The Popular Science Monthly, October, 1900: Vol. 57, May, 1900 to October, 1900 — John Shaqi
The Popular Science Monthly, October, 1900: Vol. 57, May, 1900 to October, 1900Various
History
The Popular Science Monthly, October, 1900: Vol. 57, May, 1900 to October, 1900
Various
Science -- Periodicals; Technology -- Periodicals
Gasoline motors are made with one, two or more cylinders, but in each
cylinder the action that takes place is that described above. The
actual construction of a motor is not so simple as might be assumed
from the appearance of Fig. 1; many details are required which are
not here shown. A more perfect idea of the actual construction of a
gasoline motor can be had from Fig. 2, which is a working drawing of a
recent European invention. In this design it will be noticed that the
cylinder is cooled by radiation into the surrounding air, the exterior
surface being increased by numerous circular ribs and also by extending
a hollow trunk from the upper side of the piston, so as not only to
increase the radiating surface, but also to allow the hot air to escape
from the chamber _T_ in which the crank discs revolve. In this drawing
_E_ is the explosion chamber, corresponding to _Q_ in Fig. 1, and the
valve _s_ is the counterpart of _f_, while _s’_ corresponds to the
valve _h_. The upper pipe _t_ is the pipe _e_ of Fig. 1 and the lower
pipe _t’_ is the pipe _r_ of the same figure. Although the crank discs,
connecting rods and other details are different in shape, it will
readily be seen that their relation to each other is the same.
[Illustration: FIG. 3. REVERSING MECHANISM.]
Since a gasoline motor cannot start of its own accord, it is necessary
in vehicles in which they are used so to arrange the driving gear that
the motor may be kept in motion all the time and always in the same
direction, hence, to reverse the direction of the carriage, reversing
mechanism, independent of the motor, must be provided. The most simple
mechanism for a gasoline vehicle employing spur gearing exclusively is
shown in diagrammatic form in Fig. 3. In this figure _A_ represents
the cylinder of the motor, _B_ the crank disc chamber and _M_ the
vaporizing receptacle, which is generally called the carburator. The
pinion _C_, on the end of the motor shaft, meshes into a gear _D_
which is mounted upon a sleeve _E_ which revolves freely round shaft
_G_. This sleeve has its ends formed so as to engage with the gears
mounted upon shaft _G_, and by means of a lever, which is not shown,
but which works in groove _a_, the clutch either _s_ or _ss_ can be
thrown into engagement with its corresponding gear. If _s_ is thrown
into gear, as shown in the drawing, the wheel _F_ will turn _H_ and the
pinion _I_ will rotate the gear _J_ which is mounted upon the axle of
the carriage. If the clutch _ss_ is thrown into engagement, the gear
_G_ will turn _K_ and this wheel will turn _l_; but, as can be clearly
seen, the direction in which _l_ will revolve will be opposite to its
motion when driven through _F_ and _H_, therefore, if when _F_ drives
the carriage runs forward, when _G_ drives it will run backward, and
when _E_ is moved to the central position, so that neither _s_ nor _ss_
engages with their respective gears, the vehicle will stand still, but
the motor will continue to revolve.
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