Engineers and their triumphs: the story of the locomotive, the steamship, bridge building, tunnel makingHolmes, F. M. (Frederic Morell)
History
Engineers and their triumphs: the story of the locomotive, the steamship, bridge building, tunnel making
Holmes, F. M. (Frederic Morell)
Engineering; Engineers
The centre of these three main piers rests on the island of Inchgarvie;
the two others are known as the Fife and the Queensferry piers
respectively, and are placed on the side of the deep water channels. In
addition to these three main piers are several others, some in shallow
water and some on land. The part of the bridge which they carry is
an ordinary girder of steel leading to the immense cantilevers. For
founding the shallow water piers, cofferdams were used; the caissons
with compressed air chambers being for the deep water structures.
They were put together on shore, launched, floated, steered to the
desired position, and sunk. One proved cranky and turned over, and was
only brought right after much expense and difficulty.
The cantilevers are bolted down to each pier by numbers of huge steel
ties, 24 feet in length and 2½ inches in diameter, embedded in the
masonry, there being 48 of these bolts or ties to each column. And now
as to these cantilevers.
Four huge tubular shafts, two on each side, rise from the group of
columns forming each pier, to the height of 350 feet. From these
shafts, which slope slightly inward, project the cantilevers, the upper
and lower parts being strongly braced together by diagonal ties. In
shape the gigantic brackets taper towards a point, the width decreasing
as much as from 120 feet at the commencement of the piers to 32 feet at
the ends. The wind, it is believed, will be more effectually resisted
by this means.
The cantilevers are hung back to back, one to some extent
counter-weighing the other. The component parts consist of cylinders
of steel or struts for resisting compression—these are the lower
parts; and ties of lattice-work made of steel plates for resisting
tension,—placed above.
Thus, then, from each of the three chief piers two pairs of gigantic
brackets project, each pair placed side by side and braced together,
and forming one composite cantilever jutting to the north and one to
the south. The rails run on sleepers placed lengthwise and fixed in
troughs of steel, so that should a train run off the line the wheels
will be caught by these supports.
It is calculated that there are about 45,000 tons of steel in the
bridge, and 120,000 cubic yards of masonry in the piers. The contract
price was £1,600,000, which works out at about £215 per foot; and the
contractors, who were able to obtain an admirable organisation of some
2000 men to carry out the magnificent design, were Messrs. Tancred,
Arrol, & Co. Some special tools for use in the work were planned by Sir
William Arrol. The bridge was opened by the Prince of Wales on the 4th
of March, 1890.
The success of this magnificent structure has assured the wider
adoption of the cantilever principle. Long-span bridges, in several
cases, have since been built on this design. Its engineers may claim
indeed to have widened the scope and possibilities of bridge-building.
Public-domain text, read in full here on John Shaqi.
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