The logic of modern physicsBridgman, P. W. (Percy Williams)
Philosophy
The logic of modern physics
Bridgman, P. W. (Percy Williams)
Physics -- Philosophy
All this skepticism about the classical work of Lorentz is likely to be
rather irritating or depressing, particularly if one attempts to imagine
what other course could have been adopted. Indeed it does seem that we
find ourselves in a real quandary; Lorentz was practically forced,
because of the character of the mathematical tools at his command, to
take the course that he did, in spite of any recognition of the physical
meaninglessness of the mathematical operations. We have already seen
that conventional mathematics does not correspond to the physical
reality; it cannot easily make a qualified statement subject to
limitations, and it recognizes no difference between the physically big
and the physically little and the corresponding change in the
operational meaning of its symbols. It begins by being a most useful
servant when dealing with phenomena of the ordinary scale of magnitude,
but ends by dragging us by the scruff of the neck willy nilly into the
inside of the electron where it forces us to repeat meaningless
gibberish. Larmor recognized this, and in his electron theory, developed
practically contemporaneously with that of Lorentz, endeavored to treat
electrons as wholes, and not to make meaningless statements about their
insides.[25] But he was much less successful than Lorentz in making his
analysis give physical results, and one may suspect that it was at least
in part due to difficulty with his tools.
[Footnote 25: Joseph Larmor, Æther and Matter, Cambridge University,
Press, 1900. In this book the electron is treated as a point singularity
in the ether.]
What we should like to be able to do is easy to see. The things that go
into our equations must have independent physical meaning, and the
character of our mathematical formulation should change to keep pace
with the change in the physical operations which give meaning to the
terms. For example, electrical density has a meaning for large scale
phenomena, but means nothing on a small scale. Our ultimate electric
unit is the electron; when we get down to this scale of magnitude, our
mathematics ought to be making statements about the relative behavior of
discrete electrons, and not mention so much as by implication the
density at points inside an electron. But this sort of thing we
apparently cannot yet do; the proper mathematical language has not been
developed. Such a language, when developed, must not only be able to
resist the temptation to burrow inside the electron, but must also try
to get along without the field concept, which we have seen is liable to
so much physical abuse, and must reduce effects in complicated
electrical systems to the ultimate elements that have physical meaning,
namely, a dual action between pairs of electrical charges, with no
implications about physical action where the charges are not.
THE NATURE OF LIGHT AND THE CONCEPTS OF
RELATIVITY
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