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 manner in which the motion of the crank affects the connecting
rod at the dead points produces an effect of great importance in
the operation of the engine. When the crank-pin is approaching the
lowest point of its play, and therefore the piston approaching the
top of the cylinder, the motion of the crank-pin becomes nearly
horizontal, and consequently its effect in drawing the connecting
rod and the working end of the beam downwards and the piston
upwards, is extremely small. The consequence of this is, that as
the piston approaches the top of the cylinder, its motion becomes
very rapidly retarded; and as the motion of the crank-pin at its
lowest point is actually horizontal, the piston is brought to a
state of rest by this gradually retarded motion at the top of the
cylinder. In like manner, when the crank-pin moves from its dead
point upwards, its motion at first is very nearly horizontal, and
consequently its effect in driving the working end of the beam
upwards, and the piston downwards, is at first very small, but
gradually accelerated. The effect of this upon the piston is, that
it arrives at and departs from the top of the stroke with a very
slow motion, being absolutely brought to rest at that point.
The same effect is produced when the piston arrives at the bottom
of the cylinder. This retardation and suspension of the motion of
the piston at the termination of the stroke affords time for the
process of condensation to be effected, so that when the moving
power of the steam upon the piston can come into action, the
condensation shall be sufficiently complete. As the piston
approaches the top of the cylinder, and its motion becomes slow,
the working gear is made to open the lower exhausting valve; the
steam enclosed in the cylinder below the piston, and which has
just driven the piston upwards, presses with an elastic force of
17 lbs. per square inch on every part of the interior of the
cylinder, while the uncondensed vapour in the condenser presses
with a force of about 2 lbs. per square inch. The steam,
therefore, will have a tendency to rush from the cylinder to the
[Pg222] condenser through the open exhausting valve, with an
excess of pressure amounting to 15 lbs. per square inch, while the
piston pauses at the top of the cylinder. This process goes on,
and when the piston has descended by the motion of the fly-wheel,
a sufficient distance from the top of the cylinder to call the
moving force of the steam into action, the exhaustion will be
complete, and the pressure of the uncondensed vapour in the
cylinder will become the same as in the condenser.
The pressure of steam in the cylinder, and of uncondensed vapour
in the condenser, varies, within certain limits, in different
engines, and therefore the amount here assigned to them must be
taken merely as an example.
Public-domain text, read in full here on John Shaqi.
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