The Study of Elementary Electricity and Magnetism by Experiment: Containing Two Hundred Experiments Performed with Simple, Home-made ApparatusSt. John, Thomas M. (Thomas Matthew)
Science
The Study of Elementary Electricity and Magnetism by Experiment: Containing Two Hundred Experiments Performed with Simple, Home-made Apparatus
(B) Get clearly in mind in which direction the right-hand end
of the needle is deflected when a current enters A G at L, the
left-hand binding-post. If you have forgotten the results of
previous experiments, use the cell for an instant, touching the
wire from the carbon to L and that from the zinc to R. If any
currents come from the coil, later, you should be able to tell
in which direction they flow, the coil and A G forming a closed
circuit.
(C) Hold the magnet, M, as shown, and quickly push it into
the coil until it has the place of a core, at the same time
watching the needle. If a current is produced, in which
direction does it flow from the coil? Does the needle remain
deflected? Is the current constant or temporary?
(D) After the magnet, M, has been placed in the coil, as in
(C), and the needle has come to rest, quickly pull M from the
coil, watching the needle. If a current is produced, does it
pass from the coil in the same direction as before, in (C)?
(E) Turn M end for end, repeat (C) and (D), and study the
results. Are lines of force made to cut the turns of the coil?
(F) Repeat (C) and (D), moving M slowly.
_=428. Discussion.=_ An induced current, produced as in the above
experiment, is a momentary one. No current passes when the magnet and
coil are still; at least one of them has to be in motion. When the
magnet is inserted, the induced current is said to be an _inverse_ one,
as it passes in a direction opposite to that which would be necessary
to give the magnet its poles, it being considered a core magnetized
by the current. A _direct_ current is produced when the magnet is
withdrawn from the coil. Rapid movements produce stronger currents than
slow ones. (See § 439.)
_=429. Induced Currents and Work.=_ It takes force to move a magnet
through the center of a coil, and it is this work that is the source of
the induced current. When the coil is pushed on to the magnet, or when
it is moved through a magnetic field, force is also required. We have,
in this simple experiment, the key to the action of the dynamo and
other important electrical machines. These will be discussed later.
=EXPERIMENT 176. To find whether a current can be generated
with a bar magnet and a coil of wire having an iron core.=
=430. Directions.= (A) Arrange as in Exp. 175, Fig. 136, and,
in addition, place an iron core (No. 92) inside of the coil
(No. 90).
(B) Hold the bar magnet (No. 97) as in Fig. 136, and quickly
lower it until it touches the core, at the same time watching
the needle. Study results, direction of current, etc., as
before.
(C) Suddenly withdraw M from the core. Is the current produced
in the same direction as that from (B)?
(D) Turn M end for end and repeat (B) and (C).
(E) Repeat (C) and (D), moving magnet slowly.
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