On Molecular and Microscopic Science, Volume 1 (of 2)Somerville, Mary
History
On Molecular and Microscopic Science, Volume 1 (of 2)
Somerville, Mary
Matter -- Constitution; Microscopy; Natural history
The practical importance of spectrum science has been beautifully
illustrated by Professor Roscoe by its application to overcome a
difficulty in Bessemer’s process for the manufacture of steel. According
to that process, steel is made by sending a blast of air through a
quantity of melted iron; the difficulty was when to stop the blast, for
if stopped too soon, the metal retains so much carbon that it crumbles
under the hammer; if continued a few minutes too long, the molten metal
is so viscid that it cannot be poured into the moulds. Experience had
hitherto enabled the manufacturer to judge of the right time from the
appearance of the flame which issued from the mouth of the converting
vessel, but now Professor Roscoe has determined the exact moment for
cutting off the blast by a spectral examination of the flame, the light
of which is most intense. The flame spectrum in its various phases
revealed complicated masses of dark absorption bands and bright lines,
showing that a variety of substances were present in the flame in a
state of incandescent gas; and by a simultaneous comparison of these
with well-known spectra of certain elementary bodies, Mr. Roscoe
ascertained the presence of sodium, potassium, lithium, iron, carbon,
phosphorus, hydrogen, and nitrogen in the flame.
Both Dr. Wollaston and Fraunhofer noticed that the spectrum of the
electric spark was crossed by bright-coloured lines; and in the year
1835, Professor Wheatstone determined the spectra of the electric spark
taken from fused zinc, cadmium, tin, bismuth, lead, and from mercury,
and found that each is crossed by bright lines differing in number,
position, and colour, but which are the same whether the electric spark
be from a static, voltaic, or magneto-electric machine. Having given a
plate showing the colours of these bright lines on the respective
spectra, he proved that they are not owing to the electricity, but to
the incandescent atoms of the metals, for by using different metals as
terminals to the conducting wires, he determined the spectra of these
metals in vacuo, which proved that they were due alone to the
volatilization of the metallic terminals, and concluded that any one
metal may be distinguished from another by the appearance of the spark.
Wheatstone discontinued his spectrum researches, for he had invented the
electric telegraph, and was busy in extending the first telegraphic wire
that ever carried the thought of man to man between London and
Manchester. Soon after he laid the first aquatic line across the Thames,
and he has lived to see his telegraphic lines spread over the surface of
the earth and the bottom of the ocean.
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