It would appear, then, that all stars are suns with continuous spectra,
and the classes are differentiated by the character of the absorbent
vapours of their atmospheres.
It is very likely that, after the chemists have taught us how to
interpret all the varieties of spectrum, it will be possible to ascribe
the different spectrum-classes to different stages in the life-history
of every star. Already there are plenty of people ready to lay down
arbitrary assumptions about the lessons to be drawn from stellar
spectra. Some say that they know with certainty that each star begins
by being a nebula, and is condensed and heated by condensation until it
begins to shine as a star; that it attains a climax of temperature,
then cools down, and eventually becomes extinct. They go so far as to
declare that they know what class of spectrum belongs to each stage of
a star’s life, and how to distinguish between one that is increasing
and another that is decreasing in temperature.
The more cautious astronomers believe that chemistry is not
sufficiently advanced to justify all of these deductions; that, until
chemists have settled the lately raised question of the transmutation
of elements, no theory can be sure. It is also held that until they
have explained, without room for doubt, the reasons for the presence of
some lines, and the absence of others, of any element in a stellar
spectrum; why the arc-spectrum of each element differs from its spark
spectrum; what are all the various changes produced in the spectrum of
a gas by all possible concomitant variations of pressure and
temperature; also the meanings of all the flutings in the spectra of
metalloids and compounds; and other equally pertinent matters—until
that time arrives the part to be played by the astronomer is one of
observation. By all means, they say, make use of “working hypotheses”
to add an interest to years of laborious research, and to serve as a
guide to the direction of further labours; but be sure not to fall into
the error of calling any mere hypothesis a theory.
_Nebular Hypothesis._—The Nebular Hypothesis, which was first, as it
were, tentatively put forward by Laplace as a note in his _Système du
Monde_, supposes the solar system to have been a flat, disk-shaped
nebula at a high temperature in rapid rotation. In cooling it
condensed, leaving revolving rings at different distances from the
centre. These themselves were supposed to condense into the nucleus for
a rotating planet, which might, in contracting, again throw off rings
to form satellites. The speculation can be put in a really attractive
form, but is in direct opposition to many of the actual facts; and so
long as it is not favoured by those who wish to maintain the position
of astronomy as the most exact of the sciences—exact in its facts,
exact in its logic—this speculation must be recorded by the historian,
only as he records the guesses of the ancient Greeks--as an interesting
phase in the history of human thought.
Public-domain text, read in full here on John Shaqi.
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