Geology, Vol. 1 [of 3] : $b Geologic processes and their resultsSalisbury, Rollin D.
Science
Geology, Vol. 1 [of 3] : $b Geologic processes and their results
Salisbury, Rollin D.
Geology
[Illustration: +Fig.+ 293.—Shearing plane well defined. A Spitsbergen
glacier. (Hamberg.)]
_Auxiliary Elements._
=Shearing.=—In the lower portion of a glacier where normally the
thrusts are greatest, the granules fewest, and their interlocking
most intimate, shearing takes place within the ice itself. This is
illustrated by the accompanying Figs., 292–295. The shearing results
in the foliation of the ice and in the forcing of débris between the
sheared layers. Thus the ice becomes loaded in a special englacial or
baso-englacial fashion, as previously mentioned and illustrated in Fig.
268.
Within the zone of shearing, it is probable that the gliding planes
of the crystals come into effective function. It is thought that the
combined effect of the vertical pressure, the forward thrust, and the
basal drag of the ice, may be to increase the number of granules whose
gliding planes are parallel to the glacier’s bottom. At any rate,
Drygalski reports[136] that there is a tendency to such an arrangement
in the basal portion of the Greenland glaciers at their borders. It
is conceived that where strong thrusts are brought to bear upon such
a mass of granules, those whose gliding planes are parallel to the
direction of thrust are strained with sufficient intensity to cause the
plates to slide over each other, while those which are not parallel
to the direction of thrust are either rotated into parallelism—when
they also yield—or are pressed aside out of the plane of shear. As
previously noted, shearing is observed to occur chiefly where the ice
below the plane of shearing is protected more or less from the force
of the thrust. It perhaps also occurs where the basal ice becomes so
overloaded with débris that it is incapable of ready movement.
[Illustration: +Fig.+ 294.—Portion of the lateral margin of a North
Greenland glacier. Shows upturning of the layers at the base, the
cleanness of the ice above the bottom, and, possibly, shearing.]
It is also probable that sharp differential strain and shearing are
developed at the level where the surface-water of the warm season,
descending into the ice, reaches the zone of freezing. The expanding of
the freezing water at the upper limit of the cold zone may cause the
layer expanded by it to shear over that below. As the level of freezing
is lowered with the advance of the warm season, the zone of shearing
also sinks. This may be regarded as an auxiliary agency of shearing, of
application to a special horizon.
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