Observers with the meridian circle begin by noting the exact
instant when any given star passes the centre of the field of
view of the telescope. This centre is marked with a cross made
by fastening into the focus some pieces of ordinary spider's web,
which give a well-marked, delicate set of lines, even under the
magnifying power of the telescope's eye-piece. In addition to thus
noting the time when the star crosses the field of the telescope,
the astronomer can measure by means of the circle, how high up it
was in the sky at the instant when it was thus observed.
If the telescope of the meridian circle be turned toward the north,
and we observe stars close to the pole, it is possible to make two
different observations of the same star. For the close polar stars
revolve in such small circles around the pole of the heavens that
we can observe them when they are on the meridian either above the
pole or below it. Double observations of this class enable us to
obtain the elevation of the pole above the horizon, and to fix its
position with respect to the stars.
Now, there is one very serious objection to this method. In order
to secure the two necessary observations of the same star, it is
essential to be stationed at the instrument at two moments of time
separated by exactly twelve hours; and if one of the observations
occurs in the night, the other corresponding observation will occur
in daylight.
It is a fact not generally known that the brighter stars can be
seen with a telescope, even when the sun is quite high above
the horizon. Unfortunately, however, there is only one star
close to the pole which is bright enough to be thus observed in
daylight--the polar star already mentioned under the name Polaris.
The fact that we are thus limited to observations of a single
star has made it difficult even for generations of astronomers
to accumulate with the meridian circle a very large quantity of
observational material suitable for the solution of our problem.
The new method of observation to which we have referred above
consists in an application of photography to the polar problem. If
we aim at the pole a powerful photographic telescope, and expose a
photographic plate throughout the entire night, we shall find that
all stars coming within the range of the plate will mark out little
circles or "trails" upon the developed negative. It is evident that
as the stars revolve about the pole on the sky, tracing out their
daily circular orbits, these same little circles must be reproduced
faithfully upon the photographic plate. The only condition is that
the stars shall be bright enough to make their light affect the
sensitive gelatine surface.
Public-domain text, read in full here on John Shaqi.
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