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HEATINC VENTILATING AIR CONDITIONING GUIDE 1942
Table 1. Average Maximum Water Main Temperature3 (Concluded)
State
ClTT
Temp.
State
ClTT Temp. P
OHa
Tulsa. ........................
Portland..................... Pa
Erie.............................. Johnstown................. McKeesport.............. Philadelphia.............. Pittsburgh................. RI
S. C. .. Greenville................. Spartanburg. ...........
S. Dak.......
Term... ....... Chattanooga............. Knoxville................... Memphis.................... Nashville. ..... .......
Austin......................... Beaumont.................. Dallas......................... Fort Worth............... Galveston.-................ Houston..................... Port Arthur...............
San Antonio.............. . Wichita Falls............
82 85 60 64 74 75 74 82 83 81 68 80 81 78 55 84 89 70 90 65 90 86 86 84 90 84 83 76 85
Utah.:....... Logan..........................
Salt Lake City_____ Va............... Fredericksburg.____
Lynchburg___ _____ Norfolk...... ............ Wash.......... Olympia______ _____ Seattle._________ ___
Spokane..--........ ...... Tacoma W. Va____ Charleston-............... Huntington........... .. Wheeling____ __ ___ Wis............. LaCrosse.___________ Madison___________ Milwaukee................. Racine............... .........
44 60 75 73 80 58 62
51. 57 .85 78 78 54 58 . 70 68
Province
Alta_______ Calgary.-- B. C---------- Vancouver- -.........
Toronto ..
P. E. I....... Charlottetown_____
Que----------- Montreal
.
Quebec____ ________
64 60 50 63 48 78 68
These averages taken from various city water main locations, with some actual values slightly higher and some lower than values shown.
As the heat content of the air increases, its wet-bulb temperature rises. (See Chapter 1.) Because it is impractical to leave...the air in contact with water for a long enough time to permit the wet-bulb temperature of
the air and the temperature of the water to reach equilibrium, atmos pheric water cooling equipment aims to circulate only enough air to cool
the water to the desired temperature with the least possible expenditure of power.
In an air washer, humidifier or dehumidifier, the air is first conditioned
by water to change its moisture and temperature, and it is then sent to
the place where it is to be used. In water cooling equipment the tem
perature of the water is reduced by air, and the cooled water is carried to
its point of usage. In the air washer, an excess of water is used to con
dition a fixed quantity of air, while in water cooling equipment, an excess
of air is used to cool a fixed quantity of water.
^
Both types of equipment have a common basis of design, however, in
that the size of the equipment is determined by the quantity of air that must be handled. With the air washer, the size of the equipment is fixed by the quantity of air to be conditioned, and the amount of conditioning is controlled by the quantity and temperature of the water supplied and its method of application. With water cooling apparatus, its size and the
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CHAPTER 27. SPRAY EQUIPMENT
quantity of air required bear no direct relation to the quantity of water being cooled, but vary through a wide range for different services and conditions.
Sizes of Equipment
Assuming a definite quantity of water to be cooled, the size and design of atmospheric cooling equipment are affected by the following factors:
1. Temperature range through which the water must be cooled. 2. Number of degrees above the wet-bulb temperature of the entering air to which the water temperature must be reduced. 3. Temperature of the atmospheric wet-bulb at which the required cooling must be performed. 4. Time of contact of the air with the water. (This involves height or length of the apparatus and velocity of air.) 5. Surface of water exposed to each unit quantity of air. 6. Relative velocity of air and water.
Items 1, 2, and 3 are established by the type of service and geographical location, while items 4, 5, and 6 depend upon the design of the equipment.
The establishment of a proper cooling range depends upon:
1. Type of service (refrigerating, internal combustion engine and steam condensing). 2. Wet-bulb temperature at which the equipment must operate satisfactorily. 3. Type of condenser or heat-exchanger used.
Because the design of an entire plant is usually affected by the quantity and temperature of the cooling water supply, plants should be designed for cooling water conditions which can be most efficiently attained. The first consideration is usually the limiting temperature of the plant. _ For example, if an ammonia compressor refrigerating plant is to be designed for 185 lb head pressure as a normal maximum, the limiting temperature of the ammonia in the condenser is 96 F. Should the ammonia tempera ture go above this figure the head pressure will exceed T85 lb and power consumption increases. To obtain this head pressure, the temperature of the circulating water leaving the condenser must always be less than 96 F by an amount depending upon the size and design of the condenser, the
Table 2. Condenser Design Data
Gas
Maximum Pressure Desired in Condenser
Gas Temperature in Condenser Dec F
Leaving Hot Waibr Temperature
De s F
Best Condenser Design
Average Condenser Design
Steam
28 in. vacuum____
Ammonia.......... 185 lb gage
head pressure.....
Carbon dioxide.. 1030 lb gage
head pressure.....
Methyl
102 lb gage
chloride..... ... head pressure.....
Dichlorodi-
117 lb gage
fluoromethane head pressure.....
101.2 115.1 125.9
96.0
86.0
100.0
100.0
97 110 120
92
83
96
96
93 105 114
88
81
92
93
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