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CHAPTER 26
1950 Guide .
when the boiler is steaming under pressure conditions which would prevent the return of condensate by gravity-' The-typical connections for an auto matic return trap are illustrated in Fig. 13. :
Each heating unit in a vapor system, as in all two-pipe systems, is pro vided with a graduated or modulating valve which permits the control of heat in the radiator by varying the opening of. the valve.
Two-Pipe Vacuum Systems
Vacuum systems operate under conditions of both low pressure and vacuum, but employ the use of a vacuum, pump, to insure maintenance of sub-atmospheric pressures.
A typical two-pipe up^feed vacuum system is illustrated in Fig:: 14, and a down-feed arrangement in Fig. 15.
The return risers are connected in the basement into a common return main which slopes downward toward the .vacuum pump. The vacuum
Steam Heating Systems and Piping -
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float control for the pump at the low point of the return , main,- located adjacent,to the vacuum pump.
When the vertical lift is considerable, several lift fittings should be used in steps as shown in Fig. 16. This permits a given lift to be secured with a somewhat lower vacuum than where the vertical distance is served by a single lift. Where several lifts are present in a given system at different locations, the lifting cannot occur until the entire system is filled with steams A lift connection for location' close to the pump, where the size may be above the commercial stock sizes, is shown in Fig. 17. It is desirable that means be provided for manually draining the low point of the lift fittings to eliminate danger of freezing.
TWO-PIPE SUB-ATMOSPHERIC SYSTEMS
. Sub-atmospheric systems are similar to vacuum systems but, in con trast, provide control of building tempierature by variation of the heat
pump withdraws the air and water from the system, separates the air from the water and expels it to atmosphere, and pumps the water back to the boiler or other receiver, which may be a feed-water heater or hot well. It is essential that no connection be made from the supply side to the return ; side at any point except through a trap. The desirable practice demands a return flowing to the vacuum pump ;by an uninterrupted downward slope. In some instances local conditions make it necessary to drop the return below the level of the vacuum pump inlet before the pump can be reached. In such an event one of the advantages of the vacuum sys tem is the ability to raise the condensate to a considerable height, by the suction of the vacuum pump, by means of a lift connection or fitting in-' serted in' the return. The height the condensate can be raised depends onthe amount of vacuum maintained. It is preferable to limit lift con
nections to a single lift at the vacuum pump; A still more preferable arrangement is the use of an accumulator tank, or receiver tank, with a
output from the radiators.. The radiator heat emission is controlled by
varying the pressure, temperature and specific volume of steam in circu
lation. These systems differ from the ordinary vacuum system in that
they maintain a controllable partial vacuum on both the supply , and
return tides of the system,, instead of only on the return tide. In the
vacuum system, steam pressure above that of the atmosphere; exists in the;
supply, mains, and radiators practically at all times. In the sub-atmos-'
pheric system, atmospheric pressure or higher exists in the steam supply
piping and radiators only during severe, weather. Under average winter
temperature the steam is under partial vacuum which in mild weather
may . reach as high as 25 in. Hg, after, which further reduction in'heat
output :is obtained by restricting the quantity of steam.
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The,rate .of steam supply is controlled. by a valve in the steam.main or by thermostatically controlling the rate of steam production in the boiler.
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