But, it may be asked, cannot a star accelerate its progress by getting
rid of matter in some other way than by radiation? Cannot atoms escape
from its surface? If so the loss of mass and consequent evolution will
be speeded up, and the time required may perhaps even be brought within
range of the alternative theory of transmutation of the elements. But
it is fairly certain that the mass escaping in the form of material
atoms is negligible compared with that which imperceptibly glides
away in the form of radiation. You will perhaps be in doubt as to
whether the 120 billion tons per annum lost by the sun in radiation is
(astronomically regarded) a large quantity or a small quantity. From
certain aspects it is a large quantity. It is more than 100,000 times
the mass of the calcium chromosphere. The sun would have to blow off
its chromosphere and form an entirely fresh one every five minutes in
order to get rid of as much mass in this way as it loses by radiation.
It is obvious from solar observation that there is no such outrush
of material. To put it another way--in order to halve the time-scale
of evolution stated above it would be necessary that a billion atoms
should escape each second through each square centimetre of the sun’s
surface. I think we may conclude that there is no short cut to smaller
mass and that radiation is responsible for practically the whole loss.
We noticed earlier (p. 25) that Nature builds stars which are much
alike in mass, but allows herself some deviation from her pattern
amounting sometimes to a mistake of one 0. I think we may have done
her an injustice, and that she is more careful over her work than we
supposed. We ought to have examined coins fresh from her mint; it was
not fair to take coins promiscuously, including many that had been in
circulation for some hundreds of billions of years and had worn rather
thin. Taking the newly formed stars, i. e. the diffuse stars, we find
that 90 per cent. of them are between 2½ and 5½ times the mass of the
sun--showing that initially the stars are made nearly as closely to
pattern as human beings are. In this range radiation pressure increases
from 17 to 35 per cent, of the whole pressure; I think this would be
expected to be the crucial stage in its rise to importance. Our idea
is that the stellar masses initially have this rather close uniformity
(which does not exclude a small proportion of exceptional stars outside
the above limits); the smaller masses are evolved from these in course
of time by the radiation of mass.
Public-domain text, read in full here on John Shaqi.
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