One portion of the theory of electricity had been considerably
developed by Cavendish; the application of mathematics to the theory
of attractions, and hence to that of electricity, had been carried to
a great degree of perfection by Laplace, Lagrange, Poisson, Green, and
others. Faraday, however, could not satisfy himself with a
mathematical theory based upon direct action at a distance, and he
filled space, as we have seen, with tubes of force passing from one
body to another whenever there existed any electrical action between
them. These conceptions of Faraday were regarded with suspicion by
mathematicians. Sir William Thomson was the first to look upon them
with favour; and in 1846 he showed that electro-static force might be
treated mathematically in the same way as the flow of heat; so that
there are, at any rate, two methods by which the fundamental formulae
of electro-statics can be deduced. But it is to Maxwell that
mathematicians are indebted for a complete exposition of Faraday's
views in their own language, and this was given in a paper wherein the
phenomena of electro-statics were deduced as results of a stress in a
medium which, as suggested by Newton and believed by Faraday, might
well be that same medium which serves for the propagation of light;
and "the lines of force" were shown to correspond to an actual
condition of the medium when under electrical stress. Maxwell, in
fact, showed, not only that Faraday's lines formed a consistent system
which would bear the most stringent mathematical analysis, but were
more than a conventional system, and might correspond to a state of
stress actually existing in the medium through which they passed, and
that a tension along these lines, accompanied by an equal pressure in
every direction at right angles to them, would be consistent with the
equilibrium of the medium, and explain, on mechanical principles, the
observed phenomena. The greater part of this work he accomplished
while an undergraduate at Cambridge. He showed, too, that Faraday's
conceptions were equally applicable to the case of electro-magnetism,
and that all the laws of the induction of currents might be concisely
expressed in Faraday's language. Defining the positive direction
through a circuit in which a current flows as the direction in which a
right-handed screw would advance if rotating with the current, and the
positive direction around a wire conveying a current as the direction
in which a right-handed screw would rotate if advancing with the
current, Maxwell pointed out that the lines of magnetic force due to
an electric current always pass round it, or through its circuit, in
the positive direction, and that, _whenever the number of lines of
magnetic force passing through a closed circuit is changed, there is
an electro-motive force round the circuit represented by the rate of
diminution of the number of lines of force which pass through the
circuit in the positive direction_.
Public-domain text, read in full here on John Shaqi.
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