But Faraday's discovery of electro-magnetic induction led to practical
developments in other directions. Graham Bell placed a thin iron disc
in front of the pole of a bar magnet, and wound a coil of fine wire
round the bar very near the pole. The ends of the coils of two such
instruments he connected together. When the iron disc of one
instrument approached the pole of the magnet, the lines of force were
disturbed, fewer escaped radially from the bar, and more left it at
the end, so as to go straight to the iron disc; thus the number of
lines of force passing through the coil was altered, and a current was
induced which, passing round the coil of the other instrument,
strengthened or weakened its magnet, and caused the iron disc to
approach it or recede from it, according to the way in which the coils
were coupled. Thus the movements of the first disc were faithfully
repeated by the second, and the minute vibrations set up in the disc
by sound-waves were all faithfully repeated by the second instrument.
This was Graham Bell's telephone, in which the transmitter and
receiver were convertible.
But another and an earlier application of Faraday's discoveries is
found in the induction coil. A short length of thick wire and a very
great length of thin wire are wound upon an iron bar. The ends of the
long thin wire, or secondary coil, form the terminals of the machine;
the short thick wire, or primary coil, is connected with a battery,
but in the circuit is placed an "interrupter." This is generally a
small piece of iron, or hammer, mounted on a steel spring opposite one
end of the iron core, the spring pressing the hammer back against a
screw the end of which, like the back of the hammer, is tipped with
platinum; and this contact completes the battery circuit. When the
current starts, the iron core becomes a magnet, attracts the hammer,
breaks the contact, stops the current, the magnetism dies away, the
hammer is forced back by the spring, and then the cycle of events is
repeated. But the starting of the current in the primary causes a
great many lines of magnetic force to pass through each of the many
thousand turns of wire in the secondary, especially as the iron core
conducts most of the lines of force of each turn of the primary almost
from end to end of the coil, and thus through nearly all the turns of
the secondary. This action might be further increased by connecting
the ends of the iron core with an iron tube or series of longitudinal
bars placed outside the whole coil. When the primary current ceases,
all these lines of force vanish. Thus during the starting of the
primary current, which, on account of self-induction, occupies a
considerable time, there will be an inverse current in the secondary
proportional to the rate of increase of the primary; and while the
primary is dying away, there will be a direct current in the secondary
proportional to its rate of decrease. The primary current cannot be
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