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American Society of Heating and Ventilating Engineers Guide, 1933^
Table 1. Average Maximum Design Dry-Bulb Temperatures, Design Wet-j/J;
Temperatures, Wind Velocities, and Wind Directions for
w
June, July, August, and September
State
ClTT
Average
Maximum Deuign
Dbt-Buu
Design Wet-Bulb
Summer Wind Velocttt
<^ETW
MPH O'Mcna
Ala Mobile.......... ;.............. ... ....
Ark............... Little Rock............................ Calif,.--..... Los Angeles...........................
San Francisco.......... ............. Colo.......... . D. C............. Fla Jacksonville........................... r.a Atlanta...................................
fll InH Ky Louisville...............................
MH
Mn Kansas City........................... Mont...........
N. J............. N Y.
MM N. C. ... N Dak.
Pa."
RT <; r
Chattanooga..... .................... Memphis. .............................
93
94 110
95 88
85 90
88 95
94 94
91 95 95 95
91 90 92 94 94 85
93 88 93 84
95 92 95 87 93 93
95 90 83 95
87 87
93
88 95
95 96 83 95
91 85 94
93
. 94 93
77 5.2 78, 8.6 77 6.0
77 7.0
70 6.0
68" li:0 64 6.8
74 7.3
78 6.2 78 8.7 79 7.0
75 7.3 79 7.8
65 5.8 75 10.2 75 8.2 73 9.0
74 6.6
75 8.0 79 7.0
71 7.3 76 6.9
73 9.2 73 10.3 72 8.4
78 6.2 75 9.5 78 9.4 63 7.3 74 9.3 64 7.4 76 10.0
74 7.1 72 12.2
75 12.9 63 6.5 72 5.6
79 7.8 69 8.8 73 9.9
78 6.6
76 10.1
65 6.6 78 9.7 73 9.0
73 10.0 80 9.9
76 6.8
76 6.5 77 7.5
Chapter 8--Cooling. Load
iuuytmum Design Dry-Bulb Temperatures, Design Wet-Bulb
table 1- Average maai
velocities, and Wind Directions for
TABL
TbmpE^XK August, and September (Continued)
9tat*
Citt
Average
Maximum Design
Drt-Bulb
Design Wet-Bulb
Summer Wind Prevailing
Vblocitt
MPH
Summer Wind Direction
Texas--
Dallas------------Galveston-------San Antonio.--
Houston....... --
El Paso.Salt.Lake_City-- Burlington.........
Norfolk............... Richmond--....
Seattle-............. Spokane............. Parkersburg......
Madison............. Milwaukee......... Cheyenne...........
99
93
100
93 98 95 --85 91 95 83 89 90 89 93 85
76 9.4 79 9.7 78 7.4 79 7.7 69 6.9 67 8.2
71 -- 8:9
76 10.9 78 6.2 61 7.9 63 6.5 74 5.3 73 8.1 74 10.4 62 9.2
S
s
SE S E SE --S
S. SW
S SW SE SW
S S
COOLING LOAD
The cooling load may be divided into the following parts:
1. Transmission of heat through walls, roof, and glass with allowances for sunexposed surfaces and heat capacity.
2. Transmission of solar radiation through glass and absorption by interior furnishings. 3 Heat and moisture from infiltration and from outside air introduced. 4. Heat and moisture from occupants and heat from lights, machinery and other sources.
Transmission for Surfaces Not Exposed to the Sun
The transmission load for surfaces not exposed to the sun is calculated in
a manner similar to that described in Chapter 7, by means of the following
formula:
Ht = AU {to - t)
. (1)
where
fit = heat transmitted through the material of the wall, glass, roof, or floor, Btu per hour. net inside area of wall, glass, roof, or floor, square feet.
1 = inside temperature, degrees Fahrenheit.
jo = outside temperature, degrees Fahrenheit. T7 = coefficient of transmission of wall, floor, roof, or glass, Btu per hour per
square foot per degree Fahrenheit difference in temperature. (Tables 3 to 13, Chapter 5.)
Outside Temperatures
- Summer dry-bulb and wet-bulb temperatures for various cities are given in Table 1. It will be noted that the temperatures are not the maxipiums but the design temperatures which should be used in airconditioning calculations. The maximum outside wet-bulb temperatures
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