In attempting to ascertain the nature of deformations by pressure, many
changes were made in the position of the disk of glass, and in the
kind of support. Some square mirrors, too, were ground and polished.
As an example of the final results, the following case is presented:
A 15-1/2 inch unsilvered mirror 1-1/4 inch thick was set with its
best diameter perpendicular, the axis of the mirror being horizontal
(Fig. 8). The image of a pin-hole illuminated by a lamp was then
observed to be single, sharply defined, and with interference rings
surrounding it as at _a_, Fig. 3. On turning the glass 90 degrees,
that is one quarter way round, its axis still pointing in the same
direction, it could hardly be realized that the same concave surface
was converging the rays. The image was separated into two of about
equal intensity, as at _b_, with a wing of light going out above and
below from the junction. Inside and outside of the focal plane the cone
of rays had an elliptical section, the major axis being horizontal
inside, and perpendicular outside. Turning the mirror still more
round the image gradually improved, until the original diameter was
perpendicular again--the end that had been the uppermost now being the
lowest. A similar series of changes occurred in supporting the glass
on various parts of the other semicircle. It might be supposed that
irregularities on the edge of the glass disk, or in the supporting arc
would account for the phenomena. But two facts dispose of the former
of these hypotheses: in the first place if the glass be turned exactly
half way round, the character of the image is unchanged, and it is
not to be believed that in many different mirrors this could occur
by chance coincidence. In the second place, one of these mirrors has
been carefully examined after being ground and polished three times
in succession, and on each occasion required the same diameter to be
perpendicular. As to the second hypothesis no material difference is
observed whether the supporting arc below be large or small, nor when
it is replaced by a thin semicircle of tinplate lined with cotton wool.
[Illustration: Fig. 3. Effect of Pressure on a Reflecting Surface.]
I am led to believe that this peculiarity results from the structural
arrangement of the glass. The specimens that have served for these
experiments have probably been subjected to a rolling operation when
in a plastic state, in order to be reduced to a uniform thickness.
Optical glass, which may be made by softening down irregular fragments
into moulds at a temperature below that of fusion, may have the same
difficulty, but whether it has a diameter of minimum compression can
only be determined by experiment. Why speculum metal should have the
same property might be ascertained by a critical examination of the
process of casting, and the effect of the position of the openings in
the mould for the entrance of the molten metal.
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