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
By means of an ingenious prismatic apparatus, he examined the optical
properties of a great variety of fluids. The solutions of metals and
semi-metals proved in all cases more dispersive than crown glass. Some
of the salts, such as sal-ammoniac, greatly increased the dispersive
power of water. The marine acid disperses very considerably, and this
quality increases with its strength. The most dispersive fluids were
accordingly found to be those in which this acid and the metals were
combined. The chemical preparation called _causticum antimoniale_, or
butter of antimony, in its most concentrated state, when it has just
attracted sufficient humidity to render it fluid, possesses the quality
of dispersing the rays in an astonishing degree. The great quantity
of the semi-metal retained in solution, and the highly concentrated
state of the marine acid, are considered as the cause of this striking
effect. Corrosive sublimate of mercury, added to a solution of
_sal-ammoniacum_ in water, possesses the next place to the butter of
antimony among the dispersive fluids, which Dr. Blair examined. The
essential oils were found to hold the next rank to metallic solutions,
among fluids which possess the dispersive quality, particularly those
obtained from bituminous minerals, as native petrolea, pit coal, and
amber. The dispersive power of the essential oil of sassafras, and
the essential oil of lemons, when genuine, were found to be not much
inferior to any of these. But of all the fluids fitted for optical
purposes, Dr. Blair found that _the muriatic acid mixed with a metallic
solution_, or, in other words, a fluid in which the marine acid and
metalline particles, hold a due proportion, most accurately suited his
purpose. In a spectrum formed by this fluid the green were among the
most refrangible rays, and when its dispersion was corrected by that
of glass, there was produced an inverted secondary spectrum, that is,
one in which the green was above, when it would have been below with a
common medium. He therefore placed a concave lens of muriatic acid with
a metallic solution between the two lenses, as in fig. 60, where AB is
the concave fluid lens, CF a plano-convex lens, with its plane side
next the object, and ED, a meniscus. With this object-glass the rays of
different colours were bent from their rectilineal course with the same
equality and regularity as in reflection.
[Illustration: _figure 60._]
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