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
(8) Make all connections firmly with well insulated wire and take care
that the wire does not make contact with any part of the battery except
that to which it is connected.
(9) Keep the battery dry.
(85) Storage Batteries.
The purpose of the storage battery is to store or accumulate the current
generated by a dynamo until so that the current will be available when
the dynamo is not running. A storage cell does not “store” current in
the same way that water is held in a tank, but returns the energy
expended on it through the chemical changes caused in the cell by the
current.
When the charging current passes through the storage battery chemical
changes are produced in the electrodes and electrolyte, and the energy
expended on the cell is in the form of latent chemical energy, in which
state it remains until the electrodes are connected with one another by
a wire or some other conducting medium. When the electrodes are
connected through an external circuit, the electrolyte acts on the
electrodes causing them to assume their original composition. As they
pass into their previous chemical condition the latent chemical energy
is converted into electrical energy. The current thus produced may be
used in the same way as in a primary cell.
When discharging, the action of a storage battery is similar to that of
a primary battery, the current being produced by the action of a fluid
on two dissimilar electrodes. Instead of supplying new elements when the
battery is discharged, as in the case of the primary cell, the elements
are brought back to their original state by passing a current through
the cell in the opposite direction to that of the discharge.
There are several combinations of materials which may be used in the
making of storage battery electrodes and electrolytes, but with the
exception of the lead sulphuric battery and the new Edison battery none
have proven a commercial success.
The most common type of storage or secondary cell is the lead-sulphuric
type in which the electrolyte is dilute sulphuric acid and the
electrodes are lead plates, covered with a chemical composition known as
the active material. These plates usually consist of a lead grid, or
lattice frame in the pockets of which is pasted the active material. The
pockets or lattice bars of the plates are for the purpose of supporting
the active material which is of a weak and spongy nature. The active
material on the positive plate is usually litharge, while that on the
negative plate is red lead.
After charging, the active material on the positive plate is changed to
lead peroxide by the action of the current, and the active material on
the negative plate is changed into spongy metallic peroxide. The
composition of the active material on the plates determines the
direction of flow of the discharge, or secondary current. The current
flows from the positive plate to the negative through the external
circuit.
Public-domain text, read in full here on John Shaqi.
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