Man's Place in the Universe: A Study of the Results of Scientific Research in Relation to the Unity or Plurality of Worlds, 3rd EditionWallace, Alfred Russel
Science
Man's Place in the Universe: A Study of the Results of Scientific Research in Relation to the Unity or Plurality of Worlds, 3rd Edition
Wallace, Alfred Russel
Life; Plurality of worlds; Stars
Motion being a necessary result of gravitation, we know that every star,
planet, comet, or nebula must be in motion through space, and these
motions--except in systems physically connected or which have had a common
origin--are, apparently, in all directions. How these motions originated
and are now regulated we do not know; but there they are, and they furnish
the motive power of the collisions, which, when affecting large bodies or
masses of diffused matter, lead to the formation of the various kinds of
permanent stars; while when smaller masses of matter are concerned those
temporary stars are formed which have interested astronomers in all ages.
It must be noted that although the motions of the single stars appear to be
in straight lines, yet the spaces through which they have been observed to
move are so small that they may really be moving in curved orbits around
some central body, or the centre of gravity of some aggregation of stars
bright and dark, which may itself be comparatively at rest. There may be
thousands of such centres around us, and this may sufficiently explain the
apparent motions of stars in all directions.
A SUGGESTION AS TO THE FORMATION OF SPIRAL NEBULÆ
In a remarkable paper in the Astrophysical Journal (July 1901), Mr. T.C.
Chamberlin suggests an origin for the spiral nebulæ, as well as of swarms
of meteorites and comets, which seems likely to be a true, although perhaps
not the only one.
There is a well-known principle which shows that when two bodies in space,
of stellar size, pass within a certain distance of each other, the smaller
one will be liable to be torn into fragments by the differential attraction
of the larger and denser body. This was originally proved in the case of
gaseous and liquid bodies, and the distance within which the smaller one
will be disrupted (termed the Roche limit) is calculated on the supposition
that the disrupted body is a liquid mass. Mr. Chamberlin shows, however,
that a solid body will also be disrupted at a lesser distance dependent on
its size and cohesive strength; but, as the size of the two bodies
increases, the distance at which disruption will occur increases also, till
with very large bodies, such as suns, it becomes almost as large as in the
case of liquids or gases.
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