If one of our bar magnets is suspended in a sort of stirrup of copper
wire attached to a thread, it comes to rest in a north and south
direction, and it will be noticed that the end which points to the
north is marked, either with a letter N or in some other way. This is
the north pole of the magnet, and of course the other is the south
pole. If now we take our other magnet and bring its north pole near
each pole of the suspended magnet in turn, we find that it repels the
other north pole, but attracts the south pole. Similarly, if we present
the south pole, it repels the other south pole, but attracts the north
pole. From these experiments we learn that both poles of a magnet
attract filings or needles, and that in the case of two magnets unlike
poles attract, but similar poles repel one another. It will be noticed
that this corresponds closely with the results of our experiments
in Chapter I., which showed that an electrified body attracts
unelectrified bodies, such as bits of paper or pith balls, and that
unlike charges attract, and similar charges repel each other. So far as
we have seen, however, a magnet attracts only iron or steel, whereas
an electrified body attracts any light substance. As a matter of fact,
certain other substances, such as nickel and cobalt, are attracted by a
magnet, but not so readily as iron and steel; while bismuth, antimony,
phosphorus, and a few other substances are feebly repelled.
The simplest method of magnetizing a piece of steel by means of one of
our bar magnets is the following: Lay the steel on the table, and draw
one pole of the magnet along it from end to end; lift the magnet clear
of the steel, and repeat the process several times, always starting at
the same end and treating each surface of the steel in turn. A thin,
flat bar of steel is the best for the purpose, but steel knitting
needles may be made in this way into useful experimental magnets.
We have seen that a magnet has two poles or points where the magnetism
is strongest. It might be thought that by breaking a bar magnet in the
middle we should get two small bars each with a single pole, but this
is not the case, for the two poles are inseparable. However many pieces
we break a magnet into, each piece is a perfect magnet having a north
and south pole. Thus while we can isolate a positive or a negative
charge of electricity, we cannot isolate north or south magnetism.
Public-domain text, read in full here on John Shaqi.
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