The Romance of Modern Invention: Containing Interesting Descriptions in Non-technical Language of Wireless Telegraphy, Liquid Air, Modern Artillery, Submarines, Dirigible Torpedoes, Solar Motors, Airships, &c. &c.Williams, Archibald
Science
The Romance of Modern Invention: Containing Interesting Descriptions in Non-technical Language of Wireless Telegraphy, Liquid Air, Modern Artillery, Submarines, Dirigible Torpedoes, Solar Motors, Airships, &c. &c.
Williams, Archibald
Inventions
It is a curious instance of the manner in which man unconsciously
copies nature that the parts of the reproducing attachment of a
phonograph contains parts corresponding in function exactly to those
bones of the ear known as the Hammer, Anvil, and Stirrup.
To understand the inner working of the phonograph the reader must be
acquainted with the theory of sound. All sound is the result of
impulses transmitted by a moving body usually reaching the ear through
the medium of the air. The quantity of the sound, or loudness, depends
on the violence of the impulse; the tone, or note, on the number of
impulses in a given time (usually fixed as one second); and the
quality, or _timbre_, as musicians say, on the existence of minor
vibrations within the main ones.
If we were to examine the surface of a phonograph record (or
phonogram) under a powerful magnifying glass we should see a series
of scoops cut by the gouge in the wax, some longer and deeper than
others, long and short, deep and shallow, alternating and recurring in
regular groups. The depth, length, and grouping of the cuts decides
the nature of the resultant note when the reproducing sapphire point
passes over the record--at a rate of about ten inches a second.
The study of a tracing made on properly prepared paper by a point
agitated by a diaphragm would enable us to understand easily the cause
of that mysterious variation in _timbre_ which betrays at once what
kind of instrument has emitted a note of known pitch. For instance,
let us take middle C, which is the result of a certain number of
atmospheric blows per second on the drum of the ear. The same note may
come from a piano, a violin, a banjo, a man’s larynx, an organ, or a
cornet; but we at once detect its source. It is scarcely imaginable
that a piano and a cornet should be mistaken for one another. Now, if
the tracing instrument had been at work while the notes were made
successively it would have recorded a wavy line, each wave of exactly
the same _length_ as its fellows, but varying in its _outline_
according to the character of the note’s origin. We should notice that
the waves were themselves wavy in section, being jagged like the teeth
of a saw, and that the small secondary waves differed in size.
The minor waves are the harmonics of the main note. Some musical
instruments are richer in these harmonics than others. The fact that
these delicate variations are recorded as minute indentations in the
wax and reproduced is a striking proof of the phonograph’s mechanical
perfection.
Furthermore, the phonograph registers not only these composite notes,
but also chords or simultaneous combinations of notes, each of which
may proceed from a different instrument. In its action it here
resembles a man who by constant practice is able to add up the pounds,
shillings, and pence columns in his ledger at the same time, one wave
system overlapping and blending with another.
Public-domain text, read in full here on John Shaqi.
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