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HEATINC VENTI LATINO AIR CONDITIONING GUIDE 1944
Table 5. Comparison op Various Types of Atmospheric Water Cooling Equipment
Figures indicate order of desirability
Area._____ Height.-. Weight per square foot Independence of wind velocitv Urift nuisance Make-up water reauired Pumping head Maintenance.... Suitability for congested districts. Water quantity required for definite
result.
*Not comparable.
Cooling Sprat
Pond
Pond
X2
54
63 16 16
12 21
X5
65
Sprat Tower
Deck Tower
Mechanical Indoor
Draft
-Tower
i3 32
4-5 13
5 4
5 34 43
4
1
4-5 4
1-2
2-3 2-3
3 5
1
5
X
X
2
1-2
2-3 2-3 '
6 6
2
1-2
1-2
3
Make-Up Water
Since the atmospheric water cooling equipment performs its functions chiefly by evaporating a portion of the water in order to cool the re mainder, there is a continual drain on the quantity of water in the system, and this loss must be replaced. Approximately 1 gal of water is lost for every 1000 gal of water cooled per degree of cooling range; so if 1000 gpm of water are cooled through a. 10 F range, 10 gpm of water will be re quired to replace evaporated water. Replacement supply is usually regulated by a float control valve. Chemical treatment of the make-up
water may be necessary to avoid excessive deposits in the condensers.
Winter Freezing
If atmospheric water cooling equipment is operated in freezing weather, the water may be cooled below freezing temperature so ice forms arid collects until its weight causes damage. To obviate freezingrLuiing con tinued operation, the efficiency of the apparatus may be lowered. This is done on the spray pond and the spray cooling tower by reducing the quantity of water fed to the apparatus, thereby lowering the pressure at the nozzles and increasing the size of the drops produced. On the deck
tower the upper system may be shut off and a secondary, distribution system put in service midway down the height of the tower. The water will be kept above freezing because it will have shorter contact with the air. The mechanical draft tower can be protected by reducing the air flow through the tower, by stopping or reducing the speed of the fans, or by partially closing dampers.
If the system is operated intermittently in freezing weather, water in the basin may freeze and the expansion of the ice may do harm. Freezing during intermittent operation can be prevented only by draining the water basin when it is out of service. On small roof installations,.a tank . large enough to hold all the water in the system is often installed inside the building and the basin is drained into this by gravity, the pump suc tion being taken from this inside tank.
A comparison of various types of water cooling equipment is given in Table 5.
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CHAPTER 28
Classification of Air Impurities, Dust Concentrations, Air Pollution and Health, Occlusion of Solar Radiation, Smoke and Air Pollution Abatement, Dust and Cinders, Nature's
Dust Catcher
THE particulate impurities which contribute to atmospheric pollution include carbon from the combustion of fuels, particles of earth, sand,
ash, rubber tires, leather, animal excretion, stone, wood, rust, paper, threads of cotton, wool, and silks, bits of animal and vegetable matter, and pollen. Microscopic examination of the impurities in city air shows
that a large percentage of the particles are carbon.
CLASSIFICATION OF AIR IMPURITIES
The most conspicuous sources of atmospheric pollution, may be classified in various ways, as dusts, fumes and smoke. In Fig. 1, the classification is by particle size, but recent practice favors differentiation by method of formation. Thus, dusts are composed of particles produced
by disintegration of larger material, as by crushing or grinding, whereas fumes are produced by condensation, and smoke consists of the finer carbon particles resulting from incomplete combustion. Similarly, mists are formed by the breaking up of liquids and fogs by condensation of
vapors. There is as yet, however, no general, agreement on these terms.
Dusts tend to settle without agglomeration, fumes to aggregate and smoke to diffuse. Particles which approach the common bacteria in
size--from 1 to 10 microns--are difficult to remove from air and are apt to remain in suspension unless they can be agglomerated by artificial means. The term fly-ash is applied to solid ashy material, usually finely
divided, that is a constituent of the effluent gases from coal-fired furnaces. Cinders denote the larger solid constituents which may be entrained by
furnace gases. Particles larger than 10 microns are unlikely to remain suspended in
air currents of moderate strength, but settle out by gravity at speeds dependent upon the shape, size and specific gravity of the particle and
upon the wind velocity.- These larger particles are of major interest to the engineer in the solution of nuisance problems; on the other hand, it is mainly the smaller particles that are of hygienic significance. A notable
exception to this size limitation in the latter case is the common hay-fever producing pollen such as that from, ragweed. Pollen grains may be any thing from fragments 15 microns or less in diameter to whole pollens 25
microns or more in size.
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