Mr. Brunel’s experiments on riveting were also important. Most of these
were made with specimens 20 inches wide, and half an inch thick. They
were compared with specimens of solid iron, of the same quality and
thickness as the riveted specimens, and also the same width minus the
rivet holes, so as to have equal efficient sectional areas. Double
covering plates and double riveting were used in all cases, the
variation being in the widths of the covering plates, and the number and
arrangement of the rivets. The experiments were continued until thirty
in all had been made, and the strongest form of joint was considered to
have been arrived at.
In connection with the lifting of the parts of the Chepstow Bridge, an
elaborate series of experiments was made on ropes, chains, and
wire-rope, so as to ascertain which of these it was desirable to employ,
as possessing the greatest advantages. The experiments made were of two
kinds, one to determine the absolute strength of the specimen when
subjected to a straight pull, and the other to observe what took place
when it was worked over a sheave. In the first set the specimen was held
at each end in the jaws of a pair of wrought-iron clamps, which were
tightened up by means of screws. One of the clamps was attached to a
fixed beam, and from the other was suspended a large cylindrical tank,
which was gradually filled with water until the specimen gave way, the
breaking strain being the weight of the tank and water. This weight was
ascertained by actual weighing with a steelyard when the water in the
tank was at different heights. Observations on the extension, shrinkage
of the circumference, and change in the pitch of the spiral of the rope
were made with different loads, and the strength of a sufficient number
of the yarns of which the rope was composed was tried to ascertain the
loss of strength by combining the yarns into a rope. In the second set
the specimen, clamped as before, was passed over a sheave, the axle of
which rolled horizontally on planed cast-iron plates, in order to
diminish friction. To each clamp was attached a cylindrical iron tank.
Water being admitted to the highest tank until downward motion
commenced, its influx was stopped, and the tank descended, the other one
rising. Water was then admitted to the now highest tank until motion
again commenced, and this process was repeated until the specimen gave
way, the tanks getting fuller of water at each movement, at which times
the difference of weight of the two tanks was observed. This, minus the
slight friction of the apparatus, represented the rigidity of the rope.
The extensions were observed as in the first set of experiments.
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