Popular Books on Natural Science: For Practical Use in Every Household, for Readers of All ClassesBernstein, Aaron David
Science
Popular Books on Natural Science: For Practical Use in Every Household, for Readers of All Classes
Bernstein, Aaron David
Science -- Popular works
Now it is evident, that the exit-spark appears after the entrance-spark
just as much later, as the time it took the electric current to run from
one end of the wire to the other end. But in spite of all efforts made,
to see whether the exit-spark actually appears later, the human eye has
not been able to detect the difference. The cause of this is partly
owing to the long duration of the impression upon the retina, which
leads us to the belief, that we see objects much longer than we really
do; partly, the immense rapidity with which the exit-spark follows the
entrance-spark. From these two causes, we are tempted to believe both
sparks to appear at the same moment.
By an ingenious and excellent means, however, this defect in our eye has
been greatly diminished. It is well worth the trouble to read a
description of the experiment attentively. The truly remarkable way in
which it was tried, will please all who read it.
In order to measure the velocity of the electric current, the ends of a
very long wire are placed one above the other. If, now, one makes the
observation with the naked eye, both sparks will be found to stand in a
vertical line, one above the other, as the points of a colon, thus (:).
But he who wishes to measure the velocity of the electrical current does
not look upon the sparks with the naked eye, but into a small mirror,
which, by a clock-work, is made to revolve upon an upright axis with
exceedingly great rapidity. Thus he can see both sparks in the mirror.
If the apparatus be a good one, it will be observed that the sparks, as
seen by the aid of the mirror, do not stand in a vertical line above one
another, but obliquely, thus (.`).
Whence does this come?
The reason of it is, that after the appearance of the entrance-spark it
takes a short time, before the exit-spark appears. During this short
time the mirror moves, though but little, and in it the exit-spark is
seen as if it had moved aside from the entrance-spark.
Hence, it is through the movement of the mirror that the time, which is
necessary for electricity to go through the circuit of the wire, is
ascertained. A little reflection will readily convince the reader, that
the time may be precisely calculated, provided three things be known,
viz.: the length of the wire, the velocity of rotation of the mirror,
and the angular distance of the two sparks as seen in the mirror. Thus:
Suppose the wire to be 1,000 miles long; and suppose the mirror is made
to revolve 100,000 times in a second. Now, if the electrical current
traversed these 1,000 miles of wire during _one_ revolution of the
mirror, then it follows, that the current must move 1,000 miles in the
1/100 part of a second; or, 100,000 miles in a second.
Public-domain text, read in full here on John Shaqi.
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