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CHAPTER 12
1956 Guide
272
Notes fob Table 8. * The inside-outside temperature difference is 70-- (--10) or 80 F except where otherwise noted. * Volume of infiltration, cfh = (no. air changes) x (fioor'or ceiling area) x (ceiling height).
4 The
heat losses are calculated by estimating the attic temperature and then calculating the loss
thro6uFgrhomtheEqcuematniognu5sain. g the proper temperature difference. This unheated attic is not ventilated during
winter months. The attic temperature is estimated from Equation 1 to be 30.2 F when tbe outside tem perature is --10 F and room temperature is 70 F. The temperature difference is then 70--30.2 or 39.8 deg.
1 temperature diflerenoe 70-4.6 - 65.4 dei. pFeorrat'th*uereinissu--*la1t0edF- raesn.idd.ernocoem, atettmicp*te*emrwaptueArreTatutnrre.eb.e.com_e__ 44..06FFannddct empau* _________
*1 CTeomefpficeireantut froerinwagallraadgejoainsisnugmgeadratogebcea3lc5uFla.ted on basis of metal lath and plaster on both sides of studs
CCJ 8*=O0n.3e9h).alf of value from Table 4, Chapter II, for storm windows or weatheretripping. * k Exposed on two sides, weathentripped windows offset by fire-place. Use 1H-
* Window on one tide weatherstripped but double-doom are hard to close tightly. Bence, conservative
valui*eAOosnsfeut-jmhi.ainlfgvkaitluceheinn
vent, door to vestibule usually open, Table 4, Chapter 11, increased to 1H
allow full table value of 1K by nearby outside door in vestibule.
1 Full value in Table 4, Chapter 11, to allow for frequent opening of outside door. m Two tides exposed, large doors but large volume.
r Use value 1H ae given in Teble 4, Chapter 11.
I 11
a Two small unweatherstripped windows in pro-
-- r:--tected location, but fireplace, indicate 1 change.
Ill
p Heat losses from these rooms into garage are heat
gainqsNfoerggleacrat ghee.at loss to basement, as losses from boiler, piping, etc., will probably keep basement near,
. " ---if not above, 70 F.
1.
NOT excavated
Heat ---------------- Linear feet of exposed edge.
RECREATION ROOM
CEILING HEIGHT 7-0* basement PLAN
Fiq. 2. Floor Plans or Residence
Heating Load
273
Table 9. Summary of Heat Losses of Uninsulated Residence (Btu Per Hour)
Room ok Space
Walls
Ceiling and Roof
Floor
Glass and Door
Infil tration
Totals
Bedroom A Bedroom B Bedroom C Bedroom D Bathroom 1 Bathroom 2 Living Room Dining Room Kitchen Lavette Entrance Hall Garage Recreation
Design Totals Operating Totals6
Percentages4*
5330 3490 2560 2650
670 1640 7260 3720 2850 3000 870 -- 1030* 840
33.850 33,850
38.4
6910 4660 3540 3020 1510 960
2390. -1270b
21.720 21,720
24.6
960 3io
1060 570 2,900 2.900 3.3
1440 1440 970 720 500 320 1800 3100 950 1100 640 3710 720
17,410 17.410
19.7-
2180 1470 1260 950 630 400 5400 3080 2300 550 1600 1910 2890
24,620 12,310
14.0
15,860 11,060 8,330 8.300. 3.310 3.630 14,460 9.900 6.100 4,650 5.500 4.380 5.020
100,500 88,190
100.0
B Wall heat loss of 2110 Btuh minus wall heat gains of 1280, 700 and 1160 Btuh. Heat gains of 960 andb 0 Btuh. c Based on H oomputed illfiltration. d Based on operating totals.
are to have storm sash. The building is constructed as follows (heat transmission coefficients U are parentheses):
Walls: Brick veneer, building paper, wood sheathing, studding, metal lath and plaster (0.28). Walls of dormer over garage, same except wood siding in place of brick veneer (0.26). -
Attic Walls: Brick veneer, building paper, wood sheathing on studding (0.42).
Basement Walls: 10 in. concrete (0.10).
Roof: Asphalt shingles on wood sheathing on rafters (0.53).
Ceiling (Second floor): Metal lath and plaster (0.69).
Windows: Double-hung wood windows averaging 70 percent glass (0.45; from Chapter 9, Table 20, Section D, the U value for wood windows with storm sash is 0.53 x application factor; by interpolation this factor is 0.85). Steel casement sash in garage and basement (1.13;from Chapter 9, Table 20, U is 1.13 for all glass and the application factor is 1.00). French doors in dining room 50 percent glass, no storm doors (0.85; from Chapter 9, Table 20, U 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 (0.25).
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
Table 10. Summary of Heat Losses of Insulated Residence (Btu Per Hour)
Room or Space
Walls
Ceiling and Roof
Floor
Glass and Door
Infil tration
Totals
Bedroom A Bedroom B Bedroom C Bedroom D Bathroom 1 Bathroom 2 ^ing Room imping Room Kitchen Uvette Entrance Hall
Recreation
design Totals Operating Totals6 Percentages41
2480 1620 1190 1230 310
760 3370 1730 1320 1390 410 -470* 840
16,180 16,180
29.1
2460 1660 1260 1080 640 250
850, -9106
7,190 7,190
12.9
690 220
1060 570 2,540 2,540 4.6
1440 1440 970 720 500 320 1800 3100 950 1100 640 3710 7*20
17,410 17,410
31.3
2180 1470 1260 950 630 400 5400 3080 2300 550 1600 1910 2890
24,620 12,310
22.1
8,560 6,190 4,680 4,670 1,980 1,950 10,570 7,910 4,570 3,040 3,500 5.300 5,020
67,940 55.630
100.0
jj. ^eat loss of 980 Btuh minus wall heat gains of 590, 320 and 640 Btuh. b Heat gains 690 and 220 uh* Based on }i computed infiltration. d Based on operating totals.