Mechanics of the Household: A Course of Study Devoted to Domestic Machinery and Household Mechanical Appliances — John Shaqi
Mechanics of the Household: A Course of Study Devoted to Domestic Machinery and Household Mechanical AppliancesKeene, E. S. (Edward Spencer)
Science
Mechanics of the Household: A Course of Study Devoted to Domestic Machinery and Household Mechanical Appliances
Keene, E. S. (Edward Spencer)
Heating; Lighting; Plumbing
If the expansion tank is closed, the pressure generated by the
expanding water and the formation of steam will permit the water to
reach a much higher temperature. In the table of temperatures and
pressures of water on page 3, it will be seen that should the pressure
rise to 10 pounds, that is, 10 pounds above the pressure of the
atmosphere, the temperature of the water would be very nearly 240°F.
(239.4°F.). The difference in heating effect in hot-water heating
plants under the two conditions is very marked. In the low-pressure
system the temperature of the radiators cannot be above 212° but the
high-pressure system set for 10 pounds pressure will heat the radiators
to 240°, and a still higher pressure would give a correspondingly
higher temperature. The amount of heat radiated by a hot body is in
proportion to the difference in temperature between the body and
the surrounding air. If we consider the surrounding air at 60° the
difference in amount of heat-radiation capacity of the two radiators
would be as 180 is to 132. The advantage of the high-pressure system
lies in its ability to heat a given space with less radiating surface
than the low-pressure system.
In Fig. 34 is illustrated an application of a simple and efficient
valve arrangement that converts a low-pressure hot-water system into
a high-pressure system without changing in any way the piping or
radiators. The drawing shows the boiler and two radiators connected as
for a low-pressure system, but attached to the end of the pipe as it
enters the expansion tank is a safety valve _B_ and a check valve _A_,
as indicated in the enlarged figure of the valve. The safety valve is
intended to allow the water to escape into the expansion tank when the
pressure in the system reaches a certain point for which the valve is
set. The check valve _A_ permits the water to reënter the system from
the tank whenever the pressure is restored to its normal amount.
[Illustration: FIG. 34.--The high-pressure system of hot-water heating.]
Suppose that such a system is working as a low-pressure plant. The hot
water from the top of the boiler is flowing to the radiators through
the supply pipe and the displaced cooler water is returning to the
bottom of the boiler through the return pipe as in the other plants
described. It is now found that the radiators are not sufficiently
large to heat the rooms to the desired degree except when the furnace
is fired very heavily. It is always poor economy to keep a very hot
fire in any kind of a heater, because a hot fire sends most of its heat
up the chimney. If the radiators could be safely raised in temperature,
they would, of course, give out more heat and as a result the rooms
would be more quickly heated and kept at the required temperature with
less effort by the furnace. The difficulty in this case lies solely in
there being insufficient radiator surface to supply heat as fast as
required.
Public-domain text, read in full here on John Shaqi.
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