Sewerage and Sewage TreatmentBabbitt, Harold E. (Harold Eaton)
History
Sewerage and Sewage Treatment
Babbitt, Harold E. (Harold Eaton)
Sewage disposal; Sewerage
=168. Rock Tunnels.=—Tunnels in rock are advanced by drilling into the
face as shown in diagrammatic form in Fig. 119. The holes near the
center are driven in at an angle towards the center and to depths from 6
to 15 feet. The harder the rock the greater the angle with the tunnel.
This is called the center cut. Other holes are driven near the outer
edge of the tunnel and parallel to its axis. When fired, the wedge of
rock between the center cut holes is thrown back into the tunnel and a
delayed explosion then throws the sides into the hole thus made. A final
delay thrusting shot throws the muck so formed away from the face of the
tunnel. For tunnels up to 6 or 8 feet in height the entire bore is cut
out in this fashion. For larger tunnels, the upper portion called the
heading, is taken out in this way, and the remainder, called the bench,
is taken out by drilling and blowing holes normal to the axis of the
tunnel. The amount of powder necessary in the bench holes is much less
than that required in the heading.
=169. Ventilation.=—No tunnel more than 50 feet long should be built
without ventilation. A fair amount of air for ordinary conditions is 75
cubic feet of free air per minute per person in the tunnel, and double
this amount for each animal. Where explosive gases are met, or under
conditions where the tunnel is hot, five or six times as much air may be
needed in order to cool the tunnel or to dilute the gases. In order that
the air may be fresh and cool at the face of the tunnel where work is
going on it should be conducted to the tunnel face in a pipe and blown
out into the tunnel. Immediately following a blast at the face the
current should be reversed so as to draw the poisonous gases out of the
tunnel through the duct. The high pressure air line leading to the
drills should be opened at the same time to create a current towards the
face in order to accelerate the clearing of the air at the heading. The
capacity of the air machines should be sufficient to exhaust four times
the volume of the gases created by the explosion, in 15 minutes. This
will ordinarily call for a capacity of about 4,000 cubic feet of free
air per minute. If the same blower is to be used for exhausting the
gases as for ventilation while work is going on, it should have a high
overload capacity to care for this situation. The air line should be
arranged to allow for reversal of flow.
The diameter of the air pipe should be determined by a study of the
saving of the cost and operation of the air equipment compared to the
increased cost of a larger pipe line. Other factors affecting the size
of the pipe line to be used are: the available space in the tunnel, the
temporary character of the installation, the use of the exhaust from
high-pressure air machines for the purpose of ventilation, etc.
Cast-iron, spiral-riveted galvanized sheet iron, and canvas pipes have
been used for conducting low-pressure ventilating air.
Public-domain text, read in full here on John Shaqi.
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