Scientific Culture, and Other Essays: Second Edition; with AdditionsCooke, Josiah P., Jr. (Josiah Parsons)
Science
Scientific Culture, and Other Essays: Second Edition; with Additions
Cooke, Josiah P., Jr. (Josiah Parsons)
Science
But you may ask, How can such a difference of pressure exist on
different surfaces exposed to one and the same medium? and your question
is a perfectly legitimate one; for it is just here that the new
phenomena seem to belie all our previous experience. If, however, you
followed me in my very partial exposition of the mechanical theory of
gases, you will easily see that on this theory it is a more difficult
question to explain why such a difference of pressure does not manifest
itself in every gas medium and under all conditions between any two
surfaces having different temperatures.
We saw that gas pressure is a double effect, caused both by the impact
of molecules and by the recoil of the surface attending their rebound.
We also saw that when molecules strike a heated surface they rebound
with increased velocity, and hence produce an increased pressure against
the surface, the greater the higher the temperature. According to this
theory, then, we should expect to find the same atmosphere pressing
unequally on equal surfaces if at different temperatures; and the
difference in the pressure on the lampblack and mica surfaces of the
vanes, which the motion of the radiometer wheel necessarily implies, is
therefore simply the normal effect of the mechanical condition of every
gas medium. The real difficulty is, to explain why we must exhaust the
air so perfectly before the effect manifests itself.
The new theory is equal to the emergency. As has been already pointed
out, in the ordinary state of the air the amplitude of the molecular
motion is exceedingly small, not over a few ten-millionths of an inch--a
very small fraction, therefore, of the height of the inequalities on the
lampblack surfaces of the vanes of a radiometer. Under such
circumstances, evidently the molecules would not leave the heated
surface, but simply bound back and forth between the vanes and the
surrounding mass of dense air, which, being almost absolutely a
non-conductor of heat, must act essentially like an elastic solid wall
confining the vanes on either side. For the time being, and until
replaced by convection currents, the oscillating molecules are as much a
part of the vanes as our atmosphere is a part of the earth; and on this
system, as a whole, the homogeneous dense air which surrounds it must
press equally from all directions. In proportion, however, as the air is
exhausted, the molecules find more room and the amplitude of the
molecular motion is increased, and, when a very high degree of
exhaustion is reached, the air particles no longer bound back and forth
on the vanes without change of condition, but they either bound off
entirely like a ball from a cannon, or else, having transferred a
portion of their momentum, return with diminished velocity, and in
either case the force of the reaction is felt.[E]
Public-domain text, read in full here on John Shaqi.
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