Railway Construction — John Stuart Mill — John Shaqi
Railway Construction
John Stuart Mill · en
Fig. 97 illustrates a type of pier composed of cast-iron columns, well
braced and stayed with wrought-iron. The ends of the columns and all
contact surfaces should be properly turned and faced by machinery to
ensure true and perfect joints, and the socketed ends should be turned
and bored to fit closely. The latter is important, and if not
carefully carried out, a slight sliding movement of the flanges may
take place, and throw undue strain on the bolts.
Fig. 98 shows a very similar pier, constructed entirely of
wrought-iron or steel.
Each of the above-described piers has a liberal amount of taper or
batter, both in the front and transverse elevation.
The size and number of the columns, and the dimensions of the braces
or stays, will depend upon the height of the pier and the weights and
strains to be sustained.
Many important and lofty viaducts have been erected on this principle
of iron piers springing from masonry foundations, more particularly
across deep rugged ravines abroad, where iron piers offered the only
practical, substantial means of dealing with what appeared otherwise
an impossibility.
[Illustration: Fig. 94, 95, 96, 101]
[Illustration: Fig. 97, 98]
[Illustration: Fig. 99]
[Illustration: Fig. 100]
Fig. 99 is a sketch of the Kinsua Viaduct on the Erie Railway, one of
the highest railway viaducts in the United States. In the transverse
elevation the piers have a large amount of taper; but in the front
elevation they are vertical, and of width to correspond to one of the
small spans of the main girder. This arrangement of long and wide base
gives great stability to the pier. The spans of the girders, which are
of the ordinary lattice type, are not large, being 61 feet for the
clear spans, and 38 feet 6 inches for those over the piers. The
principal interest is in the great height and simplicity of the piers. 102
The rail-level over the top of the pier is 301 feet above the level of
the water in the Kinsua stream. The width of this pier on the top is
10 feet (for single line), and the width at the bottom 103 feet.
Fig. 100 is a sketch of the Loa Viaduct on the Antofagasta Railway,
Bolivia, stated to be the highest railway viaduct in the world. The
arrangement of spans and piers is very similar to the Kinsua Viaduct.
The main spans are 80 feet, and the pier spans 32 feet. The width of
the pier on the top is 10 feet 6 inches (for single line), and the
width at the bottom of the highest pier is 106 feet 8 inches.
In contrasting these light iron piers with what would have been
required if constructed of masonry, an idea may be formed of the
enormous amount of material, labour, and time, which would have been
expended to erect the work in stone.