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HEATING VENTILATING AIR CONDITIONING GUIDE 1942
Table 3. Heat Loss Calculation Sheet for Uninsulated Residence (Fig. 1)
A
B
C. D E F
G
Room ob Space
Part op Structure
Net Abba ob Cosm
Chack Length CIZ.VT
Temp.
Heat Loss
Dirr.a (Btu per hear
Totals
(Btu per hoar)
Bedroom A
Walls Glass
Infiltration Ceiling*1
Walls Bedroom B Glass
and Closet Infiltration Ceiling^
Bedroom C
Walls Glass
Infiltration Ceiling*1
Bedroom D and Closet
Walls Glass Infiltration Ceiling*1
Floor over Garage
Bathroom 1
Walls Glass Infiltration Ceiling*1
Bathroom 2
Walls Glass Infiltration Ceiling*1 Floor over Garage
Living Room
Walls
Walls (adjoining garage) Glass Infiltration
Dining Room
Walls
Glass (doors)
Glass (window) Infiltration*
Kitchen and
Entrance to Garage
Walls (outside) Walls (adjoining garage) Infiltration Glass
Door to garage
Lavette and Vestibule
Walls (outside)
Walls (adjoining garage) Door
Glass Infiltration
238 sq ft 40 sq ft
36 lin ftb 242 sq ft
0.28 0.45 0.35*
0.69
80 80 80
39.8
5330
1440 1010 6660
156 sq ft 0.28 80 40 sq ft 0.45 80 36 lin fte 0.35 80 160 sq ft 0.69 39.8
3490 1440
1010 4400
114 sq ft 0.28 80 27 sq ft 0.45 80 18 lin ftf 0.35 80 120 sq ft 0.69 39.8
2560 970 500
3300
118 sq ft 20 sq ft
18 lin ft 120 sq ft 110 sq ft
0.28 80 0.45 80 0.35 80 0.69 39.8 0.25 358
2650 720
500 3300
960
30 sq ft
14 sq ft 18 lin ft 55 sq ft
0.28 80 0.45 80 0.35 80 0.69 39.8
670 500 500 1510
79 sq ft .9 sq ft 15 lin ft
35 sq ft 35 sq ft
0.26 80 0.45 80 0.35 80 0.69 39.8 0.25 35
1770 320
420 960 310">
267 sq ft
94 sq ft 50 sq ft 40 lin ft
0.28 80 0.39*> 35 0.45 80 0.35 80
5980 1280 1800
1120
166 sq ft 35 sq ft
20 sq ft 31 lin "ft
0.28 1.13
0.45 0.35
80 80 80
80
3720
3160 720
870
96 sq ft 51 sq ft
27 lin ft 18'sq ft
17 sq ft
0.28 80 0.39h 35 . 0.35 80 0.45 80
0.51 35
2150 700
760 650 300m
82 sq ft
85 sq ft 19 sq ft
9 sq ft 19 lin ft
0.28 0.39*> 0.51
0.45 0.35
80
35 80 80
80
1840 1160
. 780320 530
14,440 10,340 7,330
8,130 3,180-
3,780 10,180 8,470
i.
4,560 '
4,630
CHAPTER 6. HEATING LOAD
Table 3 Heat Loss Calculation Sheet for Uninsulated Residence (Fig. 1) (Concluded)
A Room ob Space
B Pat op Stbuctubb
C
DE
F
G
Net Abba ob Cbacs Length
COBPPI- Temp.
CTEMT
Dip.*
Heat Loss
Totals
(Btu per hour) (Btu per hour)
Entrance Hall
Walls Door Infiltration Ceiling*1, P
Garage
Walls Glass Doors Infiltration Floor (heat gain) Heat gain
Recreation0 Room
Floor
Walls Glass Infiltration
Total
39 sq ft 21 sq ft 20 lin ft 87 sq ft
167 sq ft 53 sq ft 44 sq ft 37 lin ft 185 sq ft
287 sq ft 220 sq ft
8 sq ft 8 lin ft
0.28 80 0.38 80 0.35 80 0.69 39.8
870
640 560 2490
0.28 45 1.13 45 0.51 45 1.62i 45 0.64k -10k
2110
2700 1010 2700 -1180
-4710
0.64 25 0.70 25 1.13 80 0.76 80
4600
3850 720
490
4,560
2,630 9,660 91,890
The inside-outside temperature difference Is 70 -- (--10) or 80 F, except where otherwise noted.
bOnly the south windows are used for arriving at the window crack for this room, on the assumption that whatever air enters through the south window cracks will leave through the west window cracks
or elsewhere.
cDouble-hung wood windows with storm sash are assumed to have the same leakage per foot of crack as weatherstripped windows. The air leakage per foot of crack isabout 19.5 cu ft per foot of crack for a wind velocity of 12.5 mph. (See Table 2. Chapter 5.) The heat equivalent of the air leakage per hour per degree temperature difference per foot of crack is obtained by multiplying this value by 0.018. or 19.5 X
0.018 - 0.35.
din this problem the ceiling heat 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 the winter months. The attic temperature is estimated from Equation I to be 30.2 F when the outside temperature is --10 F and the room temperature is 70 F. The temperature difference is
therefore 70 -- 30.2 or 39.8 F.
1 oThe window crack in the west wall having two window? is used.
fOnt-h&U the total crack 2s used In these rooms.
- . sTemperature In garage assumed to be 35 F.
^Coefficient for wall adjoining garage calculated on basis of metal lath and piaster on both sides of studs. (U 0.39.)
The door crack is used for estimating the infiltration in this room and as the French doors are weatherstripped the infiltration coefficient is assumed to be the same as in Note b.
JThe leakage for the garage doors is assumed to be twice that for poorly-fitted double-hung wood windows or about 90 cu ft per foot of crack for a wind velocity of 12.5 mph. The infiltration coefficient is therefore 0.018 X 90 or 1.62.
kThe ground temperature is assumed to be 45 F and. as the garage temperature Is 35 F, the heat transfer will be from the ground to the garage, and this heat gain should therefore be subtracted from the heat loss. The floor coefficient (U = 0.64) is based on 4 in. stone concrete and 3 in. cinder concrete. This coefficient should probably be lower as the ground itself has some heat resistance value. However, complete data are not as yet available.
"The heat losses from various rooms into the garage are heat gains for the garage.
"Heat is to be provided for the recreation room and this space is therefore figured on the basis of a 70 F temperature. Heat loss into the basement from recreation room is neglected, the calculations being based only on losses through the outside walls, glass and floor. Ground temperature assumed to be 45 F.
pThe upstairs hail ceiling is included with the downstairs entrance hall because these are connected by means of the stairway. The heat should be provided downstairs.
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