While the fork continues vibrating, if the string be relaxed still
further, it divides into three vibrating parts. Slackening it still
more, it divides into four vibrating parts. And thus we might continue
to subdivide the string into ten, or even twenty ventral segments,
separated from each other by the appropriate number of nodes.
[Illustration: FIG. 46.]
When white-silk strings vibrate thus, the nodes appear perfectly fixed,
while the ventral segments form spindles of the most delicate beauty.
Every protuberance of the twisted string, moreover, writes its motion
in a more or less luminous line on the surface of the aërial gauze. The
four nodes of vibration just illustrated are represented in Fig. 46, 1,
2, 3, 4.[35]
When the synchronism between fork and string is perfect, the vibrations
of the string are steady and long-continued. A slight departure
from synchronism, however, introduces unsteadiness, and the ventral
segments, though they may show themselves for a time, quickly disappear.
[Illustration: FIG. 47.]
In the experiments just executed the fork vibrated in the direction of
the length of the string. Every forward stroke of the fork raised a
protuberance, which ran to the fixed end of the string, and was there
reflected; so that when the _longitudinal_ impulses were properly timed
they produced a _transverse_ vibration. Let us consider this further.
One end of this heavy cord is attached to a hook A, Fig. 47, fixed in
the wall. Laying hold of the other end I stretch the cord horizontally,
and then move my hand to and fro in the direction of the cord. It
swings as a whole, and you may notice that always, when the cord is
at the limit of its swing, the hand is in its most forward position.
If it vibrate in a vertical plane, the hand, in order to time the
impulses properly, must be at its forward limit at the moment the cord
reaches the upper boundary, and also at the moment it reaches the lower
boundary of its excursion. A little reflection will make it plain
that, in order to accomplish this, the hand must execute a complete
vibration while the cord executes a semi-vibration; in other words, the
vibrations of the hand must be twice as rapid as those of the cord.
Precisely the same is true of our tuning-fork. When the fork vibrates
in the direction of the string, the number of vibrations which it
executes in a certain time is twice the number executed by the string
itself. And if, while arranged thus, a fork and string vibrate with
sufficient rapidity to produce musical notes, the note of the fork will
be an octave above that of the string.
Public-domain text, read in full here on John Shaqi.
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