The Practical Astronomer: Comprising illustrations of light and colours--practical descriptions of all kinds of telescopes--the use of the equatorial-transit--circular, and other astronomical instruments, a particular account of the Earl of Rosse's large telescopes, and other topics connected with astronomyDick, Thomas
Science
The Practical Astronomer: Comprising illustrations of light and colours--practical descriptions of all kinds of telescopes--the use of the equatorial-transit--circular, and other astronomical instruments, a particular account of the Earl of Rosse's large telescopes, and other topics connected with astronomy
Dick, Thomas
Astronomical instruments; Astronomy; Telescopes
It is obvious from the figure, that, through this telescope, all
objects will appear _inverted_; since the object OB is depicted by the
object-glass in an inverted position at IM, and in this position is
viewed by the eye-glass EY; and, therefore this kind of telescope is
not well adapted for viewing terrestrial objects, since it exhibits
the tops of trees, houses, and other objects as undermost, and the
heads of people as pointing downwards. But this circumstance is of
no consequence with respect to the heavenly bodies, since they are
round, and it can make little difference to an observer which side
of a globular body appears uppermost or undermost. All astronomical
refracting telescopes invert objects; but they are preferred to any
other telescopes, because they have few glasses, and consequently more
light. This telescope however, can be transformed into a common day
telescope for land objects, by the addition of two other eye-glasses,
as we shall afterwards explain; but in this case a quantity of light is
lost by refraction at each lens; for there is scarcely any transparent
substance that transmits all the rays of light that fall upon it.
The _magnifying power_ of this telescope is found _by dividing the
focal distance of the object-glass by the focal distance of the
eye-glass_: the quotient gives the magnifying power, or the number of
times that the object seen through the telescope, appears larger or
nearer than to the naked eye. Thus, for example, if the focal distance
of the object-glass be 28 inches, and the focal distance of the
eye-glass 1 inch, the magnifying power will be 28 times. If we would
enlarge the telescope and select an object-glass 10 feet, or 120 inches
focus, an eye-glass of 2 inches focal length might be applied, and
then the diameter of objects would be magnified 60 times, and their
surfaces 3600 times. If we would use an object-glass of 100 feet, it
would be necessary to select an eye-glass about 6 inches focus, and
the magnifying power would be 200 times, equal to 1200 inches divided
by 6. Since, then, the power of magnifying depends on the proportion
of the focal length of the object and eye-glasses, and this proportion
may be varied to any degree, it may seem strange to some that a short
telescope of this kind will not answer that purpose as well as a long
one. For instance, it may be asked why an object-glass of 10 feet
focus, may not be made to magnify as much, as one of 100 feet focal
length, by using an eye-glass of half an inch focus, in which case,
the magnifying power would be 240 times? But it is to be considered,
that if the power of magnifying be increased, while the length of the
telescope remains the same, it is necessary to diminish the focal
length of the eye-glass in the same proportion, and this cannot be
done on account of the great distortion and colouring which would then
appear in the image, arising both from the deep convexity of the lens
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Elsewhere in the archive
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account