With Mars, the exception referred to, we have a more hardly fought
race. That planet is not so far from us as are the other superior
planets. It makes its revolution around the sun in a little less than
two of our years. We travel eighteen miles a second, and it travels
fifteen miles in the same length of time. If we are in line with it at
the beginning of our journey, we glide off swiftly, and easily leave
it far behind. When, however, we come back to the starting-point, it
has not loitered, and is many millions of miles ahead of us, and it
remains ahead until more than seven weeks after we have returned to the
starting-point a second time. Fifty days after we have begun to make
our third round we overtake it, and are again in a direct line with the
planet and the sun. This makes its period with reference to the earth
ninety-three days longer than its own year, and fifty days longer than
two of ours. This is the longest synodic period among the planets.
The orbits in which the planets move all have the form of an
ellipse--that is, of a circle more or less flattened. This flattening,
or the extent to which an orbit departs from the form of a true circle,
is called its eccentricity. The sun is never at the exact center of an
orbit, but is always situated a little to one side of the center--that
is, it is at one of the foci of the ellipse. Consequently, the planet,
as it travels in its orbit, is not always at the same distance from
the sun, the amount of the variation in distance depending upon the
eccentricity of the orbit. The point in the orbit where the planet
is nearest to the sun is its perihelion, and the point at which it is
farthest is its aphelion. It is necessary to keep these elementary
facts in mind in order fully to understand the changes in the motions
and brightness of the planets.
The influence of one body over another that is circling around it is
to make it move faster or more slowly according to its distance from
the central body. Since a planet varies in its distance from the sun in
the different parts of its orbit, it is forced to move fastest when it
is in that part of the orbit which is nearest to the sun, and slowest
when it is in the part farthest away. In other words, the motion of a
planet is more rapid at perihelion than at aphelion. The earth is in
perihelion, or nearest to the sun, in winter--that is, winter in the
northern latitudes--and in consequence it moves faster in winter than
in summer, and the northern winters are, for this reason, a little
shorter than the summers.
Public-domain text, read in full here on John Shaqi.
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