Those who are desirous of studying its appearance, as seen in the most
powerful telescopes, are referred to the plate in Sir John Herschel’s
“Results of Astronomical Observations at the Cape of Good Hope,” in
which all its features are admirably delineated, and the positions of
150 stars which surround θ in the area occupied by the Nebula, laid
down. In Fig. 82 it is represented in great detail, as seen with the
included small stars, all of which have been mapped with reference to
their positions and brightness. This then comes from that power of the
telescope which simply makes it a sort of large eye. We may measure the
illuminating power of the telescope by a reference to the size of our
own eye. If one takes the pupil of an ordinary eye to be something like
the fifth of an inch in diameter, which in some cases is an extreme
estimate, we shall find that its area would be roughly about
one-thirtieth part of an inch. If we take Lord Rosse’s speculum of six
feet in diameter the area will be something like 4,000 inches: and if we
multiply the two together we shall find, if we lose no light, we should
get 120,000 times more light from Lord Rosse’s telescope than we do from
our unaided eye, everything supposed perfect.
Let us consider for a moment what this means; let us take a case in
point. Suppose that owing to imperfections in reflection and other
matters two-thirds of the light is lost so that the eye receives 40,000
times the amount given by the unaided vision, then a sixth magnitude
star—a star just visible to the naked eye—would have 40,000 times more
light, and it might be removed to a distance 200 times as great as it at
present is and still be visible in the field of the telescope, just as
it at present is to the unaided eye. Can we judge how far off the stars
are that are only just visible with Lord Rosse’s instrument? Light
travels at the rate of 185,000 miles a second, and from the nearest star
it takes some 3½ years for light to reach us, and we shall be within
bounds when we say that it will take light 300 years to reach us from
many a sixth magnitude star.
But we may remove this star 200 times further away and yet see it with
the telescope, so that we can probably see stars so far off that light
takes 60,000 years to reach us, and when we gaze at the heavens at night
we are viewing the stars not as they are at that moment, but as they
were years or even hundreds of years ago, and when we call to our
assistance the telescope the years become thousands and tens of
thousands—expressed in miles these distances become too great for the
imagination to grasp; yet we actually look into this vast abyss of space
and see the laws of gravitation holding good there, and calculate the
orbit of one star about another.
Public-domain text, read in full here on John Shaqi.
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