Every-day Science: Volume 6. The Conquest of NatureWilliams, Henry Smith
Science
Every-day Science: Volume 6. The Conquest of Nature
Williams, Henry Smith
Industrial arts; Machinery
It will be understood that the object of exploding the mixed gases in
the oil engine is to produce sudden heating of the entire gas. There
is no reason whatever for introducing the gasoline beyond this. Could
a better method of heating air be devised, the oil might be entirely
dispensed with, and the safety of the apparatus enhanced, as well as
the economy of operation. Efforts have been made for fifty years to
construct a hot-air engine that would compete with steam successfully.
In the early fifties, as already noted, Ericsson showed the feasibility
of substituting hot air for steam, but although he constructed large
engines, their power was so slight that he was obliged to give up the
idea of competing with steam, and to use his engines for pumping where
very small power was required.
The great difficulty was that it was not found practicable to heat
the air rapidly. All subsequent experimenters have met with the same
difficulty until somewhat recently. It is now claimed, however, that
a means has been found of rapidly heating the air, and it is even
predicted that the hot-air engine will in due course entirely supersede
the steam engine. Mr. G. Emil Hesse, in an article in _The American
Inventor_, for April 15, 1905, describes a Svea caloric engine as
having successfully solved the problem of rapidly heating air. The
methods consist in breaking up the air into thin layers and passing
it over hot plates, where it rapidly absorbs heat. It passes from the
heater to the power cylinder which resembles the cylinder of a steam
engine; thence after expanding and doing its work it is exhausted into
the atmosphere. Large engines may use the same air over and over again
under pressure of one hundred pounds per square inch, alternately
heating and cooling it. A six horse-power engine of this type is
said to have a cylinder four and one-half inches in diameter and a
stroke of four and seven-eighth inches, and makes four hundred and
fifty revolutions per minute. The heater is twenty inches in diameter,
sixteen inches long, and has a heating surface of sixty square feet.
The total weight of heater and engine complete is four hundred pounds
for a half horse-power Ericsson engine.
"The Svea heater," says Mr. Hesse, "absorbs the heat as perfectly
as an ordinary steam boiler, and the heat-radiating surface of both
heater and engine is not larger than that of a steam plant of the same
power, thereby placing the two motors on the same basis, as far as the
utilization of the heat in the fuel itself is concerned.
"The advantage which every hot-air engine has over the steam engine is
the amount of heat saved in the vaporization of the water. It is now
well known that one gas is as efficient as another for the conversion
of heat into power. Air and steam at 100° C. are consequently on the
same footing and ready to be superheated. The amount of heat required
to bring the two gases to this temperature is, however, very different.
Public-domain text, read in full here on John Shaqi.
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