The width of the advanced gallery or heading depends upon the quality of
the rock. In hard rock American engineers give it the full width of the
tunnel section; but this cannot be done in loose or fissured rock, which
has to be supported, the headings here being usually made about 8 × 8
ft. The wider heading is always preferable, where it is possible, since
more room is available for removing the rock, and deeper holes can be
bored and blasted.
The important rôle played by the power plant and other mechanical
installations in constructing tunnels through rock has already been
mentioned. In some methods of soft-ground tunneling, and particularly in
soft-ground subaqueous tunneling, it is also often necessary to employ a
mechanical installation but slightly inferior in size and cost to those
used in tunneling rock. It is proposed to describe very briefly here a
few typical individual plants of this character, which will in some
respects give a better idea of this phase of tunnel work than the more
general descriptions.
=Rock Tunnels.=--The tunnels selected to illustrate the mechanical
installations employed in tunneling through rock are: The Mont Cenis,
Hoosac Tunnel, the Cascade Tunnel, the Niagara Falls Power Tunnel, the
Palisades Tunnel, the Croton Aqueduct Tunnel, the Strickler Tunnel in
America, and the Graveholz Tunnel and the Sonnstein Tunnel in Europe. In
addition there will be found in another chapter of this book a
description of the mechanical installations at the St. Gothard,
Pennsylvania and other tunnels.
_Mont Cenis Power Plant._--The mechanical installation consisted of the
Sommeilier air compressors built near the portals. The Sommeilier
compressors, Mr. W. L. Saunders says, were operated as a ram, utilizing
a natural head of water to force air at 80 lbs. pressure into a
receiver. The column of water contained in the long pipe on the side of
the hill was started and stopped automatically by valves controlled by
engines. The weight and momentum of the water forced a volume of air
with such a shock against the discharge valve that it was opened, and
the air was discharged into the tank; the valve was then closed, the
water checked; a portion of it was allowed to discharge, and the space
was filled with air, which was in turn forced into the tank. Only 73% of
the power of the water was available, 27% being lost by the friction of
the water in the pipes, valves, bends, etc. Of the 73% of net work, 49.4
was consumed in the perforators, and 23.6 in a dummy engine for working
the valves of the compressors and for special ventilation.
Public-domain text, read in full here on John Shaqi.
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