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
On the main axle driven by the crank Watt placed a large wheel of
metal, as represented in _fig._ 43., called a _fly-wheel_. This
wheel being well constructed, and nicely balanced on its [Pg206]
axle, was subject to very little resistance from friction; any
moving force which it would receive it would therefore retain, and
would be ready to impart such moving force to the main axle
whenever that axle ceased to be driven by the power. When the
crank, therefore, is in those positions in which the action of the
power upon it is most efficient, a portion of the energy of the
power is expended in increasing the velocity of the mass of matter
composing the fly-wheel. As the crank approaches the dead points,
the effect of the moving power upon the axle and upon the crank is
gradually enfeebled, and at these points vanishes altogether. The
momentum which has been imparted to the fly-wheel then comes into
play, and carries forward the axle and crank out of the dead
points with a velocity very little less than that which it had
when the crank was in the most favourable position for receiving
the action of the moving power.
By this expedient, the motion of revolution received by the axle
from the steam piston is subject to no other variation than just
the amount of change of momentum in the great mass of the
fly-wheel, which is sufficient to extricate the crank twice in
every revolution from the mechanical dilemma to which its peculiar
form exposes it; and this change of velocity may be reduced to as
small an amount as can be requisite by giving the necessary weight
and magnitude to the fly-wheel.
(124.) By such arrangements the motion imparted to the main axle K
would be uniform, provided that the moving power of the engine be
always proportionate to the load which it drives. But in the
general application of the steam engine to manufactures it was
evident that the amount of the resistance to which any given
machine would be subject must be liable to variation. If, for
example, the engine drive a cotton-mill, it will have to impart
motion to all the spinning frames in that mill. The operation of
one or more of these may from time to time be suspended, and the
moving power would be relieved from a corresponding amount of
resistance. If, under such circumstances, the energy of the moving
power remained the same, the velocity with which the machines
would be driven would be subject to variation, being increased
whenever the operation of any portion of the machines usually
[Pg207] driven by it is suspended; and, on the other hand,
diminished when any increased number of machines are brought into
operation. In fine, the speed would vary nearly in the inverse
proportion of the load driven, increasing as the load is
diminished, and _vice versâ_.
Public-domain text, read in full here on John Shaqi.
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