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
Evidently the earth by its motion round the sun makes every star
describe, a little parallactic ellipse; the nearer the star is the
larger this ellipse will be, and the farther the star the smaller: if
the star were at an infinite distance, its ellipse would become a
point, that is, if we imagine ourselves occupying the position of the
star, even the vast orbit of the earth, 186 million miles across, would
shrink to invisibility or become a mathematical point.
Measurement of stellar parallax is one of many problems of exceeding
difficulty that confront the practical astronomer. But the actual
research nowadays is greatly simplified by photography, which enables
the astronomer to select times when the air is not only clear, but very
steady for making the exposures. Development and measurement of the
plates can then be done at any time. Pritchard of Oxford, England, was
among the earliest to appreciate the advantages of photography in
parallax work, and Schlesinger, Mitchell, Miller, Slocum and Van Maanen,
with many others in this country, have zealously prosecuted it.
How shall we intelligently express the vast distances at which the stars
are removed from us? Of course we can use miles, and pile up the
millions upon millions by adding on ciphers, but that fails to give much
notion of the star's distance. Let us try with Alpha Centauri: its
parallax of 0".75 means that it is 275,000 times farther from the sun
than the earth is. Multiplying this out, we get 25 trillion miles, that
is, 25 millions of million miles--an inconceivable number, and an
unthinkable distance.
Suppose the entire solar system to shrink so that the orbit of Neptune,
sixty times 93 million miles in diameter, would be a circle the size of
the dot over this letter i. On the same scale the sun itself, although
nearly a million miles in diameter, could not be seen with the most
powerful microscope in existence; and on the same scale also we should
have to have a circle ten feet in diameter, if the solar system were
imagined at its center and Alpha Centauri in its circumference.
So astronomers do not often use the mile as a yardstick of stellar
distance, any more than we state the distance from London to San
Francisco in feet or inches. By convention of astronomers, the average
distance between the centers of sun and earth, or 93 million miles, is
the accepted unit of measure in the solar system. So the adopted unit of
stellar distance is the distance traveled by a wave of light in a year's
time: and this unit is technically called the light-year. This unit of
distance, or stellar yardstick, as we may call it, is nearly 6 millions
of million miles in length. Alpha Centauri, then, is four and one-third
light-years distant, and 61 Cygni seven and one-fifth light-years away.
Public-domain text, read in full here on John Shaqi.
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