Looking upon the moon as a hollow sphere of somewhat the same
proportions as we have made out for the earth, the region of greatest
density would be at about 234 miles deep from the outer surface, the
interior surface of the shell at the depth of 692 miles, and the
hollow centre 776 miles in diameter, as long as it continued to rotate
upon its axis. When that motion ceased and the seas were transferred
to the hemisphere farthest off from the earth, and the liquid matter
in the interior had gravitated towards the nearest, as we have just
said above, its conditions would be very materially altered. Lest it
should be supposed that with a very thin crust, nearly its whole mass
would gravitate to the side nearest to the earth, let us always bear
in mind that the moon would be virtually solid to not far from the
inner surface of the shell, through the pressure of superincumbent
matter, both from without and from within, in the same manner as we
have considered the earth to be. Whatever water had been absorbed by
the crust when it was still rotating on its axis--which, at most,
could have penetrated only a few miles--and even whatever lakes or
inland seas might have been left on the surface always seen by us,
would be soon evaporated by the internal heat, and the heat radiated
by the sun--which Sir John Herschel has calculated to be greater than
boiling water--and driven off in the shape of vapour in the same
manner as the atmosphere had been. These transferences would lead to
two consequences, each one of its own nature, which we must not fail
to notice particularly, as in great measure they explain to us the
constitution, or rather the construction, of the moon. (1) All air and
vaporous matter being translated to the unseen hemisphere would tend to
cool it more rapidly and deeply than the other, not only on account of
the cooling powers of the water, but from the atmosphere and vapours
preventing the heat of the sun from acting so powerfully upon it. (2)
On the other hand, owing to the accumulation of melted, or liquid,
matter in the interior of the side now turned permanently towards the
earth, the formerly solid part of that side would tend to increase in
temperature, which, joined to the heat from the sun not intercepted by
any atmosphere, and continuing without interruption for a fortnight at
a time, would produce a great difference in the temperatures of the two
hemispheres. Thus it is natural to suppose that the thicker and cooler
solid shell on the one side would tend to weaken and drive down the
volcanic forces to a greater depth; while the greater temperature and
thinner solid shell on the other, the down side--the one next to the
earth--would have an exactly opposite tendency and would bring them
nearer to the surface. In this manner we seem to find a very plausible
reason for the great exuberance of the volcanic forces displayed on the
surface of the moon always presented to us.
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Elsewhere in the archive
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account