James had a long talk with the captain one day about the telescope,
and got a capital lesson about the magnifying power being according
to the character and size of the glasses used. The sailors called the
instrument the “Bring ’em near;” and it does make distant objects
look as if near. It was explained to the boy that the stars were of
different magnitudes or sizes, first, second, third, &c., according to
their relative distances. The following conversation followed between
the father and son:--
“Now, my boy, I must try and give you some idea of the penetrating
power of light, that you may get an idea of the enormous distances of
the stars. You are aware that the more distant they are the less their
light. A star of the first or nearest magnitude will have one hundred
times the light of one of the sixth magnitude. A telescope, therefore,
gathering one hundred times the ordinary light, will make the sixth
look as near as the first.
And will it be one hundred times further off?
No; light increases or diminishes according to the square of the
distance.
I know. If the light be one hundred times less, the star will be
ten times further off, for the square of ten is one hundred. I can
understand now that a thing is only seen by the help of light. I do not
see many stars, because their light is too little for my eyes to take
in. The telescope has bigger eyes to take in the light of the distant
stars and nebulæ.
The pupil of the eye is but one-eighth of an inch in diameter. An
object glass of twelve inches diameter is, therefore, ninety-six, or
say one-hundred times as long. As the light seen is according to the
square of the diameter, the telescope of twelve inches will receive one
hundred times one hundred, or ten thousand times more light.
But is there a way of measuring the quantity of light?
There is. We find that the sun has twenty-two thousand millions of
times more light than the nearest of the fixed stars.
Then, the square root of this ought to tell how much further off it is.
Let me see. It will be about 150,000.
Yes. If the sun were put back 150,000 times further than it is, it
ought to look as brightly as that star. If it does not, it is because
it is really smaller than the star.
What! 150,000 times 95 millions!
But that is nothing; for it is only to the first rank. What of the
twentieth magnitude?
Yes. But you say the nebulæ are further off than that.
I may tell you that if the sun moved three times as fast as the world
does, in its six hundred millions of miles a year, it would take two
hundred and fifty millions of years to get to as far as Lord Rosse’s
telescope could see.
That takes my breath away.
Hear a little more. Light comes from the sun to us in eight minutes. It
will take sixty thousand years to come from one of those stars Lord de
Rosse saw. In fact his telescope has enlarged our universe one hundred
and twenty-five million times.
Public-domain text, read in full here on John Shaqi.
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