Fragments of Science: A Series of Detached Essays, Addresses, and Reviews. V. 1-2Tyndall, John
Science
Fragments of Science: A Series of Detached Essays, Addresses, and Reviews. V. 1-2
Tyndall, John
Chemistry; Physics; Science
But supposing you shift the position of your particle of north
magnetism, and bring it nearer to one end of your magnet than to the
other; the forces acting on the particle are no longer equal; the
nearest pole of the magnet will act more powerfully on the particle
than the more distant one. Let SN, fig. 14, be the magnet, and n the
particle of north magnetism, in its new position. It is repelled by
N, and attracted by S. Let the repulsion be represented in magnitude
and direction by the line n o, and the attraction by the shorter line
n M. The resultant of these two forces will be found by completing the
parallelogram m n o p, and drawing its diagonal n p. Along n p, then,
a particle of north magnetism would be urged by the simultaneous
action of S and N. Substituting a particle of south magnetism for n,
the same reasoning would lead to the conclusion that the particle
would be urged along it q. If we place at n a short magnetic needle,
its north pole will be urged along n p, its south pole along n q, the
only position possible to the needle, thus acted on, being along the
line p q, which is no longer parallel to the magnet. Verify this
deduction by actual experiment.
In this way we might go round the entire magnet; and, considering its
two poles as two centres from which the force emanates, we could, in
accordance with ordinary mechanical principles, assign a definite
direction to the magnetic needle at every particular place. And
substituting, as before, a bit of iron wire for the magnetic needle,
the positions of both will be the same.
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