The effect on the spectrum resembles the Doppler effect of a velocity
of recession, and can therefore only be discriminated if we know
already the line-of-sight velocity. In the case of a double star the
velocity is known from observation of the other component of the
system, so that the part of the displacement attributable to Doppler
effect is known. Owing to orbital motion there is a difference of
velocity between Sirius and its Companion amounting at present to 43
km. per sec. and this has been duly taken into account; the observed
difference in position of the spectral lines of Sirius and its
Companion corresponds to a velocity of 23 km. per sec. of which 4 km.
per sec. is attributable to orbital motion, and the remaining 19 km.
per sec. must be interpreted as Einstein effect. The result rests
mainly on measurements of one spectral line H_β. The other
favourable lines are in the bluer part of the spectrum, and since
atmospheric scattering increases with blueness, the scattered light
of Sirius interferes. However, they afford some useful confirmatory
evidence.
Of the other white dwarfs ο^2 Eridani is a double star, its companion
being a red dwarf fainter than itself. The red shift of the spectrum
will be smaller than in the Companion of Sirius and it will not
be so easy to separate it from various possible sources of error.
Nevertheless the prospect is not hopeless. The other recognized white
dwarf is an unnamed star discovered by Van Maanen; it is a solitary
star, and consequently there is no means of distinguishing between
Einstein shift and Doppler shift. Various other stars have been
suspected of being in this condition, including the Companions of
Procyon, 85 Pegasi, and Mira Ceti.
If the Companion of Sirius were a perfect gas its central temperature
would be about 1,000,000,000°, and the central part of the star would
be a million times as dense as water. It is, however, unlikely that the
condition of a perfect gas continues to hold. It should be understood
that in any case the density will fall off towards the outside of the
star, and the regions which we _observe_ are entirely normal. The
dense material is tucked away under high pressure in the interior.
Perhaps the most puzzling feature that remains is the extraordinary
difference of development between Sirius and its Companion, which must
both have originated at the same time. Owing to the radiation of mass
the age of Sirius must be less than a billion years; an initial mass,
however large, would radiate itself down to less than the present mass
of Sirius within a billion years. But such a period is insignificant
in the evolution of a small star which radiates more slowly, and it
is difficult to see why the Companion should have already left the
main series and gone on to this (presumably) later stage. This is
akin to other difficulties in the problem of stellar evolution, and I
feel convinced that there is something of fundamental importance that
remains undiscovered.
Public-domain text, read in full here on John Shaqi.
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