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CHAPTER 29
1959 Guide
because then the control of water Sow through the coil is not as critical.
In some face and bypass damper control is used in conjunction with valve control. The coil valve, operating in sequence with the damper, must be closed when the face damper is closed. The coil arrangement should be such as to minimize air temperature pick-up when the bypass damper is at or near the open position.
WAT TREATMENT
Water treatment is seldom required where there is con tinual re-use of the water. Where none of the water is lost, except such minor amounts as may accompany venting or be due to occasional leakage at stuffing boxes, it is usually suffi cient to make the water slightly alkaline when the system is first filled. Where the make-up water is appreciable, treat ment appropriate to the mineral content and quantity is indicated. See Closed Recirculation Systems in Chapter 55.
It is desirable that systems'with steam driven auxiliaries be arranged to conserve the heat in the exhaust. Steam driven auxiliaries can rarely be justified unless the exhaust steam can be used.' Usually this is accomplished with a minor ad dition in capital expenditure. Fig. 15 shows an arrangement for boiler feed where exhaust steam is available.
STORAGE
High-temperature water systems may be operated to even out the peak loads and low loads within 24-hr cycles by storage. Storage is usually accomplished by the bypassing of water from the flow to the return mains and thereby storing heat in the return main for future use, or storing heat in accumulators. Systems which .experience normal peaks may obtain as much as 15 percent added capacity through such heat storage.
REFERENCES
1J. G. Frost: High temperature hot water boiler plant at Dartmouth (The Engineering Journal of Canada, June 1953).
' O. S. Lieberg: High temperature water (dir Conditioning, Heating and Ventilating, September 1955, p. 83; November 1955, p. 85; January 1956, p. 69). Also published as a separate bulletin.
*E. A. Pierce: High pressure hot water systems (The Heat ing and Ventilating Engineer <4 Journal of Air Conditioning, London, 1942).
`J. R. Kell: High presure hot water (Beating, Piping and Air Conditioning, April 1948, p. 93; June 1948, p. 97; August 1948, p. 91; October 1948, p. 85).
'George Applegate, Jr.: British and European design and construction methods (ASHAE Joubnal Section, Heating, Pip ing and Air Conditioning, March 1958, p. 169).
'C. A. Carter and B. L. Sturtevant: Design of high tem perature water systems for military installations (ASHAE Joubnal Section, Heating, Piping and Air Conditioning, Febru ary 1958, p. 109).
(E. G. Hansen and William Liddy: A flexible high pressure hot water and steam boiler plant (Power, May 1958, p. 109).
* Centrifugal Pump Section, Standard* of the Hydraulic Institute, p. B(Vi)-9 (Hydraulic Institute, New York, 1955).
'Oscar Faber and J. R. Kell: Heatina and Air Conditioning of Buildings (Architectural Press, London).
BIBLIOGRAPHY
J. H. Keenan and F. G. Keyes: Thermodynamic Properties of Steam (John Wiley & Sons, Inc, New York, 1936, 1st ed.).
5. R. Lewis: Hot-water system of advantage in meeting plant heating requirements (Heating, Piping ana Air Conditioning, May 1938, p. 319).
K. Aschof: Die Calliqua-Heisswasserheizung (Die Warmer Zeitschrift fur Dampfkessel Ac Machinenbetrieb, October 1931).
F. R. L. White: Some notes on high-pressure hot-water heat ing (Journal of the Institution of Heating and Ventilating En gineers, 1945).
P. L.. Geiringer: High pressure hot water (Heating, Piping and Air Conditioning, May 1948, p. 103).
T. W. Reynolds: The high temperature water system (Heat ing and Ventilating, September 1951).
High Temperature High Pressure Hot Water Heating Man ual No. 2685 (Dunham-Bush, Inc., New York, 1955).
Charles Broder: Heating and air-conditioning a civilian air port (ASHAE Joubnal Section, Heating, Piping and Air Con ditioning, March 1958, p. 147).
6. W. Brown: Marine applications of high-temperature wa ter (ASHAE Joubnal Section, Heating, Piping and Air Con ditioning, March 1958, p. 161).
E. M. Thompson: Economic evaluation of high-tempera ture water (ASHAE Joubnal Section, Heating, Pipmg and Air Conditioning, April 1958, p. 140).
CHAPTER 30
PANEL HEATING
Application Methods: Embedded Piping for Ceilings, Waifs, or Floors; Warm Air and Electricatfy Heated Ceilings, Waffs, or Floors; Output from Panel Surfaces: Radiation, Convection and Combined Heat Transfer, Panel Heat Losses; Design of Panel Hearing Systems: Warm Water Ponds for Plaster, Metal, and Concrete Ceilings; Wall Panels and Concrete Floor Panels, Installation Details and Accessories, Controls,- Warm Air and Electric Panels
N this chapter the term. Panel Heating, is used to describe
I a method of space heating in which heat is supplied by large heated areas of interior room surfaces operating at relatively low surface temperatures (80 to 125 F). The heating elements usually consist of warm water piping, warm air ducts, or low temperature electrical resistance elements embedded in, or located behind, ceiling, wall, or floor sur faces.
Panel heating may be considered as another method of convenient and effective space heating. The heat loss require ments may be calculated in the conventional manner except that the heat loss through the area occupied by the heated panel need not be included. An assumed or computed reverse heat loss from the panel, however, should be* included in determining heating main size and the boiler load. The heat release from the panel is expressed in terms of hourly heat output per square foot of surface. The room air temperatures to be maintained are approximately the same as those maintained by heating systems employing cast-iron radiators, convectors, or warm air ducts.
This chapter does not include a separate discussion of such topics as the influence of radiation on human comfort, the mechanisms by which human beings release heat, and other simitar topics- that apply to all methods of twating interior spaces for.human comfort. The reader is referred to Chapter 6 for a detailed discussion of these subjects.
antimony, or capillary brazing alloys, be used. All piping should be subjected to a hydrostatic test of at least three timw the working pressure, but not less than 150 psig.
The most common forms of panels applied in panel heating arc: (1) embedded piping for ceilings; (2) embedded piping for walls; (3) embedded piping for floors; (4) air heated ceilings, walls, or floors; (5) electrically heated ceilings, walls, or floors.
Embedded Piping for Ceilings
When piping is embedded in ceilings, the construction used is.generally one of the following:
a. Pipe or tube is embedded in the lower portion of a con crete slab, generally very close to its lower surface. If plaster is to be applied to the concrete, the piping may be placed directly on the wood forma. If the slab is to be used without plaster finish, then the piping should be iastailed not less than X in. above the undersurface of the slab. Fig. 1 shows this method of construction. The minimum coverage must be in compliance with the local building code requirements.
APPLICATION METHODS
Rg. 1 .... Coils in Structural Concrete Slab
The great majority of panel installations of the past 50 years (which is the period of the modem utilization of this method of heating) have used warm water as the heating medium which is circulated in embedded piping. More recently, the use of warm air ducts, and embedded electrical heating elements, has come into favor, especially where specific local factors have influenced such use. Steam has been used only occasionally because of the problems which result from its higher temperature.
When the heating medium is warm water, both, ferrous (steel or wrought iron) or non-ferrous (generally copper or
aluminum) pipe or tube are used widely in ceiling, wall, or floor panel construction. Tube sizes used are X, H, aod X in. OD, while piping is generally X, H, or 1 in. IPS. Where coils are embedded in concrete or plaster, no threaded joints should be used for either pipe coils or mains. The construction should be of all-welded type. Changes in direc tion should be made by bending the pipe itself, rather than by use of fittings. Solder-joint fittings are used for nonferrous heating coils and piping. It is recommended that a medium temperature solder of 95 percent tin--5 percent
b. Pipe or tube is embedded in a metal lath and plaster ceiling. If the lath 'is suspended to form a hung, ceiling, both the lath and the heating coils are securely wired to the sup porting members in such a way that the lath is below, but in good contact with the coils, as shown in Fig. 2. Plaster is then applied to the metal lath, care being taken to embed the coil, as shown in Fig. 2.
c. Copper tube of the smaller diameters is attached to the underside of wire lath or gypsum lath. Plaster is then applied to the lath to embed the tube, as shown in Fig. 3.
d. Other forms of ceiling construction are prefabricated panels of metal, composition board, wood paneling, etc., hav ing warm water piping, tube, or channels built into the panel sections.
Coils are usually of the sinuous type, although someheader
or grid type coils have been used in ceilings- Coils may be of either ferrous or non-ferrous' pipe or tube, with coil pipes
spaced from 4X to 9 in. on centers, depending on the re
quired output, pipe or tube size, and other factors.
Where plastering is applied to pipe coils, a standard three-
coat gypsum plastering specification1 is followed, with a
minimum of X m* of cover below the tubes when the tubes