Flowers of the SkyProctor, Richard A. (Richard Anthony)
Science
Flowers of the Sky
Proctor, Richard A. (Richard Anthony)
Astronomy
In figs. 17 and 18 the shape and position of the planetary paths are
correctly shown. Very little description is necessary, but it may be
mentioned that on each orbit the point nearest to the sun is indicated
by the initial letter of the planet, while the point farthest from the
sun is indicated by the same letter _accented_. The places where each
path crosses the plane of the earth's--which is supposed to be the plane
of the paper--are marked ☊ and ☋, the former sign marking
where the planet in travelling round in the direction shown by the
arrows crosses the plane of the earth's path from below upwards, while
the latter marks the place where the planet in travelling round crosses
the plane of the earth's path from above downwards.
[Illustration: Fig. 17.--The paths of Mercury, Venus, the Earth, and
Mars, around the Sun.]
Fig. 17 shows the paths of the inner family of planets of which our
earth is a member. Fig. 18 shows the outer family of planets, and
inside of it the ring of small planets called asteroids. Inside that
ring, again, we see the paths of the inner family of planets; but they
appear on a very small scale indeed. In fact, the scales appended to the
two figures show that a length which represents 50,000,000 miles in fig.
17, represents 1,000,000,000 miles in fig. 18; or, in other words, the
scale of fig. 18 is only one-twentieth of the scale of fig. 17. On the
scale of fig. 17 the sun would be fairly represented by an ordinary
pin-hole; on the scale of fig. 18 the sun would be scarcely visible. The
dots round the orbits show the planets' places at intervals of 10 days
in fig. 17, and of 1000 days in fig. 18, starting always from the left
side of orbit (on horizontal line through sun).
[Illustration: Fig. 18.--The paths of Jupiter, Saturn, Uranus, and
Neptune, around the ring of small planets.]
Now looking at fig. 18 and noting how small is the distance of the path
of Mars from the earth's path, compared with the distance of Saturn's
path, we understand why Saturn, despite his far superior size, shines
far less brightly in our skies than Mars does. In fact, in October,
1877, the Earth and Mars were on the parts of their tracks which lay
nearest together, that is, the parts occupying the lower right-hand
corner of fig. 17; and turning to fig. 18, we perceive that the distance
separating the two paths here is very small indeed compared with
Saturn's distance.
So that, when we looked at Mars and Saturn as they shone in conjoined
splendour in our skies, in 1877, we saw in the bright orb of Mars the
planet whose track lies nearest to us in that direction, whereas in
looking at Saturn the range of view passed athwart the track of Mars,
through the ring of asteroids, and past the orbit of Jupiter, before
entering the wide and barren region which separates the orbits of the
two giant members of the solar system.
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