The Steam Engine Familiarly Explained and Illustrated: With an historical sketch of its invention and progressive improvement; its applications to navigation and railways; with plain axioms for railway speculatorsLardner, Dionysius
History
The Steam Engine Familiarly Explained and Illustrated: With an historical sketch of its invention and progressive improvement; its applications to navigation and railways; with plain axioms for railway speculators
Lardner, Dionysius
Steam-engines -- Early works to 1850
It has been already stated, that the pressure of the atmosphere
amounts to about 15 lbs. (3.) on every square inch. Now, a column of
water, whose base is one square inch, and whose height is 34 feet,
weighs about 15lbs. If we suppose that a perfect vacuum were produced
in the steam-vessels V V´ (fig. 8.) by condensation, the atmospheric
pressure on L would fail to force up the water, if the height of the
top of these vessels exceeded 34 feet. It is plain, therefore, that
the engine cannot be more than 34 feet above the water which it is
intended to elevate. But in fact it cannot be so much; for the vacuum
produced in the steam-vessels V V´ is never perfect. Water, when not
submitted to the pressure of the atmosphere, will vaporise at a very
low temperature (17.); and it was found that a vapour possessing a
considerable elasticity would, notwithstanding the condensation,
remain in the vessels V V´ and the pipe S, and would oppose the ascent
of the water. In consequence of this, it was found that the engine
could never be placed with practical advantage at a greater height
than 26 feet above the level of the water to be raised.
(34.) When the water is elevated to the engine, and the steam-vessels
filled, if steam be introduced above the water in V, it must first
balance the atmospheric pressure, before it can force the water
through the valve B. Here, then, is a mechanical pressure of 15lbs.
per square inch expended, without any water being raised by it. If
steam of twice that elastic force be used, it will elevate a column in
F of 34 feet in height; and if steam of triple the force be used, it
will raise a column of 68 feet high, which, added to 26 feet raised by
the atmosphere, gives a total lift of 94 feet.
In effecting this, steam of a pressure equal to three times that of
the atmosphere acts on the inner surface of the vessels V V´. One
third of this bursting of the pressure is balanced by the pressure of
the atmosphere on the external surface of the vessels; but an
effective pressure of 30lbs. per square inch still remains, tending to
burst the vessels. It was found, that the apparatus could not be
constructed to bear more than this with safety; and, therefore, in
practice the lift of such an engine was limited to about 90
perpendicular feet. In order to raise the water from the bottom of the
mine by these engines, therefore, it was necessary to place one at
every 90 feet of the depth; so that the water raised by one through
the first 90 feet should be received in a reservoir, from which it was
to be elevated the next 90 feet by another, and so on.
Besides this, it was found that sufficient strength could not be
given to those engines, if constructed upon a large scale. They were,
therefore, necessarily very limited in their dimensions, and were
incapable of raising the water with sufficient speed. Hence arose a
necessity for several engines at each level, which greatly enhanced
the expense.
Public-domain text, read in full here on John Shaqi.
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