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
If the steam-gauge be used as a measure of the strength of the steam
which presses on the piston, it ought to be on the same side of the
throttle valve (which is regulated by the governor) as the cylinder;
for if it were on the same side of the throttle valve with the boiler,
it would not be affected by the changes which the steam may undergo in
passing through the throttle valve, when partially closed by the
agency of the governor.
(69.) The force with which the piston is pressed depends on two
things: 1º, the actual strength of the steam which presses on it; and
2º, on the actual strength of the vapour which resists it. For
although the vacuum produced by the method of separate condensation
be much more perfect than what had been produced in the atmospheric
engines, yet still some vapour of a small degree of elasticity is
found to be raised from the hot water in the bottom of the condenser
before it can be extracted by the air-pump. One of these pressures is
indicated by the steam-gauge already described; but still, before we
can estimate the force with which the piston descends, it is necessary
to ascertain the force of the vapour which remains uncondensed, and
resists the motion of the piston. Another gauge, called the
barometer-gauge, is provided for this purpose. A glass tube A B (fig.
39.), more than thirty inches long, and open at both ends, is placed
in an upright or vertical position, having the lower end B immersed in
a cistern of mercury C. To the upper end is attached a metal tube,
which communicates with the condenser, in which a constant vacuum, or
rather high degree of rarefaction, is sustained. The same vacuum must,
therefore, exist in the tube A B, above the level of the mercury; and
the atmospheric pressure on the surface of the mercury in the cistern
C will force the mercury up in the tube A B, until the column which is
suspended in it is equal to the difference between the atmospheric
pressure and the pressure of the uncondensed steam. The difference
between the column of mercury sustained in this instrument and in the
common barometer will determine the strength of the uncondensed steam,
allowing a force proportional to one pound per square inch for every
two inches of mercury in the difference of the two columns. In a
well-constructed engine, which is in good order, there is very little
difference between the altitude in the barometer-gauge and the common
barometer.
Public-domain text, read in full here on John Shaqi.
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