We have already seen that the power of substances to refract light
differs for different colours, and we have seen the varied refraction of
different parts of the spectrum, and the necessity of making lenses
achromatic. Now there is one enormous advantage in favour of the
reflector. We do not take our light to bits and put it together again as
with an achromatic lens. But curiously enough, there is a something else
which quite lowers the position of the reflector with regard to the
refractor. Although, in the main all the light falling in parallel lines
on a concave surface is reflected to a focus, this is only true in a
general sense, because, if we consider it, we find an error which
increases very rapidly as the diameter of the mirror increases or as the
focal length diminishes. For instance, D I, Fig. 58, is the segment of a
circle, or the section of a sphere—if we deal with a solid figure. D C,
E G and H I, are three lines representing parallel rays falling on
different parts of it. According to that law which we have considered,
we can find where the ray E G will fall. We draw a line L, G, from the
centre to the point of reflection, and make the angle F G L, equal to
the angle of incidence E G L; then F will be the focus, so far as this
part of the mirror is concerned. Now let us repeat the process for the
ray H I, and we shall find that it will be reflected to K, a point
nearer the mirror than F, and it will be seen that the further the rays
are from the axis D C, the further from the point F is the light
reflected; so that if we consider rays falling from all parts of the
reflecting surface, a not very large but a distinctly visible surface is
covered with light, so that a spherical surface will not bring all the
rays exactly to a point, and with a spherical mirror we shall get a
blurred image. We can compare this imperfection of the reflector, called
spherical aberration, with the chromatic aberration of the object-glass.
[Illustration:
FIG. 58.—Diagram Illustrating Spherical Aberration.
]
[Illustration:
FIG. 59.—Diagram Showing the Proper Form of Reflector to be an
Ellipse.
]
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