There are, however, two theories of gravitation, both old, which seem to
be especially closely connected with the idea of the electrical
constitution of matter. The first of these is the theory, associated
with the two fluid theory of electricity, that gravity is a kind of
residual electrical effect, due to the attraction between the units of
positive and negative electricity being a little greater than the
repulsion between the units of electricity of the same kind. Thus on
this view two charges of equal magnitude, but of opposite sign, would
exert an attraction varying inversely as the square of the distance on a
charge of electricity of either sign, and therefore an attraction on a
system consisting of two charges equal in magnitude but opposite in sign
forming an electrically neutral system. Thus if we had two neutral
systems, A and B, A consisting of m positive units of electricity and an
equal number of negative, while B has n units of each kind, then the
gravitational attraction between A and B would be inversely proportional
to the square of the distance and proportional to n m. The connexion
between this view of gravity and that of the electrical constitution of
matter is evidently very close, for if gravity arose in this way the
weight of a body would only depend upon the number of units of
electricity in the body. On the view that the constitution of matter is
electrical, the fundamental units which build up matter are the units of
electric charge, and as the magnitude of these charges does not change,
whatever chemical or physical vicissitudes matter, the weight of matter
ought not to be affected by such changes. There is one result of this
theory which might possibly afford a means of testing it: since the
charge on a corpuscle is equal to that on a positive unit, the weights
of the two are equal; but the mass of the corpuscle is only 1/1700 of
that of the positive unit, so that the acceleration of the corpuscle
under gravity will be 1700 times that of the positive unit, which we
should expect to be the same as that for ponderable matter or 981.
The acceleration of the corpuscle under gravity on this view would be
1.6 × 10^6. It does not seem altogether impossible that with methods
slightly more powerful than those we now possess we might measure the
effect of gravity on a corpuscle if the acceleration were as large as
this.
Public-domain text, read in full here on John Shaqi.
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