The Romance of War Inventions: A Description of Warships, Guns, Tanks, Rifles, Bombs, and Other Instruments and Munitions of Warfare, How They Were Invented & How They Are EmployedCorbin, Thomas W.
History
The Romance of War Inventions: A Description of Warships, Guns, Tanks, Rifles, Bombs, and Other Instruments and Munitions of Warfare, How They Were Invented & How They Are Employed
Corbin, Thomas W.
Inventions; Military art and science; Naval art and science
Now several scientific men had suggested, before Hertz's time, that when
that occurred something else happened too. They thought that the charge
did not simply rush from one plate to the other instantly, but that it
oscillated to and fro for a period; that the surplus rushing round
overshot the mark, so to speak, and not only made up the deficiency but
caused a surplus on the opposite plate, after which this new surplus
rushed back again through the wire, doing the same thing, though to a
less and less degree, several times over before a condition of perfect
rest was reached. To use a simple analogy, it was thought that the
surplus swung to and fro like the swinging of a pendulum. We know that a
pendulum swings because of its inertia, and electricity possesses a
property very like inertia which, it was thought, would cause it to
behave in the same way.
The Ether waves travel at the rate of 186,000 miles per second, so that
if, as was thought, a sudden current of electricity gives rise to a
wave, currents which succeed each other at the rate of one per second
would produce waves 186,000 miles apart. A hundred currents per second
would give a wave length of 1860 miles. A thousand per second would give
186 miles. But a thousand succeeding currents per second are difficult
to produce, and 186 miles is so very much greater than the tiny fraction
of an inch, which is the length of the light and heat waves, that Hertz
had to find some way of making currents succeed each other faster even
than a thousand times per second.
So he thought of these oscillating currents which were supposed to occur
when a condenser was discharged, and he rigged up a condenser with an
induction coil and a spark gap in a way which he thought would do what
he wanted.
There is not room here to explain the Induction Coil, indeed it is so
well known that it will be quite sufficient to state that it is an
apparatus which takes steady current from a battery and gives back
instead a lot of little spurts or splashes of current at a rate of,
say, fifty or one hundred splashes per second, according as we adjust
the little vibrating spring which forms a part of the coil. We can so
connect this to a condenser that each splash will charge it up; and we
can combine with it a spark-gap, that is to say, a gap between two
knobs, so that every time it is charged it immediately discharges again
through this gap. Thus we may have, say, one hundred splashes per
second, and each splash is followed by several oscillations across the
air-gap, the oscillations taking place at the rate of perhaps a million
per second. Each series of oscillations is called a "train."
Now a million per second gives a wave-length somewhere about what Hertz
wanted, so he arranged his apparatus as just described.
Public-domain text, read in full here on John Shaqi.
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