_Declination._--The changes in declination are obtained by means of a
magnet which is suspended by a long fibre and carries a mirror,
immediately below which a fixed mirror is attached to the base of the
instrument. Both mirrors are usually concave; if plane, a concave lens
is placed immediately before them. Light passing through a vertical
slit falls upon the mirrors, from which it is reflected, and two
images of the slit are produced, one by the movable mirror attached to
the magnet and the other by the fixed mirror. These images would be
short lines of light; but a piano-cylindrical lens is placed with its
axis horizontal just in front of the recording surface. In this way a
spot of light is obtained from each mirror. The recording surface is a
sheet of photographic paper wrapped round a drum which is rotated at a
constant speed by clockwork about a horizontal axis. The light
reflected from the fixed mirror traces a straight line on the paper,
serving as a base line from which the variations in declination are
measured. As the declination changes the spot of light reflected from
the magnet mirror moves parallel to the axis of the recording drum,
and hence the distance between the line traced by this spot and the
base line gives, for any instant, on an arbitrary scale the difference
between the declination and a constant angle, namely, the declination
corresponding to the base line. The value of this constant angle is
obtained by comparing the record with the value for the declination as
measured with a magnetometer. The value in terms of arc of the scale
of the record can be obtained by measuring the distance between the
magnet mirror and the recording drum, and in most observations it is
such that a millimetre on the record represents one minute of arc. The
time scale ordinarily employed is 15 mm. per hour, but in modern
instruments provision is generally made for the time scale to be
increased at will to 180 mm. per hour, so that the more rapid
variations of the declination can be followed. The advantages of using
small magnets, so that their moment of inertia may be small and hence
they may be able to respond to rapid changes in the earth's field,
were first insisted upon by E. Mascart,[1] while M. Eschenhagen[2]
first designed a set of magnetographs in which this idea of small
moment of inertia was carried to its useful limit, the magnets only
weighing 1.5 gram each, and the suspension consisting of a very fine
quartz fibre.
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