Inventors at Work, with Chapters on DiscoveryIles, George
History
Inventors at Work, with Chapters on Discovery
Iles, George
Inventions -- History; Inventors
was introduced in this field by Robert Seppings of Chatham, in England,
about 1810. To resist the pressure of grinding ice, the “Roosevelt” is
built with trusses of great strength. She sailed in 1905, under
Commander Peary, for a voyage of Arctic discovery.
[Illustration: Frames of four sides. For rigidity diagonals are needed,
AC, BD.]
Were our barn roof flat instead of sloping to form a truss, its
supporting timbers, under compression, would have a decided sag from
which BC is free. When we fashion a small model of a king-post truss,
its sides, AB and AC, must be of metal or wood because they will be in
compression; the king-post, AK, and the base, BC, which will be under
tension, may be of rubber or cord. Always as in this case the parts of a
truss exposed to compression must be of rigid material. When a part may
be of cord, rope or wire, we know that it is resisting tension.[2]
[2] A model easily put together illustrates the truss in its
simplest form. Take a pair of wooden compasses, each half of which
is 15 inches long, such as are sold for blackboard use by the Milton
Bradley Co., Springfield, Mass., at 50 cents. At each tip fasten, by
the ring provided with the compasses, a chair castor such as may be
had at any hardware store. Join the tips of the castors by a rubber
strip. Holding the compasses upright, and applying pressure from the
hand, they will extend until the rubber will be so stretched as to
become almost perfectly horizontal. Various weights may in
succession be suspended from the compass-joint, replacing manual
pressure, and serving to measure the exerted tensions.
[Illustration: Cross-section of the “Roosevelt,” Commodore Peary’s new
Arctic ship. Reproduced by permission from the Scientific American, New
York.]
[Illustration: Pair of compasses stretch a rubber strip.]
Wrought iron exerts about as much resistance to compression as to
tension; so does steel. For this reason, and on account of their great
strength, they have immense value in building. Cast iron can bear only
about one sixth as much tension as compression, so that it is useful as
foundations, for the bed-plates of engines and machinery and the like,
but is unsuitable for girders. Wood is much stronger under tension than
compression; in white pine this proportion is as eight to one. In
designing timber bridges the strains are, therefore, as far as possible,
arranged for tension.
[Illustration: Queen-post truss.
DE, HO, queen-posts.]
[Illustration: Upper part of a roof truss.
Interborough Power House, New York.]
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