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
To explain the variation of the Algol type of variables is easy: a dark,
eclipsing body, somewhat smaller than the primary is supposed to be
traveling round it in an orbit lying nearly edgewise to our line of
sight. The gravitation of this dark companion displaces Algol itself
alternately toward and from the earth, because the two bodies revolve
round their common center of gravity. With the spectroscope this
alternate motion of Algol, now advancing and now receding at the rate of
26 miles per second, has been demonstrated; and the period of this
motion synchronizes exactly with the period of the star's variability.
Russell and Shapley have made extended studies of the eclipsing
binaries, and developed the formulæ by which the investigations of their
orbits are conducted. Heretofore, visual binaries and spectroscopic
binaries afforded the only means of deriving data regarding double
systems, but it is now possible to obtain from the orbits of eclipsing
variables fully as much information relating to binary systems in
general and their bearing on stellar evolution. After an orbit has been
determined from the photometric data of the light curve, the addition
of spectroscopic data often permits the calculation of the masses,
dimensions and densities in terms of the sun. Shapley's original
investigation included the orbits of ninety eclipsing variables, and
with the aid of hypothetical parallaxes, he computed the approximate
position of each system in space. The relation to the Milky Way is
interesting, the condensation into the Galactic plane being very marked;
only thirteen of the ninety systems being found at Galactic latitudes
exceeding 30 degrees.
If we can suppose the variable stars covered with vast areas of spots,
perhaps similar to the spots on the sun, and then combine the variation
of these spot areas with rotation of the star on its axis, there is a
possibility of explanation of many of the observed phenomena, especially
where the range of variation is small. But for the Omicron Ceti type, no
better explanation offers than that afforded by Sir Norman Lockyer's
collision theory. First he assumes that these stars are not condensed
bodies, but still in the condition of meteoric swarms, and the
revolution of lesser swarms around larger aggregations, in elliptic
orbits of greater or less eccentricity, must produce vast multitudes of
collisions; and these collisions, taking place at pretty regular
periods, produce the variable maximum light by raising hosts of meteoric
particles to a state of incandescence simultaneously.
Public-domain text, read in full here on John Shaqi.
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