The Steam Engine Explained and Illustrated (Seventh Edition): With an Account of Its Invention and Progressive Improvement, and Its Application to Navigation and Railways; Including Also a Memoir of WattLardner, Dionysius
History
The Steam Engine Explained and Illustrated (Seventh Edition): With an Account of Its Invention and Progressive Improvement, and Its Application to Navigation and Railways; Including Also a Memoir of Watt
Lardner, Dionysius
Steam-engines; Watt, James, 1736-1819
The model which he had repaired, had a cylinder of only two inches
diameter, and six inches stroke. After he had put it in complete
order, he found, that although the boiler was much larger in
proportion to the cylinder than those of real engines, yet, that
it was incapable of supplying the cylinder with steam in
sufficient quantity to keep it at work. To enable it to continue
to move, he found it necessary to lessen the quantity of water
raised by its pump, so as to [Pg085] reduce the load on its
piston very much below the proper standard according to the common
rules for large engines.
He ascribed the great inferiority in the performance of the model,
compared with the performance of the large engines, to the small
size of the cylinder, and to its material. The cylinder of the
model was brass, while those of large engines were of cast iron;
and brass being a better conductor of heat than iron, he concluded
that more heat in proportion was lost from this cause in the
model, than in the larger engines. He observed that the small
cylinder was so heated when the steam was admitted into it, that
it could not be touched by the hand; but, nevertheless, that this
heat contributed nothing to its performance, inasmuch as before
the piston descended, the cylinder required to be cooled.
(47.) His first attempt to improve the engine, was by using a
wooden cylinder instead of an iron one. He accordingly made a
model with a cylinder of wood, soaked in linseed oil, and baked to
dryness. With this he made numerous experiments, and found that it
required a less quantity of water to be thrown into the cylinder
to condense the steam, and that it was worked with a less supply
of steam from the boiler than was necessary with the metallic
cylinder.
Still he found that the force with which the piston descended was
considerably less than that which the atmospheric pressure ought
to supply, supposing a tolerably perfect vacuum to be produced
under the piston. This led him to suspect that the water injected
into the cylinder was not perfectly effectual in condensing the
steam. The experiments which he had previously made on the
increased temperature at which water boils under pressures greater
than that of the atmosphere, led him by analogy to the conclusion
that it would boil at lower temperatures if it were submitted to a
pressure less than the atmosphere, and he was aware that Dr.
Cullen and others had then recently discovered that in vacuo,
water would boil at so low a temperature as 100°. These notions
suggested the probability that the water injected into the
cylinder being heated by the condensed steam, might produce vapour
of a low temperature [Pg086] and reduced pressure under the
piston, which would account for the deficiency he observed in the
power of the engine.
Public-domain text, read in full here on John Shaqi.
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