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HEATING VENTILATING AIR CONDITIONING CUIDE 1944
Table 1. Design Dry- and Wet-Bulb Temperatures, Wind Velocities, and Wind Directions for June, July, August, and September (Concluded)
State
Crrr
Design Drt-Bulb
Design Wet-Bulb
Summer Wind Velocitt MPH
Prevailing Suuheb Wind
.Direction
Texas:........... Dallas................. ,,............ ....... 100
78
9.4 S
El Paso._ ................................ 100
69
6.9 E
Galveston.... ............................ 95
80
9.7 S
Houston_________ ____ :......... 95
78
7.7 S
San Antonio............................ 100
78
7.4 SE
Utah.............. Salt Lake City.________ ;___ 92
63
8.2 SE
Vt.
90 73
8.9 S
Va. 95 78 10.9 S
Richmond................................ 95
78
6.2 sw
Wash.........:... Seattle___________ 1_____ ____ 85
65
7.9 s
Spokane.................................... 90
65
6.5 sw
W Va.
95 75
5.3 SE
Wis, :
95 75
8.1 SW
Milwaukee.. -.......:................. 95 75 10.4 S
Wyp..... ......... Cheyenne. .......... ...... .
95 65
9.2 s
The components of heat gain, classified by source, are further classified as sensible and latent heat gain.
The first two components fall into the classification of sensible heat gain, that is, they tend to raise the temperature of the air within the structure. The last three components not only produce sensible heat gain but they may also tend to increase the moisture content of the air within the structure.
Normal Heat Transmission
By normal heat transmission, as distinguished from solar heat trans mission, is meant the transmission of heat through windows, walls, partitions, etc. from without to interior of enclosure 6y virtue of difference between outside and inside air temperatures. This load is calculated in a manner similar to that described in Chapter 6 (except that flow of heat is reversed) by means of the formula:
Hi = AU {to -- t)
(1)
where
Hi = heat transmitted through the material of wall, glass, floor, etc., Btu per hour. A = net inside area of wall, glass, floor, etc., square feet.
I .= inside temperature, degrees Fahrenheit. to = outside temperature, degrees Fahrenheit. U = coefficient of transmission of wall, glass, floor, etc., Btu per hour per square foot
per degree Fahrenheit difference in temperature (Tables 3 to 13, Chapter 4).
Solar Heat Transmission
Calculations of the solar heat transmitted - through walls and roofs are difficult to determine because of periodic character of heat flow and time lag-due to heat capacity of construction;
.148
CHAPTER 7. COOLING LOAD
Table 2. Solar Radiation (Direct plus Sky) Impinging Against Walls Having Several Orientations and a Horizontal Surface For SO'Deg North Latitude on August 1
Tims
Northeast
intensity of Solar Radiation, Btu per Sq Ft per Hour
East
Southeast South Southwest West
Northwest
Horizontal Surface
5:20 6:00. 7:00
8:00 9:00 10:00
11:00 12:00
1:00
2:00 3:00 4:00
5:00 6:00 6:40
0 37 119
153 130
86
35 26 25.5
23.5 21 17
11 4.5 0
0 47 145
207 194 152
' 94 26 25.5
23.5 21 17
11 4.5 0
0 23 91
149 158 143
85 65 25.5 ,
23.5 21 17
11 4.5 0
0 4.5 11
17 35 63
80 85 80
63 35 17
11 4.5 0
0 4.5 11
17 21 23.5
25.5 65 85
143 158 149
91 23
0
0 4.5 11
0 4.5 11
17 21 23.5
17 21 23.5
25.5 26
94 .
25.5 26 35
152 86 194 130 207 153
145 . 119 47 37
00
0
n
64
147 213 262
290 300 290
262 . 213 147
64 11 0
Table 3. Solar Radiation (Direct plus Sky) Impinging Against Walls Having Several Orientations and a Horizontal Surface For S5 Deg North Latitude on August 1
' Sun' Time .
Northeast
5:07 6:00 7:00
8:00 9:00 10:00
11:00 12:00
IKK)
2:00 3:00
4K30
5:00 6:00 6:53
0 43 121
147 120
71
28. 26 25.5
23.5 21 17
11 4.5 0
Intensity of Solar Radiation. Btu per Sq Ft per Hour
East
Southeast South Southwest West
Northwest
Horizontal Surface
0 49 151
207. 194 152
94 26 25.5
23.5 21 17
11 4.5 0
0 27 97
155 169 156
129 , 84' 25.5
23.5 21 17..
11 4.5 0
0 4.5 11
25 49 83
103 109 103
83 49 25
11 4.5 0
00 4.5 4.5 11 11
17 21 23.5
17 21 23.5
25.5 84
129
25.5 26 94
156 152 169 . 194 155 207
97 151 27 49
00
0 4.5 11
17 21 23.5
25.5 26 28
71 120 147
121 43 0
0 13 .72
151 ' 213 245
288 298 288 "
245 213 151.
72 13 0