Scientific American Supplement, No. 288, July 9, 1881Various
Science
Scientific American Supplement, No. 288, July 9, 1881
Various
Science -- Periodicals
"About two years ago, it struck Professor Ayrton and myself, when
thinking how very faint musical sounds are heard distinctly from the
telephone, in spite of loud noises in the neighborhood, that there
was an application of this principle of recurrent effects of far more
practical importance than any other, namely, in the use of musical notes
for coast warnings in thick weather. You will say that fog bells and
horns are an old story, and that they have not been particularly
successful, since in some states of the weather they are audible, in
others not.
"Now, it seems to be forgotten by everybody that there is a medium of
communicating with a distant ship, namely, the water, which is not at
all influenced by changes in the weather. At some twenty or thirty feet
below the surface there is exceedingly little disturbance of the water,
although there may be large waves at the surface. Suppose a large
water-siren like this--experiment shown--is working at as great a depth
as is available, off a dangerous coast, the sound it gives out is
transmitted so as to be heard at exceedingly great distances by an ear
pressed against a strip of wood or metal dipping into the water. If the
strip is connected with a much larger wooden or metallic surface in the
water the sound is heard much more distinctly. Now, the sides of a ship
form a very large collecting surface, and at the distance of several
miles from such a water siren as might be constructed, we feel quite
sure that, above the noise of engines and flapping sails, above the far
more troublesome noise of waves striking the ship's side, the musical
note of the distant siren would be heard, giving warning of a dangerous
neighborhood. In considering this problem, you must remember that
Messrs. Colladon and Sturn heard distinctly the sound of a bell struck
underwater at the distance of nearly nine miles, the sound being
communicated by the water of Lake Geneva."
The next portion of the lecture discussed the great value of a rapid
recurrence of effects, the obtaining of sound by means of a rapid
intermission of light rays on selenium joined up in an electric circuit
being instanced as an example. Then recent experiments on the refractive
power of ebonite were detailed--the rough results tending to give
greater weight to Clerk-Maxwell's electro-magnetic theory of light. The
index of refraction of ebonite was found by Profs. Ayrton and Perry to
be roughly 1.7. Clerk-Maxwell's theory requires that the square of this
number should be equal to the electric specific inductive capacity of
the substance. For ebonite this electric constant varies from 2.2 to 3.5
for different specimens, the mean of which is almost exactly equal to
the square of 1.7.
* * * * *
RESEARCHES ON THE RADIANT MATTER OF CROOKES AND THE MECHANICAL THEORY OF
ELECTRICITY.
By DR. W. F. GINTL, abstracted by DR. VON GERICHTEN.
Public-domain text, read in full here on John Shaqi.
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