.,
New York, N. Y.
WRIGHT, Harris H., (1917), Mgr.; C. A. Dun
ham Co., Pacific Steel Boiler Co., 207 Davidson
Bldg., and 1214 E. Gillham Rd., Kansas City,
Mo.
WRIGHT, John C., (1926), Associate, Fletcher
H. Burke--John C. Wright--Associate, 392
Franklin St., Buffalo, N: Y.
WRIGHT, K., (1921), Mgr., (for mail), Johnson
Service Co., 1113 Race St., and Westminster
Apts., Lane Seminary, Cincinnati, O. .
WUNDERLICH, Milton S., (1925). Mech. Engr.,
Flaxlinum. Insulating Co., Hampden and
Wabash, (for mail), 1598 Laurel Ave., St. Paul,
Minn.
`
WYLIE, Howard McW., (1917; 1925), Vice-Pres.,
In charge of Sales, (for mail), The Nash Engrg.
Co., and 51 Elmwood Ave., South Norwalk,
Conn.
.Y
YAGER, John J., (1921), Pres, and Gen. Mgr., Goergen-Mackwirth Co., Inc., 817 Sycamore St., and (for mail), 272 Carlton St., Buffalo. N. Y.
YAGLOU, Constantin P.,* (1923), Instructor in Vtg. and Illumination,- (for mail). Harvard School of Public Health, 55 Van Dyke St., Boston 17, Mass., and 213 Aspinwall Ave.,
. Brookline, Mass. YAMASAKI, Kanjiro, (Associate 1923), Htg.
Engr., 927 Kashiwagi, Yodohash; Tokyo Suburb. Japan. YARDLEY, Ralph W.f (1920). Asst. Supt. of Construction, 111. Penitentiary. Comm., 717 Heggie Bldg., Joliet, and (for mail), 817 N. . Dearborn St., Chicago, 111.. YATES, Walter, (1902), Managing Dir., Mat thews & Yates. Ltd., Swinton, Manchester, Eng. YOUNG, Robert L., (1915), Mech. Engr., (for . mail), Johns-Manville, Inc.. 210 N. Broad St., and 522 North 55th St., Philadelphia, Pa.
Z
ZECK, Alex., (1904), Pres., Alex Zeck & Son Co-
Morgantown, W. Va.
ZIEL, Herbert E,, (1924), Albert Kahn. 1000
Marquette Bldg., Detroit, Mich.
'
ZIRHUT, George A., (Associate 1922), Onarga
Plumbing & Htg. Co., P. O. Box 33, Onarga, IU.
ZOKELT, C. G., (W21), (for mail). Northwest
Engrg. Co., 414 Central .Bldg., and 2355 16th
Ave., S., Seattle, Wash.
.
ZOPATA, Edward L., (Associate 1924), Chief
Mech. Draftsman. University of Michigan, 1310
Granger A^e., Ann Arbor, Mich.'
ZUEHLKE, Rudolph, (1923), (for mail). Zuehlke-
Stoehr Htg. Co., 1701 Clybourn St., Milwaukee,
and 579 15th Ave., Wauwatosa, Wis.
42
Summary of Membership
(Corrected to July 1, 1926)
.
Alabama.......... --............... Arkansas............................. California................ -........ Colorado............................. Connecticut....... .............. Delaware_________ ______ District of Columbia.__ Florida................................ Georgia......... ..................... Illinois................................. Indiana............................... Iowa............ ........................ Kansas.:.................. ........... Kentucky................... . Maine.... ............................. Maryland.......................... , Massachusetts.--............ . Michigan........................... Minnesota......................... Mississippi........... ........... Missouri.................... ........
UNITED STATES
____ 5 Montana.................................................- 4
_____ 1 Nebraska............
8
____ 25 New Jersey.--........................................ 75
____ 30 New York................................................ 381
..... . 22 North Carolina....... ............................. 6
____ 5 Ohio............. .........-................................. 88
____ 11 Oklahoma.-...................................... -..... 4
........ 6 Oregon_________ --................... -........... 1
____ 15 Pennsylvania......................................... 286
....... 249 Rhode Island.......... .....................
8
____ 30 Tennessee........... ....................
-8
........ 14 Texas......................... -.............................. 10
..... 11 Utah................... ............ :................ -........... - 2
........ 3 Vermont...--..................................
4
........ 4 Virginia.......... ......................................... 19
........ 20 Washington..............
20
........ Ill West Virginia........ .......
5
........ 109 Wisconsin..............................
--. 48
........ 50 Wyoming................................................. 1
FOREIGN COUNTRIES
Canada.................. :................................. 70
China...............................--1.............. :
9
Denmark..... ........................................... . 2
England........ ........................................... 18
France........... .......................................... 3
Germany--............................................. 1
Ireland-...........................
1
Japan.......................
5
Mexico...................
1
New Zealand...... ............ Norway............................... Russia....................... ........ Sweden...... ....................... Switzerland....... .............
Turkey--...........
Total Membership.-
1 1 1 1
1
1
116
1927
SUMMARY OF MEMBERSHIP BY GRADES
Honorary Members____ :..................... -.............. -............ 1 Presidential Members................ .................. .......... -........ 19 Members............................................. ........:........... .........-- 1454 Associate Members................................. ................ -........... 342 Junior Members..... .................................. ............................ Ill
1927
43
LIST OF MEMBERS Arranged Geographically
UNITED STATES
ALABAMA
Birmingham-- Boisclair, H. C. Bunnell, E. W. Festorazzi, A. O. Lichty, A. J. Lichty, C. P.
ARKANSAS
Little Rock-- Williams, R. E.
CALIFORNIA
Alhambra-- StockJy, H. A.
Huntington Park-- Berg, A. H,
Berkeley-- Duncan, G. W., Jr.
Glendale-- Dougherty, P. J.
Fresno-- Moler, W. H.
Los Angeles-- Boschke. F. G. Davis, W. A. Hanes, J. W. E. Heibel, W. E. Hubbard, A. M. Larimer, G. B. Nelson, H. A. Ott. O. W. Russel, D. P. Tannehill, L. W. Williams, J. M. Winch. F. R.
Oakland-- Cummings, G. J.
Pasadena-- Gifford, R. L.
San Francisco-- Haley. H. S. Krueger, J. I. Leland, W. E. Penhallegon, R. O.
San Mateo-- Mead, W. R.
COLORADO
Boulder-- Erwin, J. P.
Denver--
Adams, C. W. Bagnall, G. A. Bradbury, G. L. Brickey. J. P. Cullyford, F. S. Daly, J. H. Daubach, C. T. Deranleau, R. L. Elderman, B. E. Fielding. H. H. Foley, W. J. Fuller, R. K. Gillespie, R. B. Herman, H. H. Larimer, W. M. Michael, L. A. Pfeiffer, J. F. Price, F. E. Reuter, A. G. Steiner, J. G. Stoltenberg, T. R. Voigt. C. O. Wallace, A. Wallace, J. F. Ward. O. G. Willis. F. H.
Colorado Springs--
Bumstead, F. E. Jardine, D. C. McCarthy, T.
CONNECTICUT
Bridgeport-- Clement, E. R.
Hartford--
Angel!. W. T. Byrnes, T. F. Moltz, G. N. Libby. L. R. Purcell. A. J.
` ,
New Britain-- Cadwell. W. H:
New Haven--
Dibble. A. B. Hoyt. W. B. Lockwood, E. H. Menzies. F. R.
New London--
Forsberg, W. Hopson, W. T.
S. Norwalk--
Harvey. A. D. Jennings. I. C. Wylie, H. M. W.
Springdale-- Broderick. J. F.
Stamford-- Blackman, A. O.
Waterbury-- Simpson, W. K.
Wlnsted-- Griffin, P. C. Hutton, W.
DELAWARE
Wilmington-- Bulkeley, C. A. Gawthrop, F. H. Kershaw. M. G. Lownsbery, B. F. Schoenijahn, R. P.
DISTRICT OF COLUMBIA
Washington-- Coward, H. Gardner, S. F. Goldstein, A. M. Hills. A. H. Munro, E. A. Myers, D. R. Newshew, J. P. Stock. E. L. Thompson. N. S. Wescbler, G. A.
FLORIDA
Jacksonville-- Irwin, C. W. Moore, D. S.
Tampa-- Chapman, D. W. Smith, V. A.
Winter Haven-- Thomas, B. A.
GEORGIA
Atlanta-- Alger, R. W. Baker,' I. C. Beggs, D. T. Carder, W. W. Guest. P. L. Kent. L. F. Kirby, W. C. Klein. E. W. Markel, F. E. Pottinger, C. T. Rhodes. S. V. Wise. M. W.
44
Columbus--
Denson, W. Dexter, MacD. Hartpence, C. C.
ILLINOIS
Berwyn--
Kitch. S. B.
Bloomington--
Howell. L. Soper. H. A.
Belleville--
Karr, T., Jr.
Champaign--
Brownell, C. D.
Chicago--
Allan, C. D. Allen, H. D. Amstein, A. W. Andel, F. J. Arenberg, M. K. Armspach. O. W. Atkinson, R. E. Baker. E. V. Barrows, C. E. Beling, E. HBerringer, S. H. Birkholz, H. A. Birkholz, H. E. Black, F. C. Bloom. S. C. Bolling, J. E. Boswin, G. A. Braun, L. T. Burger. J. C. Burns,. W. A. Burt. H. J. Carnahan, G. C. Cartland, S. Casey, B; L. Casserly, T. Chenoweth, Cheyney. C. Claffey. E. J Cornell, H. Crawford, W. B. Crone, C. E. Cutler, J. A. Cutter, E. H. Davis. J. H. Deland, C. W. Dewar, J. G. Doherty, J. Douglass, T. C. Dunham, C. A. Ebin, L. Ellis, W. C. Eramert, L. D. Finan, J. J., Sr. Fleming. J. P. Funck, E. H. Gallaher, J. E. Gardner, W., Jr.
' p-sp
American Society of Heating and Ventilating Engineers Guide, 1926-27
Gaylord, F. H.
Gemeny, W. J.
Getschow, G. M.
Getschow, R. M.
Gilmore, R. E.
Good. M. S.
Gordon, E. G.
Gossett, E. J.
Graves, C. C.
Graves. W. B.
Grebe. H. W.
Gross, R. A. . .
Gustafson, T. E. .
Haas, S. L.
Haines, J. J.
Hale. J. F.
Halliday. L.
Hansen. J.
Harbula, M. G.
Hart, H. M.
Hartman, F. E.
Hayes, J. J.
Hayward, R. B.
.Heck, G. L,, Jr. .
Heckel, E. P.
Henrich, G. A.
Herbaczck, E.
Herlihy. G. F.
Herlihy, J. J.
Hill, E. V.
Hoier. W. V.
Hoover, H. E.
Hornung, J. C.
Horton, H. F.
Howatt, J.
Hubbard, G. W. '
Impey, P. F.
Jackson, C. J.
Jenson, J. S.
Johnson, C. W.
Jones, D. J.
Jones, E. F.
Kaiser, H. S.
Keeney, F. P.
Kehm, A.
Kellogg. C. V.
Keyes. R. E.
Kirk, G. H.
Kohlbry. E. G.
Kreissl, H. G.
Kroeger, A.
Lagodzinski, H. J.
Lamb, F. W.
Lang, L. P.
'
Larson, J. M.
Larson, W. C.
Lautenschlager, F.
Lees. H. K.
Lenone. J. M.
Lewis, S. R.
Lippe, E. V.
Lippman, O. S. .
Luce, G. D., Jr.
McCauley, J. H., Jr.
McClellan. J. E.
McDonnell, E. N.
McEvoy, W. J.
McFarland, W. P.
McGregor, G. H.
McLelland. H. B.
Maier, H. F.
Malone, D. G.
Martin, A. B.
Martin, O. W.
Matchett. J. C.
Mathis, E.
Mathis, H.
Mathis, J. W.
Mathy, J.. Jr.
Mehring, G.
Mertz, W. A.
Miller, F. A.
Miller. J. E.
Miller, Leo B.
Milliken, J. H.
Monaghan, T. H.
Montgomery, W. R.
Moran, F. E.
Murch, G. E.
Muth. H.
Nacey, H. M.
Narowetz, L. L., Jr.
Neiler, S. G.
Nesdahl, E.
Newport, C. F.
Nilson, A.
Nilson, K. A.
Nulsen, C. A.
O'Brien, J. H.
Olsen. C. F.
Olson, A. E.
Orr. F. B.
Pask, R. J.
Pearson, F. L.
.
Pitcher, L. J.
Pope, S. A.
Pope, W. A.
Powers, F. W.
Presdee, C. W.
Reynolds. H. A.
Richardson. A. H.
Rietz, E. W.
Rogers. C. W.
RoUins, F. D.
Rosenbach. R- G.
Ryan, H. B.
Scheidecker, D. B.
Seelig. L.
Seltzer, A. P.
Shea. J. R.
Sheriffs, W. A.
Shultz, E.
Sixnonsen, L. A.
Skagerberg. R.
Small, J. D.
Soper, I. N. .
Spielman, G. P.
Sprague, F. H.
Stannard, J. M.
Stedman, C. N. .
Stevens, F. H. _
Stockenberg, Rl
Storm. E. S.
Sutcliffe, A. G.
Thinn, C. A.
Thomas, R. H.
Toenniges. G. C.
Truitt, J. E.
Tweed, C. F.
Valentine, H. D.
Vernon, J. R.
Wagner, J. P.
Walsh, A. F.
Walters, V.
Walters, W. T.
Walther, V. H.
Watkins, J. A.
Watson, J. H.
Watson, R. E.
Weil. M.
Weinshank.- H. T.
Weinshank, T.
Widdicombe, R. A.
Wittleder, E. A.. r
Yardley, R. W.
Decatur-- Shorb. W. A.
Edwardsville-- Blackmore. F. H.
Evanston--
Chubb. J. E. Cuyler, D. H. Mauer, W. J. Thomas, H. G.
Hinsdale-- Van Inwagen, F.
Hubbard Woods-- Frank,'J. M.
Joliet-- Menk, R. W.
Kewanee-- Baker, E. E. Bronson, C. E. Dickson. R- B. Pursell, H. E.
LaGrange-- Eaton, B. K. Linn, H. R.
Moline-- Bradly, J. L: Nelson, H. W. Nordine, L. F. Otis, G. E. Tyler, F. T.
Oak Park-- Alexander, A. D. Blanding. G. H. March, R. C. May, E. A. Muir. G. A. Uhlhorn. W. J.
OIney-- French. B. P.
Onarga-- Zirhut, G. A.
Peoria-- Robb. J. M.
Rockford-- Merwin, G. E.
Urbaoa-- Day. V. S. Kratz. A. P. Willard. A. C.
Waukegan-- Reynolds. H. M.
Winnetka-- Ellis. E. E.
INDIANA
Elkhart-- Shreiner. D. C.
Evansville-- Bergner, W. G. Legeman, R. E.
Fort Wayne-- McCarthy, B. J.
Hammond--: Crannell. C. A.
-Indianapolis-- Ammerman, C. R. Cones, Benj. Dresen, William D. Fenstermaker, S. E. Hagedon, C. H. Hayes, J. G. LaFollette. B. F.
45
Perham, S. H. Repp, H. L. ' Rotz, J. M. Shipp, C. C. Stitt, H. B. Voorhees, G. A. Warren, C. N.
Lafayette-- Hoffman. J. D. Noland. R. W. Orth. J. W.
La Porte-- Shrock, J. H.
Michigan City-- Stockwell, W. R.
M uncle-- Hutzel, M. H. Hutzel. V. C.
Peru-- Pyle. J. W. Thrush, H. A.
South Bend-- Leusch, V. W.
Terre Haute-- Prox, R.' F.
IOWA
Ackley-- Nelson, G. 0.
Cedar Rapids-- Moore. R. F.
. Motejl, J. A.
Clinton-- Brown, W. H.
Des Moines--
Bogardus, G. W. Gunton, W.
Dubuque-- Meston, A. B. Molo, H. E.
Fort Madison-- Theisen, E. F.
Le Mars-- Mathey, N. J.
.
Sioux City-- Orr. M. J.
Waterloo--
Bartley, J. S., Jr. Winterbottom, J. W. Winterbbttom, R. F.
KANSAS
Emporia--
Burnap, C. W. Hill. C. H.
Hutchinson--
Barnes, A. R. Hertz, H. P. Stevens, H. L;
Roll of Membership
Independence-- Sellers, F. J.
Lindsborg-- Holmberg, J. A.
Manhatten-- Hull. B. R.
Wichita-- Buckley, R. B. Cloud, O. E. O'Connor, J. M.
KENTUCKY
Louisville-- . Lewis, J. C. Murphy, H. C.
MAINE
Portland-- Fels, A. B. Merrill, C. J. Webb, J. S.
Woodfords-- Haskell, B. E.
MARYLAND
Baltimore-- Adams, H. Berger, C. D. ColUer, W. I. Dorsey, F. C. Eisert, H. Groscup, W. F. Huether, C. G. L. . Kries, H. A. Leilich, R. L. McCrea, L. W. Munroe, E. K. Posey, J. Reeder, C. L. Vance, L. G. Wachter, J. A.
Chevy Chase-- Cooley, M. S.
Cumberland-- Macfarlane, J.
Howard County-- . Tibbets, J. C.
Linthlcum Heights-- Roger, G. H.
Rockville-- Brunett, A. L.
MASSACHUSETTS
Arlington-- Whitaker, E. C.
Auburndale-- Mason, O. A.
Belmont-- Newcomb. R.
Boston--
Abboud, A.
Bartlett, A. C.
Barton, R. E.
Berchtold, E. W.
Boardman, W. E.
Bfomquist, Edwin G'.
Bostwick, C. G.
- Boyden, D. S.
Brinton, J. W.
Brooks, T. C,
Brown, R. H.
Bryant, Dr. A. G.
Cooper, F. I.
Davidson, P. L.
Densmore, E. D.
Doody, C. A.
Drinker, P.
Duquet. A. M.
Dusossoit, E. A.
Eaton, R.
Ellis, F. R.
Ehrenzeller, A.
Foulds, P. A. L.
Franklin, R. S.
Gleason, G. H.
Gilmore, F. P.
Goodrich, C. F.
Herrick, D. A.
Hostermah, C. C.
Hubbard, A.
Ingalls. F. D. B.
Kelley. J. J.
Kellogg, A.
Kimball, C. W.
Kirraes, E. W.
McCoy, T. F.
McKenna, Wm. N.
McLean, I. D.
Matthews, C. R.
Miller, M. P.
Mower, W. P.
Myrick, J. W. H.
Nichols, G. B.
Osborne, M. M.
Preble, J. J.
Schanze, A. G.
Shaw, E.
.
Shaw. N. J. H.
Shaw, R- E.
Sraallman, W. T.
Stearns, W. F.
.
Stetson, L. R.
Stone, E. R.
Swaney, C. R.
Tilden, E. E.
Tuttle, J. F.
Underhill, W. W.
Whittemore, E. H.
Wiegner, H. B.
Whitten. H. E.
Wilcox, Wm.
Wilson, H. M.
Yaglou, C. P.
Cambridge-- Baker, R. H.
r mu, Vy. a . Haddock, I. T.
Heath, F. R. Klonower, A. A.
Murphy, J.
Dorchester--
Plunkett, J. H. Shaw, N. J. H. Swan, T. J.
Everett-- McMurrer, L. J.
Fitchburg-- Karlson, A. F.
Framingham-- Fitch, W. S. Scott, A. P.
Hyde Park-- _ Scheibel, A. H. '
Lawrence-- Bride. W. T.
Indian Orchard-- Moynihan. J. C.
Lowell--
Foisy, G. A. Jenkins, H. E.
Lynn-->
Feehan, J. B. Morgan, F. H. Pool. S. H. Reardon, J. A.
Malden-- Moulton, D.
Mattapan-- Mitchell, C. H.
Medford-- '
Dane, I. S. Suits, G. A.
`
Medford Hillside-- Granfield, J. J.
Melrose-- Smallman, E. W.
Newtonville-- Jones, W. T.
Pittsfield-- Robbins, L. G.
Reading-- ' Florence, W. E., Jr.
Wellesley Hill-- Gilling, W. F., Jr.
West Newton--
Cousens, W. S. Place. H. R.
West Roxbury-- Roberts, W. L.
West Somerville-- Crosby, C. F.
'West Medford-- Higgins, J. M. .
Weymouth-- Clough, L.
Woburn-- Parker, P.
Wollaston-- Hodgdon. H. A.
Worcester--
Dix, H. M. Hawes, H. R.
46
MICHIGAN
Ann Arbor--
Backus, T. H. L. . Brender, P. E.
Cuthbert, I. N. Emswiler, Prof. J. E. Hutzel, A. F. - Zopata, E. L.
Detroit--
Addy, R.
Baier, W. P.
Barth, H. E.
Bishop, F. R.
Blodgett. W. H.
Boales, W. G.
Brown, E. R.
Calvert, N. W.
Clark, E. H.
Collamore, R.
Connell, R. F.
Coon, T. E.
Dauch, E. O,
Davis. L. J.
Decker, E. M.
Degan, J. E.
Donahue. E. S.
Dubry, E.
Dwyer, J. V.
Emerick, S. H.
Fuller, J. L.
Giguere, Geo. H.
Goss, M. H.
Graeff, R. J. -
Hamlin, H. A.
Harms, W. T.
Harrigan, E. M.
Harris, E. E.
Heydon, C. G.
Hill, N. J.
Hillman. R. W.
Hoffman. C. F,
Hogan, E. L.
Hubbard, N. B.
Johnson, F. W.
. Johnston, W. B.'
Killian, M. A.
Knight, A. B.
Lance, J.
"
Landers, J. J.
Linhard. H. V. .
Little, C. W.
Little, E. R.
Locker, C. W.
Lovelace, J. A.
McCoIl, J. R.
Mclntire. J. F.
McLean, D.
McNair, E. E. .
Meyer, J. W., Jr.
Miller, J. F. G.
Morgan, C. S.
Morse, C. T.
Paetz, H. E. .
Parrott. L. G.
Partlan, J. W.
Peckham, R. R.
Peterson, H. K.
Pittelkow, A. G.
Purcell. F. C.
Purcell, R. E.
Roney, T. G.
Rowe, W. A.
Russell, W, A.
Saulson. S.
Schildmiller, G. H.
Shuell, F. W.
Smith, L. L.
Snell, E.
Snyder, J. W.
Soderberg. C, H.
Spitzley. R- L.
Spurgeon, J. H.
American Society of Heating and Ventilating Engineers Guide, 1926-27
Vaile. R. Vemer, W. F. Walker, J. H. Wallich, A. C. Walton, H. L. Whelan, W. J. Whiteley, J. Whitten, H. W. Wilcox, O. H. Wilde, R. S. M. Wigle, B. M. Williamson, A. H. Wooley, T. R. Ziel, H. E.
Dowaglac-- Firestone, J. F.
Grand Rapids--
Alexander, C. H. Bradfield, W. W. Carroll, W. J. Hepburn, G. V. Miller, H. N. Pearson, H. D.
Highland Park--
Foster, W. M.
Holland--
Cberven, V. W.
Kalamazoo--
Blaney, C. A. Kersjes, W. Monroe, L. O.
Lansing--
Distel, F., Jr.
Muskegon-- Johnson, P. H.
Pleasant Ridge--
Petherick,. D. H.
Saginaw--
Swartwout, J. D.
Standish--
Burr, R. J.
MINNESOTA
Duluth--
Foster, C. . Page, S. H.
Minneapolis--
Andresen, A. W. Blair, W. B. Brown, J. H. Burns, E. J. Burritt, C. G. Cash, T. T. Challman, S. A. Cowles, B. E. Cummins, G. H. Elliott. A. D. Forfar, D. M. Geirish, H. E. Gordon, E. B., Jr. Harris, J. B. Huch, A. J. Jaynes, E. L. Jones, D. C. Lamson, F. S. Lewis, E. B. Martenis. J. V. Meyer, H. J. Morgan, G. C. Munson, M. G. Probst, A. H.
Ridler, H. C. Rowley, F. B. Sanford, A. L. Sperzel, H. J. Tangeman, B. W. Uhl, E. J. Uhl, W. F. Welter, M. A.
Owatonna--
Clarkson. W. B.
St. Paul--
Bredeson, C. R. Buenger, A. Gausman, C. E. Heagler. J. M. Jones, E. F. Otto, R. W. Rockart, E. R. Rollins. L. M. Ruff, D. C. Stewart, E, A. Wagner, A. M. Winterer, F. C. Winterer, R. J. Wunderlich, M. S.
Winona--
Olsen, A. J.
MISSISSIPPI
Jackson--
Paine, K. A. Peters, H. G.
MISSOURI
Independence--
Cook, B. F. .
Kansas City--
Arthur. J. M., Jr. Bidwell, R. E. Burton, C. A. Caleb, D. Campbell, E. K. Carr, C. H.
v.oa, w. r.
Dodds, F. F.
Downes, N. W.
Dunlap, R. L.
Ellis. J. E.
Fehlig, J. B.
Fiske, T. D.
' Gillham. W. E.
Gorton, G. H.
Griffin, F. A., Jr.
Henrici, H. C.
Hitchcock, F. P.
Jackson. T. L.
Johnson, R. B.
Jones, E.
Joyce, W. P.
Kitchen, F. A.
Kitchen, J. H.
Lewis, J. G.
McDonald, J. C.
McIntyre, w. N.
Mason, R. B.
Millis, L. W.
' Natkin, B.
Naylor, B. C.
Painter, D. H.
Parks, V. H.
Pease. J. G.
Pensihger, L. C.
Pines, S.
'
Sheppard, F. A.
Stephenson, L. A.
Thompson, H.
Waddington, E. C.
Weiss, C. A. Wise, F. W. Woodling, M-. D.
Woodruff, G. G. Worm, A. Wright, H. H.
Kirkwood-- McMorran, F. J.
Liberty-- Dudfield. A.
Springfield-- Cooper, H.
.
St. Louis--
Baetz, H.
Bayse, H. V.
Bowers, J. S.
Bradley, E. P.
Bradley. J. T.
Breitenbach, W. J.
Buder, C. G.
Cook, C. D.
. Cooper. J. W.
Coughlin, R. J.
De Nellie, J. L.
Edwards, D. F.
Eichler, A. '
Falvey, J. D.
Ferguson, R. R.
Forgan. D. M.
Foster, J. M. -
Gale, T. J. C.
Gallaher. A. J.
Graves, R. E.
Gunn, J. F.
Hallett. E. S.
Halley. W. H.
Harris, H. W,
Hester. T. J.
Humphreys, A. E.
Kaysing. H. C.
Keiser, W.
Kinealy, J. H.
Klein, W. A.
Lane, A. M.
Langenberg. E. B.
Legier, E. W.
.
Meara, J. J.
Messmer, G. E.
Milward; R. K.
Moon, L. W. .
Niestrath, W. H.
Pickett, C. A.
Quentin, E. H.
Robertson, J. M.
Rosebrough, R. M.
Rossman, V. D.
Russell. W. L. A.
Sachleben. E. H.
Schulze, B. H. `
Smith, W. M.
Soderaann, W. C.
. Stack, M. F.
* Stammer, E. L.
Thomsen, W. T.
Walters. A. L.
White. E. A.
Sedalia-- Suter, G.
MONTANA
Billings-- Cohagen, C. C. Tooker, C. C.
Bozeman-- Powers. F. I.
Helena-- . Bain, J. G.
47
NEBRASKA
Hastings-- Gedney, K. H.
Lincoln-- Phelps, G. H.
Omaha-- Davidson, H. MacD. Hayes, P. M. McCulley, D. E. ` Shea, M. B. Waddington, B. C.
Scottsbluff-- Davis, O. E.
NEW JERSEY
Arlington-- Krueger, W. E.
Atlantic City-- Nesbitt, A. J. Nesbitt, J. J. Strouse, S. B.
Audubon-- Whitby. S. S.
Beverly-- Mann, C. P.
Bloomfield-- Bartlett, C. D. Hochuli. H. W. Taylor, T- S.
Bogota-- Heebner, W. M.
Camden-- - Eveleth, C. F
Kappel, G. W. A. Strandwitz, W. J. Webster, E. K. Webster, W.
Cranford-- Terrell. H. A.
East Orange-- Crone, T. E. Merkel, F. P.' Schroth, A. H. Terry, F. W. Turno, W. G. W.
Elizabeth-- Cornwall. G. T. Pearce, C. E. Wheller, H. S.
Englewood-- Steinke, B. H.
Essex Fells-- Stacey, A. E,, Jr.
Gloucester-- . Schrader, C. C.
Haddonfield-- Dobbs, C. E.
Roll of Membership
Hasbrouck Heights-- Goodwin, S. L.
NEW YORK
Hilton--
Heiles. F. C.
Jersey City--
Butler, P. D. Calahan, J. J. Jones, H. L. Reichwald, C. W. Ritchie, W.
Albany--
Hynes, L. P. Murray, T. F. Naden, L. J. Ryan, H. J. Taggart, R. G.
Bronxville-- Barr, G. W.
Jobstown-- Allinson, O. H.
Kearney-- Vogelbach, O.
Lyndhnrst--
Ehrlich, M. W. Knapp, A. F.
Maplewood--
Cadmus, R. Smith, M. S.
Merchantville-- Binder, C. G.
Montclair-- Chapman, F. T.
Newark--
Bailey, J. H. . Bentz, H.
Carrier, W. H. Janet, H. L. Kieb. A. A. Lewis, L. L. Lindeman, H. Lyle. J. I. Noble. M. Paget, B. K,, Soule. L. C. West. P.
Passaic--
Boeker, C. H. Hanldn, R. Morris, C. R.
'
Paterson-- Pryor, F. L.
Plainfield--
MacDougall, B. W.
Tobin, G. J.
.
Ridgefield-- Davis, A. C.
Riverton-- Brunt, T. B.
Short Hills-- . Fouilhoux, J. A.
South Orange-- Baird. F. X.
Trenton--
Black. J. J. A; Piper, A. Piper, E. R. W. Russell. W. E.
Union City--
Darton. A. W. Taverna, F. F.
Upper Montclair-- Tomlinson, M. C. M.'
West New York--
Maupai, R. G. Ricker. J. J.
Brooklyn--
Atwater, L. W.
Bampton, C. M. Bender, C. p.
Blest. F. S. Bondy, W. S.
Chadeayne, Geo. D. Crutchley, E., Jr. Dwyer, T. F. '
EelIs, H. B. Ely. F. E. Emery, W. D.
Gardner, B. F. Gomston, M. H. Grotz, A. B.
Hanley, J. H,, Jr,
Hinchman, E. G. Kiewitz, C. Kreitner. W. McCann, F. G.
McCJoskey, J. Mandeville, E. W. Moss, E.
Musaus, J., Jr. Phillips, F. W.. Jr. Robertson, G. A.
Ruppert. E. H. Scollay, U. G. Seward. P. H. Shay. R. A.
Siegel, L. Thuem, A. E. Tisnower, W. Tusch, W.
Upington, G. P.
Vivarttas, E. A. ' Weibert, C. J.
White. H. AWilliamson, F. W
Buffalo--
Ahlff, A. L.
Beman, M. C.
Booth, C. A.
Bresnahan, J. J.
Burke, F. H.
Case, E. W.
Cherry, L. A.
Chittenden. F. J.
Criqui, A. A.
Danforth, N. L.
Davis. J.
Dempsey, H. P.
Dillman. E. J. .
Drake, G. H.
Dyer, O. K.
Eggleston, L. W.
Evans, C. A.
Farnham, R.
Farrar, C. W.
Flink, C. H.
Frank, G. W.
Frank, O. E.
Frankel. G.
Fraser, W. G.
Gauvin. L. G.
Gibbs. H. E.
Harding, L. A.
Hedley, P. S.
r
Howell, F. B. `
Hutzel. H. F.
Jackson, M. S. :
Kamman, A. R.
Kingsley, E. A. Love, C. H. Madison, R. D. Monin, E. H.
Moran, R. J. Mosher, C. H.
Padginton, G. Quigley, W. J.
Reinhard, E. L. Riley, D. H.
Rooney, M. A. Ruckel, J, B. Scheer, F. W.
Schoepflin, P. H. Snyder, J. S.
Thornton, R. T. Wadley, C. P. Walker. G. F.
Wendt, E. F. Wendt, H. W. Yager, J. J.
Dunkirk-- Sawade. C. A.
Elmira--
Davenport, E. A. Davis. B. C.
Frutchy, A. E. McGlenn, G. R. Roberts, J. H.
Freeport-- Ellison, J. H.
Geneva--
Herendeen, F. W. Smith, S. S.
Glens Falls-- Robinson, A. G.
Hartsdale-- Longwell, H..E.
Hempstead-- Hinkle. E. C.
.
Herkimer-- Ertman, B. R.
Irvington-on-Hudson--
Bastedo, A. E. jKittle, F. C.
Ithaca--
Sawdon, W. M. Williams, J. W.
Larchmont-- Gaylor, W. S.
Middletown-- Sanborn. Si H.
MiUbrook-- Pizie, S. G. .
Morton--
.
Stangland, B. F.
Mt. Vernon-- .
Donnelly, W. C. Hunt, R. B. Obert, C. W.
. '.
New Rochelle-- Vose. R. H. . ;
New York City--
Abrams, A.
Addams, H.
Adler, A. A.
Ailing, H. W.
Almirall, J. A.
Amiral, J. H.
Anderson, H. J.
Angus. R. A.
Annagnac, A. S.
Bachler, L. J.
Barwick. T.
Baum, A. L.
Beatty, D. J.
Beebe. F. E. W.
Bennitt, G. E.
Berman, L. K.
Binder, I.
Birch, H. A.
Bishop, C. R. .
Blackmore. J. J.
Bloom, W.
Bolton, R. P.
Booth, H. N.
Brassington, A. F.
Browne, A. L.
Brunner, H.
Buensod, A. C.
` Callahan, M. J.
(L. I. City)
Carpenter, R. H.
Carty, T.
Cary, A. A.
Chase. J. M.
Clark. W. D.
(Richmond Hill, L. I.)
Cosgrove, W. M.
. Cullen. H. J.
(Jamaica, L. I.)
Currier, C. H.
Dailey, J. A.
Dailey, J. F.
Darts, J. A.
Davis, P. L.
(Jamaica, L. I.)
Dill, H. O.
.
Dillon. H. R.
Doherty, J. A.
Donnelly. J. A.
Donnelly, R.
Donoghue, J. J.
Dornheim, G. A.
(L. I. City)
Driscoll. W. H.
(L. I. City)
Duff, K.
Durand, W. L.
Eadie. J. G.
.
Easterbrooks, C. C.
Edelston, S. H.
Emerson, R. R.
Engle, A.
Engle. H. J.
Evans, W. A.
Faulkner. D. H. .
Fay. F. C.
Febrey, E. J.
Feldman, A. M.
Fiedler, H. W.
Fleisher, W. L.
Fletcher. S. W.
.Forgee, F. A.
Friedman. A.
Glore, E. F.
,
Goldberg, H. M.
Goldschmidt, O. E.
Gombers, H. B.
Good now. W. F.
Grill, G. E.
.
Hanson, H. A.
Heap. W. E.
(W. New Brighton)
Heatherton, J. M.
Hedges. H. B.
.
Hoffman,-C. S. .
4S
American Society of Heating and Ventilating Engineers Guide, 1926-27
Hoffman, G. D.
Rodman, R. W.
Weider, F. J.
Hook, M. G. Hubert, J. W.
Ross, J. O. Russell. W. A.
Welsh. H. S, Wilder, E. L.
Hunter, H. R.
Samuels, S.
Wiley. C. S.
Hunter, W. S. Hyman, W. M.
Schloss. N. L. Schmidt, G. G.
Saranac Lake--
Innis, H. R. Ireland. T. H. .
Schneider, C. Scott, C. E.
Miller, P.
(Rockville Center.L.I.) Issertell, H. G. ' Jacobus, Dr. D. S.
Scott, E. A. Scott. G. M. Seelig, A. E.
Scarsdale-- Janes, A.
Jalien, J. J.
Johnson. E. B.
.
(W. New Brighton,
S. I.) Johnston. W. H.
Sellman, N. T.
Senior, R. L.
Siegel, J. F.
Simpson, W. A.
, Spofford, H. H. R.
Schenectady--
Baxter. R. A. Harbison. E. J. Vogel, A.
Junkers. H. Kahn. H. P.
.
Spooner, H. R. (Hollis. L. I.)
Syracuse--
Keasbey, A. P. Keenan, P. F.
Kellogg. T. M. Kiewitz, A. A.
Staples. W. H.
Steinke, G. B.
.
Steinmuller, J. H.
' (Long Island City)
Acheson, A. R. Bradley, R. H. Dennis, C. K.
(L.T. City) Kimball! D. D.
Kirk, L. G. Klauss, L. J.
Stern, H. R. Sternberg. I. E. Stewart, C. W. Still, F. R.
Troy--
Brown, S. J. Wilson. C. H.
(Farmingdale, L. I.) Sullivan, D. A.
Knowles, A. F.
Swain, W. A.
Utica--
Koithan, W. S.
Sweeney, S. H.
Brandeles. H. J.
Lawrence, C. E. -
Taltmadge, W.
Cantwell, W. T.
LeBeau, J. F. LeCompte, W. G.
Tazelaar, P. Timmis, P.
DeRosa. A. Hamjy, P. W.
London. I. Lucke, C. E.
Timmis, W. S. Timmis, W. W.
Hughes, W. C. Norris, E.
Lyle. E. T.
(Jamaica. L. I.)
Norris, J. K.
McKiever, W. H. McMahon, W. W.
Titzell. J. E. ` Van Norden, E. M.
Phegley, F. G. , Schneider. P. W.
McMillan, L. B.
Vogt. J. H.
Steinhorst, T. F.
Macon, W. W.
Walker, W. K.
Maier, G. M. Marshall, H. H.
Martin, G. W.
Wallace, G. J.
Walsh, M. Waltherthum, J. J.
West Point-- Bryant, P. J.
Matthiessea, H. G. F.
Medway. F. J. Meyer, H. C., Jr.
Ward, G. E.
White Plains--
Watters, P. J. (Port Richmond, S. I.)
Callahan. T. H.
Miller, C. A. Miller, E. A. Miller, R. B. Munder, J. F., Jr. Munier, L. L.
White, E. S. White. M. G. White. W. G. Wilson. F. A.
(Bellair. L. I.)
Yonkers--
Brabbee. Dr. C. Greason, D. R. Kelly. J. G.
Murphy, J. R. Murphy, W. A.
Wolff, R. A. Wolfsfeld, C. F.
Rainger, W. F.
Nicol. N, C, Norton, F. W.
(Bayside, L. I.) Wright. C. L.
NORTH CAROLINA
Oaks. O. O.
O'Donnell, T. J. Offner, A. J.
N. Tonawanda--
Charlotte--
Ohmes, A. K.
Benedict, E. R.
Christian, C. W.
Olvany, W. J.
Kline. W. J.
Hackney. H.
Oswald, W. L.
Slade. A. J.
Parkhill, D.
Greensboro--
Parter, S. C.
Patomo, S. A. S. Paulding, L. G. Peacock, J. K. Petersen, G.
Ogdensburg-- SkeUy. J. F.
Port Chester--
MacKenzie. B.
Raleigh-- Templin, C. L.
Pfeiffer, B. J.
Pfuhler, J. L. (W. New Brighton.
Donovan, J. E. Pratt, E. D.
Weldon-- . Chappell, T. A,
S. I.) Pieron, A.
Poughkeepsie---
Winston-Salem--
Pinder. P. H.
Place. C. R. Pryor, R. W., Jr.
Doherty, J. J. Hawley, E. F.
Bahnson, F. F.
Purinton, D. J.
Quirk, C. H.
-
Raisler, L.
Raisler, S.
'
Ralston. L. T. M.
Reed, J. F.
Reynolds, T. W.
Riblet, W. H.
Richardson, D. R.
Riley. C. L.
Ritchie, E. J.
Rochester--
Archer, F. S.
Aronwits, W. Axeman. J. E.
Coe, I. B. Coe, R. T. Devendorf, W. F. DeWolf. R. D. 'Dobson, G. G. Roebuck, W., Jr. Steiin, C. J., Jr.
OHIO
Akron-- Humphrey, D. E. Stanford, L. E. Thatcher, G. S.
Cincinnati-- Allen, L. E. Blomfeldt, A. A.
Bostain, J. C. Doyle, W. J. Green, W. C. Grier. W. Kiefer. C. J. Kitchell. H. N. Sprouil, H. E. Stanwood, J. B. Wright, K.
Cleveland--
Adrianse, P. R. Anderson, E. L. Bailey, E. P. Beyer, J. E. Bray. D. S. Bridges. F. G. Brueggeman, A. R. Clark, H. J. Clark. W. C. M. Colby. C. W. Daugherty. F. M. Davis; R. G. . Deex, C. J. Empkey, G. J. Farley, J. W. Gottwald, C. Graham. W. D. Greene, W. C. Harrison, B. S. Harrison, J. M. Hautz, E. H. Kinner, J. E. Kissick, J. J. Klie, W. Leonhard. F. Matzen, H. B. Mayer, R. S. Mouat, T. G. Nobis, H. M. Osmon, T. R. Quay, D. M. Rather, M. F. Rudio. H. N. Stackhouse. R. M. Starks, V, E. Szekely, E. Tate. S. Van Sickle. W. B. Wamke, F. E. Weager, T. A.
Cleveland Heights--
Heinle, E. L. Neitzel, C. W.
Columbus--
Babbitt, E. C. Babbitt, E. F. Brown. A. I. Fleming, R. A. Mackensen, W. H. Richards, F. A. Wheeler, O. J. Williams, A. W.
Dayton--
Brusman, H. M. Gibbons. M. J., Jr. Haas. W. . Hoer8ting, F. J.
Lakewood-- '
Kammerer, W. Q. Maurer, E. D.
Lorain--
Butler. T. F. Lane, E. K.
49
Roll of Membership
Mansfield--
.
Tait, G. M. '
PalnesvUle-- Hobbs, J. C.
Pataskala-- Erickson, H. A.
Ravenna-- Franzheim, G. W.
Toledo--
Baker, H. C. Bryce, S. D. Gibbs. F. C. Holmes, J. Rogers, A. C. Storey, T. G.
Warren--
Alien, L. E. 1 Lyman, W. I. Moulder, A. W.
. Youngstown-- Chofluii C. C.
OKLAHOMA
Oklahoma City--
Dolan, R. G. Loeffler, F. X. Rae, T. W.
Tulsa-- Jones, E.
.
OREGON
La Grande-- Anderson, S. A., Jr.
PENNSYLVANIA
Alleghany County--
Blackmore. G. C.
Allentown--
Buel, H. G. Edwards, J. E. Hersh, E. E. Hersh, G. W. Korn, C. B.
Ardmore--- Haynes, C. V.
'
Beacon Falls-- Van Alen. W. T.
Bradford--
Goodloe, A. M. Green, C. E.
Bridgeport-- Longenecker, H. J.
Chambersburg-- .
Kottcamp, H. A. Mehaffey. W. C.
Chester-- Boyd, W. R.
Cannonsburg-- Edwards, C. H.
Drexel Hill--Del. Co.
Jones, L. T. Miller, A. A.
Erie-- Gannon, J. E.
.
Germantown--
Huckel, F., Jr. Reeves, C. G.
Glenside-- Davis, B. H.
'
Harrisburg--
Eicher, H. C. Fllson, F. E.
Geiger, L H. Koehler, G. T. Kressly, M. E. Selig, E. T.
Indiana-- Lumsden, E. R.
Duemler, F. C.
Dunlap, W. G. . Eagan, G. A. Eagan, W. H.
Eastwood, H. F. Eckardt, C. A. T. Edgar, A. C. Eggly, H. J., Jr.
Feige, H. W. Feltwell, R. H. Fest. L. T. .
Fitz. J. C. . Fleming, T. C. Francis, I. H. Francis, W. C. Galligan, A. B. Galligan, J. H.
Gant, H. P. Gibson, J. H. Gilbert, M. F.
Giles, E. H. Gillett, M. C.
Glassey. J. W. Gomersall, W. H. Gretzinger, F. Grumbein, I. F.
Hackett, C. P. Hackett, H. B. Hellerman, H. H.
Johnstown-- . . Rinkenberger, G.
Lancaster--
Grossman, H. M. Holbrook, F. M. . Huzzard, E. C. Vaux, F. J.
McKeesport---
Eckles. R. A.. Dugan, T. M.
.
New Castle-- McEUroy, G. S.
Norristown--
Frost, R. V. Gormly, J. Gormly, P.
Oil City-- Heagerty, W. H.
Philadelphia--
Adams, B. Anderson, C. A.
Arnold, R. S. Bachler, H. C. Bateman, W. H., Jr.
Beahm, R B., 2nd Black, E. N. Black. H. G. Bogaty, H. S. Bolsinger, R. C. Boon, G.
Bornemann, W. A. Boyd, D. K.
Braemer, W. G. R. Breen, J. W. Brogan. J. J. Burt, J. E. .
Cadzow, W. S. Carstens, E. Cassell, J. D. .
Cavileer, J. V. . Clarkson, R. C., Jr. Cooper, T. W.
Culbert, W. G.
Dambly, A.' E. Dome, W. R. Doud, M. P. Driggs, L. L:
Hetherington, E. T,
Hibbs, F. C.
Hoben. R. J.
Hoft, P. J.
Holloway, R. B.
Homann, F. A.
Hopkin, W. E.
Hucker, J. H.
Hunt. Phil M.
Hurley. J. C.
Hutchison, J. E.
Ickeringill, J.
Iddles, A.
Jellett, S. A.
John, B. F.
Jones, I. R.
Jones, R. E.
Kauffman, R.
.
Kauffmann, F. F.
Kellogg, H. D.
Kerney, T. F.
Kipe, J. M.
Kline, G. W., Jr.
Kriebel, A. E.
Levin, J.
Lewis, G. C.
Lewis, T.
Liner, J. J.
Locke, H. W. .
Lord, F. R.
Lyman. S. E.
McCarthy, C. J.
McClintock, A.; Sr.
McClintock, A., Jr.
McClintock, J. L.
McGowan, T. F.
MacDade, A. H.
Mappett, A. S.
Matson, T.
Mellon, J. T. J.
Mensing, F. D.
Mervine, T. R.
Meyer, R. C.
Miller, W. C.
Meyers, J.
Minnich, H. S.
Monday, C. E.
Moody, L. E.
Morgan, R. C.
Mott. A. C.. Jr.
Murphy, E. T.
Murphy, W. R.
Myers, G. W. F.
Nelson, F., Jr.
Nunan, J. F.'
Nusbaura, L.
50
O'Connell, E. D. Ogelsby, W. P. Paine, L. G. Patterson, D. F. Pease, H. H. Pennell, S. H. Perkins, F. C. Phillips, F. T. Plewes, S. E. Reuss, E. H., Jr. Rice. W. W. Roberts, H. L. Rothrock, J. T.Rugart, K. Sabin, . R. Sanbern, E. N. Sanville, C. P. Scanlon, J. J.
Schopp, W. J. . Setzer, W. C.
Sewell. J. M. Shaw, C. E. ' . Sheffler, M. Sommer, L. J., Jr. Speckman, C. H. Stone, G. F. Strong, R. C. . Sutterley, W. W. Taliaferro, R. R, Thompson, J. Thompson, W. P. Tinker, W. E. Walther, H. J. Walther, O. N. .Wandless, F. W. Wegmann, A. Welamb, V. N. Why, H. B. Wild. W. H. Wilson, B. W. Wilson, J. J. Woolston. A. H. Woolston, C. E. Young, R. L.
Phoenixville--
Wilmot, C. S.
Pittsburgh-- .
Anderson, F. P. Arthur, H. W. Aston, J. Bowman, H. A. Brauer, R. Bushhell, C. D. Chester, T. Clark, F. C. Clark, W. H. Dibble. S. E. Digby, H. E. Downes, H..H. Easter, T. J. Edwards, P. A. English, A. T. Evans, E. Cv Firsching, F. J. Gunther. F. A. Hanson, E. W. Heilman, R. H. Hitner, F. M. Hook, C. H. ' Houghten, F. C. Ingels, M. Jones, A. M. King. T. Langdon, J. D. McCormick, E. T. McGinness, J. E. McGuigan, L. A. McKenzie, P. C. . McIntosh, F. C. McMurray, J. Maginn, P. F.. Mansfield, F. A. Moore, H. L.
American Society of Heating and Ventilating Engineers Guide, .1926-27
Morgan, J. S. Morrow, C. F. Nicholls, P. O'Neill, P. * Phillips, L. Rederer, B. S. Richards, S. F. * Schley, A. A. Speller, F. N. Stanger, R. B. Stitt. E. W. Stokes, R. E. Tenkonoby, R* J* Todd, J. Waldron, C. W. Walker, J. B. Weber, G; A. Wheeler, C. W. Williams, O. E. Willis, R. P.
Reading-- Luck, A. W. Nidey, J- E. Reese. H. L. Wasner, W. M.
Ridley Park-- Bartlett, C. E.
Roxborough--
Blankin, M. F.
Scranton--
Gilboy, J- PSaville, T. H.
Sewickley--
. Black, G. E.
Shamokln-- Gortner, J. W.
Swarthmore--
Clarke, H. W.
Swissvale-- Timmerman, M. M.
Wormleysburg-- Miller, T. G.
York-- Lindemuth, N. R Sowers, P. E.
RHODE ISLAND
Providence-- ' Coleman, J. B. Dunlevy. T. R. Gibbs. E. W. Hartwell, J. C. Husband. E: W. Poole, E. F.
Pawtucket-- Martin, J. F.
Washington-- Wilson, H. A.
TENNESSEE
Chattanooga-- Russell, H. C.
Knoxville-- Reeder. F. C.
Memphis-- Allen, W. H. Brewster, D. R Gray, W. E. Gray, W. E. Sodemann, P.
Nashville-- Brown, F. ' Hailey, S. H.
TEXAS
Taznaqua-- Hadesty, A. L., Jr.
Upper Darby, P. O.-- Hoisington, N. P. Pisel, J. W.
Warren-- Schellhammer, A. L.
Washington-- McVehil, E. W.
West Chester-- Palmer, G._ J.
Wllklnsburg-- Rasmussen, E.
Williamsport--
Chambers, W. E. Gaulin, R. P. McLain, R. D. Pfeiffer, J. F.
`
Austin-- Giesecke, F. E.
Dallas-- Taylor, R. F. Van Zandt, J. H.
Fort Worth-- Burnett, E. S. Skinner, H. W.
Galveston-- Helphingstein, O.
Houston--
.
Barnes, A. F.
- San Angelo-- Hogue, C. T.
San Antonio--
Diver, M. L. Ebert, W. A.
.
Willow Grove-- Houpt, G. A. Slight. I.
Wlssablckon-- Peterman, R. M.
UTAH
Salt Lake City-- " Coogan, J. Cooper, A. W.
VERMONT
WISCONSIN
Burlington-- Austin, F.'L. Raine, J. J. Wheelock, H. C.
N. Ferrlsburg-- Breckenridge, L. P.
VIRGINIA
Eau Claire-- Grosvold, F. E.
Fond Du Lao-- Ahern, T. L.
Fort Akinson-- Shodron, J. G.
Lynchburg-- Cleland, James E. Doering. F. L. Wiley, E. C. Wilson, E. J. F.
Newport News-- Noland, L. U.
Green Bay-- Kingsbury, J. W.
La Crosse-- Anderegg. R H. Johnson, T. R. Trane, R. N.
Norfolk--
Montagna, C. j. Peebles, J. K. Wilson, E. K.
Richmond--
Austin, W. E. ' Beverley, R. C. Childress, W. L. Connolly. Chas. I. Johnston, J. A.
Koch. H. O. Schulz. H. I.
Roanoke^ Wash, W. P.
.
Staunton--
Moffett, W. S. Moran, F. N. .
'
WASHINGTON
Bremerton-- Bysom, L. L.
Seattle--
.
' Ayers. A. E. Carsten, W. H.
Cox. W. W. DeLong, F. B.
Dudley, W. L. Eastwood. Prof. E. O. Eckart, C. H.
Godfrey, F. H. Lavan, P. J.
Mallis, W.
Moore, J. C. O'Connell. P. M. Ruddell, W. H. Stark, E. A.
Twist, C. F. Weber, E. G. L.
Zokelt, C. G.
Spokane--
DeLong. H. B. Nelson, R. L.
Madison--
Larson, G. L.
Milwaukee--
Berghoefer, V. A. . Bowers, A. F.
Cook, H. R. Downey, F. E. Downey, P. C. Ellis. H. W. Goethel. A. C. Grassier, E. Jackson, C. H. Jones. E. A. Jung, J. S. Juttner, O. J. Meadows, F. H. Miller, C. W. Miller, H. M. Mueller, P. E. Noll. W. F. Olson, R G. Ostrander, L. F. Page. H. W. Pflugradt, A. G. Randolph, C. H. Rice, C. J. Schwab, H. E. Ver Halen, E. T. Volk, J. H. Weimer, F. G. Whomes, H. Wilson, W. H. Wolf, J. C.
Superior--
Jarvis, G. E.
.Wausau--
Bassler, E. M. Cornwell, F. E. Sargent, L. F.
Wauwatosa--
Dannies, F. R.
WEST VIRGINIA
Charleston-- Matthews, J. K. Meyers, S. H. Shanklin, J. R.
Morgentown-- Zeck, A.
Wheeling-- Hare, E. S.
West Allis-- Erickson, M. E.
Wisconsin RapidsEron, L. J.
WYOMING
Cheyenne-- Meyring, A. S.
51
Roll of Membership
CANADA
Calgary,- Alberta-- Clarke, S. S. Latham, G. Walker, A.
Victoria, B. C.-- Sheret, A.
Galt, Ont.-- Evans, J. McCaffrey, H. G.
Guelpl-- Taylor, M. A.
Halifax, N. S.-- Eagar, R. F. Gray, G. A. Harrington, C.
Islington, Ont.-- Wilson, G. T.
Kingston, Ont.-- Arkley, L. M. Druce, J. J.
Montreal, Que.-- Fry. J. D. Friedman, F. J. Grahame, D. F.
' Hamlet, F. A. Hamlet, T. F. Higgins. T. J. Kastello, A. Osborne, G. H. Peterson, E. A. Wiggs, G. L.
Quebec-- Dube, W.
Sault Ste.-- Wilson, W. S.
Toronto, Ont.-- Addy, E. Angus, H. H. Baldwin, W. H. Birreli, A. L. Blackball, W. R. Church, H. J. Clifton. W. F. Cole, G. E. Dickey, A. J. Doughty, C. J. Duncan, J. M. Flett, H. R. Gaby, F. A. Henion, H. D.
FOREIGN COUNTRIES
Laidlaw, E. J.
Leitch, A. S.
.
McHenry, R. W. M.
McMichael, P. MacKenzie, J. J.
f
Mansell, P. C. .
Millar, R. J.
Moore, H. S.
O'Neill, J. W.
Paterson, J. S.
Paterson, W. B. .
Peterkin, S. M.
Playfair, G. A.
Purely, A. K.
Quesnel. N.-W.
Shears. M. W.
Sheffield. E. B.
Sheppard, W. G.
Smith, P. J.
Thomas, M. F.
Wood, J. S.
Worthington, T.
Vancouver, B. C.--
Givin, A. W. Johnston, R. E. Leek, W. McCreery, H. J.
ENGLAND
Hull-- Hill. E. G. T.
Leeds-- Jennins, H. H.
Leicester-- Nesbit, D. M.
Liverpool--' Honiball, C. R.
London-- Barker, A. H. Craig, F. B. Groom, S. L. Herring, E. Nobbs. W. W. Robinson, S. W. Russell. J. N.
Westmount-- Bladon, J. B.
Windsor, Ont.-- . Bowden, F.
Manchester--
Chadwick. J. B. Row, O. M. Yates, W.
Winnipeg-- Fulton. W. J. Kirk. C. D. Mackie, J.
CHINA
South Manchuria-- Katsumoto, E.
Southport-- , Atkinson, R. E.
Sunderland-- Vatix, N.
Trowbridge-- Haden, G. N. Haden, W. N.
Shanghai-- Alt, H. L. Cooper, T. R. Doughty, C. J. Hauss, C. F. Merritt, C. J.
Tientsin-- Baker. H. W. H. Barre, L. S.
DENMARK
York-- Fryer, F. G.
FRANCE
Paris-- Beaurrienne, A. Downe, H. S. Modiano, R-
Copenhagen-- Reck, A. B.
GERMANY
Smedegade, Slagelse-- Stuttgart--
Ulrich, K. F.
Klein, A. R.
IRELAND
Cork-- Barry. P. I.
JAPAN
Tokyo-- Kitaura, S. Sekido, K. Shinohara. S. Shozo, S. Yamasaki, K.
MEXICO
Yucatan--- Croft. T.
NEW ZEALAND
Dunedin-- Davies, G. W.
NORWAY
Christiania-- Tjersland, A.
RUSSIA
Petrograd-- Sakouta, M. L.
SWEDEN
Stockholm-- TheoreU. H. G. T.
SWITZERLAND
Winterthur-- Meier, K.
TURKEY
Constantinople-- Scipio, L. A.
52
PAST OFFICERS American Society of Heating and Ventilating Engineers
1894
* President........... ................................... Edward P. Bates 1st Vice-President-............... ........... .Wm. M. Mackay 2nd Vice-President___ _____________Wiltsie F. Wolfe Srd Vice-President-................. ,,.Chas. S. Onderdonk Treasurer _______________ ____Judson A. Goodrich Secretary...... ..................................... ....... --....L. H. Hart
Board of Managers
Chairman, Fred P. Smith
Henry Adams `
A. A. Cary
Hugh J. Barron '
Tames A. Harding
Edward P. Bates, Pres. L. H. Hart. Secy.
Council
Chairman, R. C. Carpenter
Albert A. Cryer
Chas. W. Newton
F. W. Foster
Ulysses G. Scollay, Secy.
1897
President--___ ______ :.................. _.Wm. M. Mackay 1st Vice-President----------- ---- -----------------H. D. Crane 2nd Vice-President...................................Henry Adams Srd Vice-President................................. _A. E Kenrick Treasurer.'................... ....................Judson A. Goodrich Secretary....................... ........................_H. M. Swetland
Board of Managers
Chairman, R. C. Carpenter
Edward P. Bates
Stewart A. Jellett
W. S. Hadaway, Jr.
Wiltsie F. Wolfe
Wm. M. Mackay, Pres. H. M. Swetland. Secy.
Council
Chairman, Albert A. Cryer
John A. Fish
James Mackay
Wm. McMannis
B. F. Stangland
1895
President...... .......................................Stewart A. Jellett 1st Vice-President..-........................ .Wm. M. Mackay 2nd Vice-President........ ....... ....... Chas. S. Onderdonk . Srd Vice-President___ ________ ___ M. Quay Treasurer_______________ ______ Judson A. Goodrich Secretary...... .................. ...... .........................X. H. Hart
Board of Managers
Chairman. James A. Harding
Geo. B. Cobb
Ulysses G. Scollay
Wm. McMannis
' B. F. Stangland .
Stewart A. Jellett, Pres. L. H. Hart; Secy.
. Council
Chairman, R. C. Carpenter
Henry Adams
T. J. Waters
Edwatd P. Bates
Albert A. Cryer, Secy.
. 1898
.
President........................... .................... Wiltsie F. Wolfe
1st Vice-President___________________ _J. H. Kinealy 2nd Vice-President------- ------ --------------- A. E, Kenrick Srd Vice-President.____________________John A. Fish Treasurer_____________ _____ ___ Judson A. Goodrich Secretary.--........ ............................... ..Stewart A. Jellett
Board of Managers
Chairman, Wm. M. Mackay
Thomas Barwick
A. C. Mott
John A. Connolly
Francis A. Williams
Wiltsie F. Wolfe, Pres. Stewart A. Jellett, Secy.
Council
Chairman, R. C. Carpenter
Henry Adams
W. S. Hadaway, Jr.
Albert A. Cryer
Wm. McMannis
Wiltsie F. Wolfe. Pres. Stewart A. Jellett. Secy.
- 1896
President............... .................................R. C. Carpenter 1st Vice-President.... ....................... ...... _D. M. Quay 2nd Vice-President............................. Edward P. Bates Srd Vice-President............ ......... ................F. W. Foster Treasurer...... ............................... ..Judson A. Goodrich Secretary..... 1................ ........................ ...........L. H. Hart
Board of Managers
Chairman, Wm. M. Mackay
Hugh J. Barron
Stewart A. Jellett
W. S. Hadaway, Jr.
Wiltsie F. Wolfe
R. C. Carpenter, Pres. L. H. Hart, Secy.
( Council
. Chairman, A. A. Cary
Albert A. Cryer
-B. F. Stangland
Wm. McMannis
J. J. Blackmore, Secy.
1899
President ...............................................Henry Adams 1st Vice-President.--................................... D. M. Quay 2nd Vice-President...... .......................... -A. E. Kenrick Srd Vice-President........................ Francis A. Williams Treasurer....................... ................. Judson A. Goodrich Secretary____________ __ _________ Wm. M. Mackay
Board of Managers
Chairman, Stewart A. Jellett
B. H; Carpenter
Wm. Kent
A. A. Cary
Wiltsie F. Wolfe
Henry Adams, Pres.
Wm. M. Mackay, Secy.
Council
. Chairman, R. C. Carpenter
John Gormly
Wm. McMannis
W. S. Hadaway, Jr.
B. F. Stangland
Henry Adams, Pres.
Wm. M. Mackay, Secy-
53
Roll of Membership
1900
President_____ _________ _D. M. Quay 1st Vice-President____________________ A. E. Kenrick 2nd Vice-President________ _____ Francis A. Williams Treasurer.Judson A. Goodrich Secretary_________ __________ ;__ ,.Wm. M. Mackay
Board of Governors
Chairman, D. M. Quay
Wm. Kent, Vice-Chm. C. B. J. Snyder
R. C. Carpenter
D. M. Nesbit
John Gormly
Wm. M. Mackay, Secy.
1905
President____ Wm. Kent 1st Vice-President________ _________ ,,R. P. Bolton 2nd Vice-President________ __ _____ C. B. J. Snyder Treasurer_______________________ Ulysses G. Scollay Secretary-- --...................................Wm. M. Mackay
' Board of Governors
' Chairman. Wm. Kent
.
R, P. Bolton
James Mackay '
C. B. J. Snyder
B. F. Stanglahd
B. H. Carpenter
J. C. F. Trachsel .
m
A. B. Franklin
. Wm. M. Mackay. Secy.
1901
President------------------------------------------ J. H. Kinealy 1st Vice-President___________________ A. E. Kenrick 2nd Vice-President _________ ______ Andrew Harvey TreasurerJudson A. Goodrich Secretary._________________ _______.Wm. M. Mackay
Board of Governors
, Chairman, J. H. Kinealy
Wm. Kent, Vice-Chm. John Gormly
R. C. Carpenter
C. B. J. Snyder
R. P. Bolton '
Wm. M. Mackay, Secy.
1906
President_____________________________ John Gormly
1st Vice-President.:_________________ C. B. J. Snyder 2nd Vice-President.____________________ T. J. Waters Treasurer ___ _________________ Ulysses G. Scollay Secretary___________________ ____ .Wm. M. Mackay
Board of Governors
Chairman, John Gormly
C. B. J.Sny&zr, Vice-Chm. A. B. Franklin
T. J. Waters
James Mackay
R. C. Carpenter
B. F. Stangland
Frank K. Chew
Wm. M. Mackay, Secy.
1902
-
President'.A. E. Kenrick 1st Vice-President._________.Andrew Harvey
2nd Vice-PresidentRobert C. Clarkson
Treasurer.................................. ......Judson A. Goodrich
Secretary._________________
Wm. M. Mackay
' Board of Governors
Chairman, A. E. Kenrick
-
John Gormly, Vice-Chm. J. H. Kinealy
R. C. Carpenter
C. B. J. Snyder
Wm. Kent
' Wm. M. Mackay, Secy.
1907
PresidentC. B. J. Snyder 1st Vice-President...___ ________ __ ,,James Mackay 2nd Vice-Presidentu._________________ Wm. G. Snow Treasurer_______________________ Ulysses G. Scollay Secretary_________________________ Wm. M. Mackay
. Board of Governors
'
Chairman, C. B. J. Snyder
-
James Mackay,Vice-Chm. Edmund F. Capron
Wm. G. Snow R. E. Atkinson
Frank K. Chew A. B. Franklin
R. C. Carpenter
Wm. M. Mackay, Secy.
1903
PresidentH. D. Crane
1st Vice-President...........................................Wm. Kent
2nd Vice-President
______________ R. P. Bolton
Treasurer .___........... ......... Judson A. Goodrich
Secretary.Wm. M. Mackay
Board of Governors
Chairman, H. D. Crane
C. B.J. Snyder,Vice-Chm. A. E. Kenrick
R. C. Carpenter
Geo. Mehring
John Gormly
Wm. M. Mackay
Secy.
1908
PresidentJames Mackay 1st Vice-President________;_______ Jas. D. Hoffman 2nd Vice-President_________________ B. F. Stangland Treasurer________________ _____ _Ulysses G. Scollay Secretary.Wm. M. Mackay.
Board of Governors
Chairman, James Mackay
Jas. D. Hoffman, Vice-Chm. John F. Hale
B. F. Stangland
August Kehm
R. C. Carpenter
C. B. J. Snyder
Frank K. Chew
Wm. M. Mackay, Secy.
1904
.
PresidentAndrew Harvey
1st Vice-President______ ______ -John Gormly 2nd Vice-PresidentRobert C. Clarkson Treasurer______ _________________ Ulysses G. Scollay
Secretary.Wm. M. Mackay
- Board of Governors
Chairman, Andrew Harvey
John Gormly
H. D. Crane
Robert C. Clarkson
A. E. Kenrick
J. J. Blackmore
C. B. J. Snyder
R. C. Carpenter
Wm. M. Mackay, Secy.
.
1909
*
President______........... ............. .............Wm. G. Snow.
1st Vice-President.................... ................ August Kehm
2nd Vice-PresidentB. S. Harrison Treasurer________________ _______ Ulysses G. Scollay
Secretary________________ ________ Wm. M. Mackay
Board of Governors
Chairman, Wm. G. Snow
August Kehm, Vice-Chm. Samuel R. Lewis
B. S. Harrison
James Mackay
John R. Allen
B. F. Stangland
R. C. Carpenter
Wm. M. Mackay, Secy.
54
American Society of Heating and Ventilating Engineers Guide, 1926-27
1910
President --------- ------- ---- -___ ___Jas. D. Hoffman 1st Vice-President.............. .........................R. P. Bolton 2nd Vice-President......... .................... Samuel R- Lewis Treasurer ______________________ Ulysses G. Scollay Secretory ________________ _____ ___ Wm. M. Mackay
Board of Governors
-
Chairman, Jas. D. Hoffman
R. P. Bolton, Vice-Chm. Judson A. Goodrich
Ssunuel R. Lewis
John F. Hale
Geo. W. Barr
James Mackay
R. C. Carpenter
Wm. M. Mackay,- Secy.
1911
President_______________ .____ - 1st Vice-President___________
2nd Vice-President Treasurer___________________ Secretary____________________
____ R. P. Bolton ____ John R; Allen
...... .A. B. Franklin
Ulysses G. Scollay __Wm. W. Macon
- Board of Governors
Chairman, R. P. Bolton
John R. Allen, Vice-Chm. James H. Davis
A. B. Franklin
Jas. D. Hoffman
John T. Bradley /
August Kehm
R. C. Carpenter /
Wm. W. Macon, Secy.
1915
PresidentDwight D. Kimball 1st Vice-PresidentHarry M. Hart 2nd Vice-Presidents._____ _____ Frank T. Chapman Treasurer.______ ___,,____,,_______ ...Homer'Addams Secretary---------- :----------...,,J. J. Blackmore
. Council
Chairman, Dwight D. Kimball
Harry M. Hart,Vice-Chm. Samuel R. Lewis
Frank T. Chapman
Frank G. McCann
Homer Addams
J. T. J. Mellon
Frank I. Cooper
Henry C. Meyer, Jr.
E. Vernon Hill
Arthur K. Ohmes
Wm. M. Kingsbury
J. J. Blackmore, Secy.
1916 ' President __________________________ Harry M. Hart 1st Vice-PresidentFrank T. Chapman 2nd'Vice-PresidentArthur K. Ohmes Treasurer__________________ ________Homer Addams Secretary___ ________________ _____ _Casin W. Obert
Council
Chairman, Harry M. Hart
1912
President^'._____ _________________ ...... John R- Allen 1st Vice-President....___-.1_____________ John F. Hale 2nd Vice-President____________ Edmund F. Capron
F.T. Chapman, Vice-Chm. E. Vernon Hill
Arthur K. Ohmes
Dwight D. Kimball '
Homer Addams
Henry C. Meyer, Jr.
Charles R. Bishop
Fred R. Still
\
Treasurer__________________
James A. DonnellFyrank I. Cooper
Walter S. Timmis
Secretary__________________
,,._.Wm. W. MaconMilton W. Franklin
Casin W. Obert, Secy.
Board of Governors
. . Chairman, John R. Allen
John F. Hale. Vice-Chm. Dwight D. Kimball
Edmund F. Capron . Samuel R. Lewis
R. P. Bolton
Wm. M. Mackay
Jas. D. Hoffman
Wm. W. Macon, Secy.
1917
President__________________ J. Irvine Lyle 1st Vice-President!Arthur K. Ohmes 2nd Vice-President.______ ___ ___ ___ ...Fred R. Still Treasurer.______________________ ____Homer Addams Secretary____ ____.......Casin W. Obert
President___________ 1st Vice-President__
2nd Vice-President Treasurer________ __ Secretary_______ ____
_______ John F. Hale ______ A. B. Franklin
..Edmund F. Capron
...James A. Donnelly _____ Edwin A. Scott
Board of Governors
Chairman, John F. Hale .
A. B. Franklin,Ficc-CAm. James A. Donnelly
John R. Allen
Dwight D. Kimball
Edmund F. Capron
Wm. W. Macon
R. P. Bolton
James M. Stannard .
Frank T. Chapman
Theodore Weinshank
Ralph Collamore
Edwin A. Scott, Secy.
1914
.
President__________ :-- ________ ___ Samuel R. Lewis 1st Vice-President___ . _________ Edmund F. Capron
2nd Vice-President___ ______ ___ .Dwight D. Kimball Treasurer____________ ............. ..... James A. Donnelly . Secretary___ _______ .......................... J. J. Blackmore
Council
Chairman, Samuel R. Lewis
E. F. Capron, Vice-Chm. John F. Hale
Dwight D. Kimball
Harry M. Hart
John R. Allen
Frank G. McCann
Frank T. Chapman .. Wm. W. Macon
Frank I. Cooper
James M. Stannard .
James A. Donnelly.
J. J. Blackmore, Secy.
Council
Chairman, `J. Irvine Lyle
A. K. Ohmes, Vice-Chm. Charles A. Fuller
Fred R. Still
Harry M. Hart
Homer Addams
E. Vernon Hill
Davis S. Boyden
James M. Stannard
Bert C. Davis
` Walter S. Timmis
Milton W. Franklin
Casin W. Obert, Secy.
1918
President________________ !Fred R. Still ^ 1st Vice-PresidentWalter S. Timmis 2nd Vice-President_____________ _____ E. Vernon Hill Treasurer___ ______ ____________ ____Homer Addams - ` Secretary___________________________ Casin W. Obert
Council
Chairman, Fred R. Still
W. S. Timmis. Vice-Chm. J. Irvine Lyle
Homer Addams.
E. Vernon Hill
William H. Driscoll
Frank G. Phegley
Howard H. Fielding
Fred. W. Powers
H. P. Gant
Champlain L. Riley
C. W. Kimball
Casin W. Obert, Secy.
55
Roll of Membership
1919
President___ :Walter S. Timmis 1st Vice-President.1................................. E. Vernon Hill Snd Vice-President-iMilton W. Franklin Treasurer..;...............................................Homer Addams Secretary.................... J_______________ Casin W. Obert
1923
President:___________ ..H. P. Gant 1st Vice-President......... ........................Homer Addams Snd Vice-Presidents............... ,,.*._____ E. E. McNair Treasurer__________________________ Wm. H. Driscoll Secretary__________ ..................................... C. W. Obert
Council
- Chairman, Walter S. Timmis
E. Vernon Hill, Vice-Chm. Frank G. Phegley
Homer Addams
Fred. W. Powers
Howard H. Fielding
Robt. W. Pryor, Jr.
Milton W. Franklin
Champlain L. Riley
Harry E. Gerrish
Fred R. Still
George B. Nichols
Casin .W. Obert, Secy.
Council
Chairman, H. P. Gant
Homer Addams, Vice-Chm. E. S. HaHett
W. H. Carrier
Alfred Kellogg
J. A. Cutler
Thornton Lems
S. E. Dibble
J. R. McNair
Wm, H. Driscoll
Perry-West
Casin W. Obert, Secy.
i
' 1920
PresidentE. Vernon Hill 1st Vice-President-............. ......... Champlain L. Riley Snd Vice-President,_____________ ____Jay R. McColl Treasurer__________________________ Homer Addams Secretary..... .......... .................................. Casin W. Obert
1924
Presidents____Homer Addams 1st Vice-President.... .............................. --S. E. Dibble Snd Vice-President........... .............William H. Driscoll Treasurer..................................................... -..Perry West Secretary__.............................................. F. C. Houghten
Council
Chairman, E, Vernon Hill
C. L. Riley, Vice-Chm. Jay R. McColl
Homer Addams
George B. Nichols
Jos. A. Cutler
Robt. W. Pryor, Jr.
-Wm. H. Driscoll
W. S. Timmis
A. C. Edgar
' Perry West
Alfred Kellogg
Casin W. Obert, Secy.
Council
Chairman, Homer Addams
S. E. Dibble. Vice-Chm. W. E. Gillham
F. Paul Anderson
L. A. Harding,
W. H. Carrier
Alfred Kellogg
J. A. Cutler
Thornton Lewis
William H. Driscoll
Perry West
H. P. Gant
F. C. Houghten, Secy.
1921
_______________ jay R* McColl H P. Gant
Secretary_________ _ ..
1925
5v F.. Dihhle .......Wm. H. Driscoll
Secretary.......................................
Council
- Chairman, Champlain L. Riley
Jay R. McColl,Vice-Chm. E. S. Hallett
Homer Addams
E. Vernon Hill
Jos. A. Cutler
Alfred Kellogg
Samuel E. Dibble
E. E. McNair
Wm. H. Driscoll
Perry West
H. P. Gant
Casin W. Obert, Secy.
Council
' Chairman, S. E. Dibble
Wm. H. Driscoll, Vice-Chm. W. T. Jones
Homer Addams
% Thornton Lewis
F. Paul Anderson
:J.H. Walker
W. H. Carrier
Perry West
J. A. Cutler
A. C. Willard
W. E. Gillham
F. C. HougHten, Secy.
1922
President____________________________ Jay R. McColl 1st Vice-President...... .................... .............. H. P. Gant Snd Vice-President1...........................Samuel E. Dibble Treasurer................................................. Homer Addams Secretary........................................... ...... Casin W. Obert
1926
President................................ ........ ...........W. H. Driscoll 1st Vice-President.............................. F. Paul Anderson Snd Vice-President ...............................A. C. Willard Treasurer...... ....... :....................................W. E. Gillham Secretary...........I...................................A. V.' Hutchinson
Council
Chairman, Jay R. McColl
H. P. Gant, Vice-Chm. L. A. Harding
Homer Addams
E. E. .M....c..N...a.. ir
Jos. A. Cutler
H. J. Meyer
Samuel E. Dibble
C. L. Riley
Wm. H. Driscoll
Perry West
E. S. Hallett
Casin W. Obert, Secy.
Council
Chairman, W. H. Driscoll
F. Paul Anderson, Vice-Chm. C. V. Haynes* ,
W. H. Carrier
'
W. T. Jones '
J. A. Cutler
.
E. B. Langenberg
S. E. Dibble
Thornton Lewis
W. E. Gillham
J. F. Mclntire
A. C. Willard
56
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