Masters of Space: Morse and the Telegraph; Thompson and the Cable; Bell and the Telephone; Marconi and the Wireless Telegraph; Carty and the Wireless TelephoneTowers, Walter Kellogg
History
Masters of Space: Morse and the Telegraph; Thompson and the Cable; Bell and the Telephone; Marconi and the Wireless Telegraph; Carty and the Wireless Telephone
Towers, Walter Kellogg
Bell, Alexander Graham, 1847-1922; Carty, John J. (John Joseph), 1861-1932; Kelvin, William Thomson, Baron, 1824-1907; Marconi, Guglielmo, marchese, 1874-1937; Morse, Samuel Finley Breese, 1791-1872; Radio; Telegraph; Telegraph, Wireless; Telephone
The British army has made wide use of the heliograph in India and
Africa. During the British-Boer War It formed the sole means of
communication between besieged garrisons and the relief forces.
Where no mountain ranges intervene and a bright sun is available,
heliographic messages may be read at a distance of one hundred and
fifty miles.
While the British navy used flashing lights for night signals, the
United States and most other navies adopted a system of fixed colored
lights. The system in use in the United States Navy is known as the
Ardois system. In this system the messages are sent by four lights,
usually electric, which are suspended from a mast or yard-arm. The
lights are manipulated by a keyboard situated at a convenient point on
the deck. A red lamp is flashed to indicate a dot in the Morse code,
while a white lamp indicates a dash. The Ardois system is also used by
the Army. The perfection of wireless telegraphy has caused the Ardois
and other signal systems depending upon sight or sound to be discarded
in all but exceptional cases. The wig-wag and similar systems will
probably never be entirely displaced by even such superior systems
as wireless telegraphy. The advantage of the wig-wag lies in the
fact that no apparatus is necessary and communication may thus be
established for short distances almost instantly. Its disadvantages
are lack of speed, impenetrability to dust, smoke, and fog, and the
short ranges over which it may be operated.
There is another form of sound-signaling which, though it has been
developed in recent years, may properly be mentioned in connection
with earlier signal systems of similar nature. This is the submarine
signal. We have noted that much attention was paid to communication by
sound-waves through the medium of the air from the earliest times. It
was not until the closing years of the past century, however, that
the superior possibilities of water as a conveyer of sound were
recognized.
Arthur J. Mundy, of Boston, happened to be on an American steamer on
the Mississippi River in the vicinity of New Orleans. It was rumored
that a Spanish torpedo-boat had evaded the United States war vessels
and made its way up the great river. The general alarm and the
impossibility of detecting the approach of another vessel set
Mundy thinking. It seemed to him that there should be some way
of communicating through the water and of listening for sounds
underwater. He recalled his boyhood experiments in the old
swimming-hole. He remembered how distinctly the sound of stones
cracked together carried to one whose ears were beneath the surface.
Thus the idea of underwater signaling was born.
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