The Microscope. Its History, Construction, and Application 15th ed.: Being a familiar introduction to the use of the instrument, and the study of microscopical scienceHogg, Jabez
History
The Microscope. Its History, Construction, and Application 15th ed.: Being a familiar introduction to the use of the instrument, and the study of microscopical science
Hogg, Jabez
Microscopy; Natural history
But as we are able to form a distinct image of near objects, and as
we notice when we turn our gaze from far to near objects there is a
distinct feeling of muscular effort in the eyes, there must be some
means whereby the eye can readily adapt itself for focussing near and
distant objects. In a photographic camera the focus can be readily
altered, either by changing the lenses, employing a lens of greater
or less curvature, or by altering the distance of the screen from the
lens. The last method is obviously impossible in the rigid eye-ball,
and therefore the act of focussing for near and distant objects is
associated with a change in the curvature of the lens, a faculty of the
eye termed _accommodation_ (Fig. 22), a change chiefly accomplished
by the ciliary (muscle) processes, which pull the lens forwards and
inwards by virtual contracting power of the ciliary muscle, and by
which its suspensory ligament is relaxed, and the front of the lens
allowed to bulge forward. In every case, however, accommodation is
associated with contraction of the iris, the special function of which
is that of a limiting diaphragm (an iris-diaphragm), Fig. 23.
In an ordinary spherical bi-convex lens, as already pointed out, the
rays of light passing through the periphery of the lens come to a focus
at a nearer point than the rays passing through the central portion.
In this way a certain amount of blurring of the image takes place, and
which, in optical language, is termed _spherical aberration_. This
defect of the eye is capable of correction in three possible ways,
and which it may be well to repeat: 1. By making the refractive index
of the lens higher at its centre than at its circumference; (2) By
making the curvature of the lens less near the circumference than
at the centre; (3) By stopping out the peripheral rays of light by a
diaphragm. The two latter methods are those resorted to in most optical
instruments.
[Illustration: Fig. 23.--1. Equatorial section of Eyeball, showing
Iris and Ciliary Processes, after washing away the pigment, × three
diameters.
2. Nerves of the Cornea of Kitten’s Eye, stained with iodine.
3. Fibres or Tubules of Lens, × 250, seen to be made up of superimposed
crenated layers, and is therefore not homogeneous in structure, but
made up of a number of extremely fine tubules, whose curvatures are
nearly spherical.]
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