Practical Hand Book of Gas, Oil and Steam Engines: Stationary, Marine, Traction; Gas Burners, Oil Burners, Etc.; Farm, Traction, Automobile, Locomotive; A simple, practical and comprehensive book on the construction, operation and repair of all kinds of engines. Dealing with the various parts in detail and the various types of engines and also the use of different kinds of fuel.Rathbun, John B.
Science
Practical Hand Book of Gas, Oil and Steam Engines: Stationary, Marine, Traction; Gas Burners, Oil Burners, Etc.; Farm, Traction, Automobile, Locomotive; A simple, practical and comprehensive book on the construction, operation and repair of all kinds of engines. Dealing with the various parts in detail and the various types of engines and also the use of different kinds of fuel.
Rathbun, John B.
Internal combustion engines; Traction-engines
Kerosene Vaporizer on Fairbanks-Morse Vertical Engine. Started on
Kerosene Directly by Heating Vaporizer with Torch.
]
The deposits of free carbon (soot) caused by the “cracking” or
decomposition of the kerosene vapor before ignition, due to the high
temperature of the cylinder, are burnt to carbon dioxide by the oxygen
of the water which is also set free by the heat of the cylinder. This
produces an odorless gas (CO_{2}) which indicates complete combustion.
Besides the increase of fuel efficiency due to the water vapor, the
cylinder is more thoroughly cooled and is more efficiently lubricated
because of the reduction in temperature.
CHAPTER III
WORKING CYCLES
(24) Requirements of the Engine.
In order that an internal combustion engine shall operate and develop
power continuously the following routine of events must occur in the
cylinder in the following order, no matter what the type of engine.
(1) The cylinder must be filled with a combustible mixture of air and
gaseous fuel at as nearly atmospheric pressure as possible.
(2) The mixture must be compressed in order to develop the value of the
fuel.
(3) Ignition must take place at the end of the compression stroke or at
the highest point of compression.
(4) Complete combustion of the fuel must follow the ignition of the
charge, with an increase of temperature and pressure which will act on
the piston to the end of the power stroke.
(5) After the piston has completed the working stroke the products of
combustion must be ejected from the cylinder completely to make way for
the admission of the new combustible mixture.
With the exception of the Diesel engine which (1) fills the cylinder
with pure air without the fuel, and (2) injects the fuel after
compression, all internal combustion engines not only perform each of
these operations but proceed with events in the order given as well. The
accomplishment of the five acts is called a “cycle of events,” or a
“=CYCLE=,” and the series is performed in different ways in different
types of engines. In the operation of the engine, the series of events
occur over and over again, always in the same order, 1–2–3–4–5,
1–2–3–4–5, 1–2–3–4–5, etc. The five events are generally given in terms
of the number of strokes of the piston taken to accomplish the complete
routine, thus a two stroke cycle engine performs the series in two
strokes, and a four stroke cycle engine in four strokes, and so on.
Public-domain text, read in full here on John Shaqi.
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