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484
CHAPTER 26
1965 Guide And Data Boole
Table 8 .... Heat toss Calculation Sheet for Uninsulated Residence (Rg. 1)
A tooto or Spoe*
s fort of Sbwhn or Inffitratkm Air
C
Hot Area or Acr Yolotno
0. . . Cwfthd
Closet Bedroom B
Closet Bedroom C
Closet Bedroom D ;. Closet.
Bathroom 1
Bathroom 2
Living Room
Dining Boom
and and and
Glass Ceiling Infiltration 0f)
Walls Glass Ceiling
. Infiltration 04)*
Walls Glass Ceiling Infiltration 04)* -
Walla Glass Ceiling Floor over garage Infiltration (34)*
1
238 sq ft
40 sq ft 252 sq ft 1510 ah*
0.29 0.45 .
0.74. 0.018*'
156 sq ft
40 sq ft. 170 sq ft 1020 eflt*
` 0.29 . 0.45
0:74
0.028*
;
114 aq ft 27 sq ft .. 129 sq ft' 874 era*
0.29 0.45 0.74
0.018*
118 sq ft ' 20 sq ft 110 sq ft
110 sq ft . 660 cfh* .
. 0:29
- 0.45 0.74 =
0:28 0.018*
' Walls Glass . ' Ceiling
Infiltration (!)
30 sq ft
0.29
14 sq ft-
0.45
,
55 sq ft 440 cfhk
0.74 0.018*
Walls Glass Ceiling
Floor over garage Infiltration (1)*
79 sq ft 9 sq ft-
35 sq ft 35 sq ft.. 280 cinb
0.28 0.45 0.74, 0.26. 0.018* "
Walls
` -- -
Walls (adjoining garage) Glass
Floor - "
1
Infiltration (lK)h
267 sq ft 94 sq ft 50 sq ft
' 294 sq ft
3745 cfhk .
0.290.39f 0.45 .. .
, ...0.018*
, .Walla '* Glass (doors)
Glass (windows) Floor
Infiltration (1#).<
., 166 sq ft 35 sq ft 20sq ft
168 sq ft 2140 eft* `
" 0.29 ' 0.85 -
: - 0.45 .
' o.oi8*f
Ritchen and En trance to Garage
Walls'
Walls (adjoining garage) Glass .
Door'
Floor
'
Infiltration (1%)J
Lavette and Vesti bule
Walls
Walls (adjoining garage) Glass Door Floor
.. Infiltration (lH)k
Entrance Hall
. Walls Door Ceiling*
.Infiltration (2)' -
Garage/
Walla i Glass
Doors
^Infiltration (l>f)" "Floor
Gain adjoining rooms
96 sq ft' * 0.29
51 sq ft.
0.39* ,
18 sq ft
0.45
. I7.sq ft -125gq ft
0.51
1595 cfhk
0.018*
82 sq ft
85 aq ft 9 sq ft 19 eq ft
' 30 aq ft *383 cfhk
0.29 0.39*: ' 0.45 0.51 ;
0.018*
39 aq ft 21 sq-ft 87, sq ft 1110 efhk_
0.29 0.38 0.74
. 0.018*
_j 167 sq ft 53 sq ft : 44 eq ft
2360 cfhk 29 ft*
'0.29
' 1.13 .0.51 0.018* 0.81
Recreation Room* ----------------------
" Walls Glass Floor Infiltration (1)B
\
220 sq ft
8 sq ft 287 sq ft 2010 efhk
. 0.10 1.13 0.10 . 0.018*
e
Temp. 0i5S
85
85. 44.8* 85 '
85 . ' 85, - -
44.8* 85
85 85 44.8* - 85
85 85' ' f ^ 44.8* " 40*.., .
85:
85 85
'. 44.8* 85.
85' 85
. 44.8* 40*
85
t
85 - .... . 40* 85.. -
F
' Hoot tan (6Jv per,hour)
5870 1530 8350 2310 .
-3840 1530 5630
1560
'
2810 1 1030
4280 1340
2910
' 770 3640 1140* 1010
740 -
540 " 1820
670
1750 340' 1190
360 430
6580 1470 1910
.c Tottdt 13,060
9,460 9,470 . 3,770 4,070
. 85 .
' ' 85 85
85
. 5730 .r
4090 2530 : : " 770 ;;
15,690
85
85 40* , . 85 40
3270 `
2370 800* 690
" ' 350""
10,660
85
2440
6,650
85 2020 40* 1330* 85 340 85 820
85
85 85
44.8* 85
'
590
960 680 2990 1700
5,100 6,330
SO* 2420 50 3000". 50 , 1120 50 2120
SO 1180
-5100* "
.4,740
43 950
85 770
25 720
85
3080
",:"5,520
TOTAL
112,080
Heatingitfxid'
:-
485
Notes for Table 6 .... Heat Loss' Calculation for Uninsulated Residence IRg: -1} *
* Tbe indoor-outdoor temperature difference is 75 -- (-- 10) or 80 F except where otherwise noted. k Volume of infiltration, cfh -- (no. air changes) X (Hoot or ceiling area) X (ceiling height).
From Equation 5a." The ceiling beat losses are calculated by estimating the attic temperature and then calculating the loss through the ceiling using
the proper temperature .difference. This unheated attic is not ventilated during winter months. The attic temperature ia estimated
from Equation 1 to be 30.2 F when the outdoor temperature is -- 10.F and room temperature is 70 F. The temperature difference is
then 75 -- 80.2 or 44.8 deg. For the insulated residence, attic temperature becomes 4.6 F and temperature difference 75 -- 4.6 " 70.4 deg.
Temperature in garage assumed to be 35 F. i Coefficient for wall adjoining garage calculated on basis of metal lath and plaster on both sides of studs (U =* 0.39).
t
One-half of value.from Table 2, Chapter 25, for storm windows or weatherstripping,
a Exposed on two sides, weatherstripped windows offset by fireplace. Use 1J.
...
Window on one side weatherstripped but double-doors are hard to close tightly. Hence, conservative'value of 1|.
j AMiming kitchen .vent, door to vestibule usually open, allow full table value of 1J.
`.One-half value in Table 2, Chapter 25, increased to lj.by oearby outside door in vestibule.
i Full value in Table 2, Chapter 25, to allow for frequent opening of outside door.
.,
Two sides exposed, large doors but large volume. Use value li as given in Table 2, Chapter 25.
Two
unweatherstripped windows in protected location, but fireplace, indicate 1
,
Heat losses from these rooms into garage are heat gains for garage. v Neglect heat loss to basement, as losses from boiler, piping, ete., will probably keep basement near, if not above, 75 F.
Upstairs hall ceiling figures with downstairs. Heat should be provided downstairs for both.
linear feet of exposed edgel
....
a^Hitinnid heat must be supplied depends upon the heat ca
pacity of the structure and its material contents, and upon
the rimp in which these are to be heated.*1
,
. This additional heat may be computed and allowed for as
conditions require, but inasmuch as the heating system pro
portioned for taking care of the heat losses will usually have
a capacity, about 100 percent greater than that required for
average winter weather, and inasmuch as most buildings may
either be continuously heated or have more time ailowed for
heating, up during' the few minimum temperature days, no
allowance usually is made, except in the size of boilers or fur
naces. For churches, auditoriums, and other intermittently
heated buildings, additional capacity should be provided.
RESIDENCE HEAT LOSS PROBLEMS \
The following Examplea 6 and 7 will illustrate the proce? dure for calculating the heat loss of a residence, uninsulated and insulated, in accordance with the recommendations given in this chapter.
Example 6: Calculate the heat loss of the residence shown in
Kg. 1 located in the vicinity of Syracuse, N. Y. From Table 1,
Column 6, design outdoor conditions are -- 10 F and 11 mph
wind speed. Indoor temperature from Table 2 is assumed to he
75 F. The attic is unheated. Assume ground temperature to be
50 F under basement and garage doors and 32 F adjoining base
ment walls. Estimateinfiltration
by the air change method.
No. wall, ceding, or roof insulation is to be considered in this
problem, but all first and second-floor windows, except in the
garage, are .to have storm sash. The building is constructed as
follows (heat transmission coefficients U are in parentheses):
. Wailt: Brick veneer, building paper, wood sheathing, stud
ding, metal lath, and plaster (0.29). Wails of dormer over garage
re the same, except wood siding is used in place of brick veneer (0.26).
Attic Walla: Brick veneer, building paper, wood sheathing on studding (0.42).
Basement Walls: 10 in. concrete (0.10). Boot: Asphalt riling)en on wood sheathing on rafters (0.44).
(Second Floor): Metal lath and plaster (0.74). Wmdouts: Double-hung wood windows averaging 70 percent
p&ss (0.45; from Chapter 24, Table 18, Section D, the U value
Jor wood windows with storm sash is 0.53 X application factor;
by interpolation this factor is 0.85). Steel casement
in ga-
rage ana basement (1.13; from Chapter 24, Table 18, U is 1.13
for all glass and the application factor is 1.00). French doors in
dining room are 50 percent
no storm doors (0.85; from
Chapter 24, Table 18 V is 1.13 for all glass; by interpolation the application factor is 0.75).
Floor (Bedroom D): Maple finish flooring on yellow pine sub
flooring; metal lath and plaster ceiling below (0.26). Floor (Basement and Garage): 4 in. stone concrete on 3 in.
cinder concrete (0.10). Solution: The calculations for this problem are given in Table
8, and a' summary of the results is Table 9.. The values in col
umn F of Table 8 were obtained by multiplying together, the figures in columns C, D, and E. The heat loses are calculated to the nearest 10 Btu. See reference notes for Table 8 for further
explanation of data. ' ' . Attention is calledto'the summary'of heat losses (Table 9) for the uninsulated residence. As storm windows are used in'this
fable 9Summary , of , Heat Losses of Uninsulated Residence (fifu Per Hour)
baa or Spec*
WeOr
CoBing . and toot
'Floor
- GJou - and
Door
' laffl-
Toltdr
Bedroom A Bedroom B Bedroom C Bedroom D
"5870' 3840 2810 2910
8350 *
5630 v4280r
3640 .
1140
1530 1530 1030
770
2310 1560 1340 1010
18,000 12,560 9,460 9,470
Bathroom I'
740:*
Bathroom 2
1750
Living' Room' ''8050*
Dining Room 4090..
1820 1190
KttrHrin
3170^
.-
Lavette
3350
Entrance Hall 960
2990
Garage Recreation
-1180* -lfiOO* 950
.540 360. 340
1910 3300 .. -i
1180 720
1160 680 4120 770
.;,670 !' 3,770 -.430. ;.4,070 5730. 15,:690 ;3270 -.10,660
;2440" '. ,6;'650 590 5,100
1700 6,330 2120 4,740 3080 5,520
Design Totals 37,310 . 26,400
Operating
Totals*
37,310 26,400
Percentages* 37.7
26.7
3,400 18,720 26,250 112,080
3,400 18,720 13,130 98,960 3.4 18.9 13.3 100.0
* Wp hart ka oi *420 Etch rawsa woQ hart hub* at 1470. 800. and 1XK>
Btch. * Hast rtb* <4 1140 and 380 Btah. *BMod Co H compoWd iagatmion. * Baced a cpwMing totob.