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CHAPTER 12
.1958 Guide
Electric Motors and Machinery
Motors and the machinery which they drive, if both are located in the room, convert all of the electrical energy supplied into heat. This heat is retained in the room if the product manufactured is not removed until its temperature is the same as the room temperature.
If power is transmitted to the machinery from the outside, then only the heat equivalent of the brake horsepower supplied is used. In some mills this is the chief source of heating, and it is frequently sufficient to overheat the building even in zero weather, thus requiring cooling by ventilation the year round. Table 7 shows the heat output equivalent
Table 7. Heat Equivalents op Various Sources*
Machinery (Motor in room) = Motor Hp/efficiency x 2544
Btu/hr. ,
Machinery (Motor outside room) = Motor Hp x 2544
Btu/hr.
Electric Lights
= Kilowatts x 3413
Btu/hr.
Gas (Producer = 150) (Manufactured = 535) (Natural = 1000) Btu/cu ft.
Additional values are given in Chapter 13,Table 28.
of various sources of heat in a factory. For information concerning the heat supplied by persons, refer to data given in Chapter 6, and also Table 27, Chapter 13. For appliances see Table 28, Chapter 13.
INTERMITTENTLY HEATED BUILDINGS
In the case of intermittently heated buildings additional heat is required for raising the temperature of the air, the building materials and the ma terial contents of the building, to the specified. inside temperature. The rate at which this additional heat must be supplied depends upon the heat capacity of the structure and its material contents, and upon the time in which these are to be heated.16
This additional heat'may be computed and allowed for as conditions re quire, but inasmuch as the heating system proportioned 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 allowed for heating up during the few minimum temperature days, no allowance usually is made, except in the size of boilers .or furnaces. For churches, auditoriums and other intermittently heated buildings, additional capacity should be provided.
RESIDENCE HEAT LOSS PROBLEMS
The following Examples 6 and 7 will illustrate the procedure for calcu lating 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 Fig. 2 located in the vicinity of Chicago. From Table 1, design outdoor conditions are --10 F and 12 mp*> wind velocity. Inside temperature from Table 2 is assumed to be 70 F. The attic is unheated. Assume ground temperature to be 50 F (see Fig. 3, Chapter 34) under basement and garage floors and 32 F adjoining basement walls. Estimate infiltrationlosses by the air change method. No wall, ceiling or roof insulation is to be con-sidered in this problem, but all first and second floor windows, except in the garage.'
Heating Load
283
Table 8. Heat Loss Calculation Sheet for Uninsulated Residence (Fig; 2)
A
Room ob Space
Bedroom A and Closet
Bedroom B and Closet
Bedroom C and Closet
Bedroom D and Closet
Bathroom 1
Bathroom 2
Living Room
Dining Room
Kitchen and Entrance to Garage
Lavette and Vestibule
Entrance Kali
Garage
Recreation Room**
! B.
C D E F|G
Past op Stbuctubb ob Infiltbation Aib Changes
Walls Glass Ceiling Infiltration (H)9
Walls Glass Ceiling Infiltration (%)*
Walls Glass Ceiling Infiltration (H)9
Walls Glass Ceiling Floor over garage Infiltration (H)9
Walls Glass Ceiling Infiltration (1)*
Walls Glass Ceiling Floor over garage Infiltration (1)
Walls Walls (adjoining garage) Glass Floor Infiltration (lH)h
Walls Glass (doors) Glass (windows) Floor Infiltration (1*$)*
Walls Walls (adjoining garage) Glass Door Floor Infiltration (1HP
Walls Walls (adjoining garage) Glass Door Floor Infiltration (lH)k
Walls Door Ceiling1 Infiltration^)1
Walla Glass Doors Infiltration (1H)" Floor Gain adjoining rooms
Walls Glass Floor Infiltration (1)
Net Abba ob Aib Volume
Coeffi Temp. cient Diff.
238 8Q ft 40 sq ft
252 sq ft 1510 cfh*>
0.29 0.45 0.74
0.018
80 80 ,
39.8^ 80
156 sq ft 40 sq ft
170 sq.ft 1020 cfhb
0.29 0.45 0.74
0.018
80 80 ^
39.8* 80
114 sq ft 27 sq ft
129 sq ft '874 cfhb
0.29 0.45
0.74 0.018
80
3809.3^d 80
118 sq ft
20 sq ft 110 sq ft 110 sq.ft 680 dhb
0.29 0.45 0.74
0.26 0.018
80
8 , 39.8* 35* 60
30 sq ft 14 sq ft
55 sq.ft 440 <5hb
0.29 0.45 0.74
0.018
80 80 ^ 39.8* 80
79 sq ft 9 sq ft 35 sq ft
35 sqjt 280 cffib
0.26 0.45 0.74 0.26
0.018
80
8 .
39.3d 35 80
267 sq ft 94 sq ft 50 sq ft
294 sq.ft 3745 cfhb
0.29. 0.39f 0.45
0.018
80 35 80
80
166 sq ft
35 sq ft 20 sq ft 168 sq.ft 2140 cfhb
0.29 0.85 0.45
0.018
80 80 80
80
96 sq ft 51 sq ft 18 sq ft 17 sq ft
125 sq ft I595cfhb
0.29. 0.39* 0.45 0.51
0.018
80 35 80 35
80
82 sq ft
85 sq ft 9 sq ft 19 sq ft
30 sq.ft 383cfnb
0.29 0.391 0.45 0.51
0.018
80 35 80 80
80
39 sq ft 21 sq ft
87 sq.ft 1110cfhb
0.29 0.38 0.74
0.018
80
3809.3^d 80
167 sq ft 53 sq ft 2360 elU*
29 ft*
0.29
1.13 0.51 0.018 0.81
45 45 45
45 45
220 sq ft
8 sq ft 287 sq ft 2010 cfbb
0.10 1.13
0.10 0.018
38 80
20 80
Heat Loss
(Btu per boar)
Totals
(Btu per hour)
5520 1440
7410 2180
16,550
3620
1440 5000
1470
. 11.530
2650 970
3800 1260
8,680
2740 720
3240 960p 950
8,610-
690
500 1620
630 3,440
1640 320
1060 320p 400
3,740
6200
1280p 1800
5400
14,680
3850 2380
720
3080
10,030
2220
700p 650
300
2300
6,170
1900 1160P
320 780
550 4,710
900 640
2560 1600
5,700
2180 2700 1010 1910 1060
--4420p
4,450
840
720 570 2890
5,020
1 | TOTAL | 103,310