Astronomy: The Science of the Heavenly Bodies — John Shaqi
Astronomy: The Science of the Heavenly BodiesTodd, David P. (David Peck)
History
Astronomy: The Science of the Heavenly Bodies
Todd, David P. (David Peck)
Astronomy
What is the true shape of the earth? And does the earth's turning round
on its axis affect this shape? Newton saw the answer to these questions
in his law of gravitation. A spherical figure followed as a matter of
course from the mutual attraction of all materials composing the earth,
providing it was at rest, or did not turn round on its axis. But
rotation bulges it at the equator and draws it in at the poles, by an
amount which calculation shows to be in exact agreement with the amount
ascertained by actual measurement of the earth itself.
Another curious effect, not at first apparent, was that all bodies
carried from high latitudes toward the equator would get lighter and
lighter, in consequence of the centrifugal force of rotation. This was
unexpectedly demonstrated by Richer when the French Academy sent him
south to observe Mars in 1672. His clock had been regulated exactly in
Paris, and he soon found that it lost time when set up at Cayenne. The
amount of loss was found by observation, and it was exactly equal to the
calculated effect that the reduction of gravity by centrifugal action
should produce.
Also Newton saw that his law of gravitation would afford an explanation
of the rise and fall of the tides. The water on the side of the earth
toward the moon, being nearer to the moon, would be more strongly
attracted toward it, and therefore raised in a tide. And the water on
the farther side of the earth away from the moon, being at a greater
distance than the earth itself, the moon would attract the earth more
strongly than this mass of water, tending therefore to draw the earth
away from the water, and so raising at the same time a high tide on the
side of the earth away from the moon. As the earth turns round on its
axis, therefore, two tidal waves continually follow each other at
intervals of about twelve hours.
The sun, too, joins its gravitating force with that of the moon, raising
tides nearly half as high as those which the moon produces, because the
sun's vaster mass makes up in large part for its much greater distance.
At first and third quarters of the moon, the sun acts against the moon,
and the difference of their tide-producing forces gives us "neap tides";
while at new moon and full, sun and moon act together, and produce the
maximum effect known as "spring tides."
Public-domain text, read in full here on John Shaqi.
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