Slaty cleavage cannot be due to lamination, since it commonly
crosses bedding planes at an angle, while these planes have been
often well-nigh or quite obliterated. Examining slate with a
microscope, we find that its cleavage is due to the grain of the
rock. Its particles are flattened and lie with their broad faces
in parallel planes, along which the rock naturally splits more
easily than in any other direction. The irregular grains of the
mud which has been altered to slate have been squeezed flat by a
pressure exerted at right angles to the plane of cleavage.
Cleavage is found only in folded rocks, and, as we may see in
Figure 176, the strike of the cleavage runs parallel to the strike
of the strata and the axis of the folds. The dip of the cleavage
is generally steep, hence the pressure was nearly horizontal. The
pressure which has acted at right angles to the cleavage, and to
which it is due, is the same lateral pressure which has thrown the
strata into folds.
We find additional proof that slates have undergone compression at
right angles to their cleavage in the fact that any inclusions in
them, such as nodules and fossils, have been squeezed out of shape
and have their long diameters lying in the planes of cleavage.
That pressure is competent to cause cleavage is shown by
experiment. Homogeneous material of fine grain, such as beeswax,
when subjected to heavy pressure cleaves at right angles to the
direction of the compressing force.
RATE OF FOLDING. All the facts known with regard to rock
deformation agree that it is a secular process, taking place so
slowly that, like the deepening of valleys by erosion, it escapes
the notice of the inhabitants of the region. It is only under
stresses slowly applied that rocks bend without breaking. The
folds of some of the highest mountains have risen so gradually
that strong, well-intrenched rivers which had the right of way
across the region were able to hold to their courses, and as a
circular saw cuts its way through the log which is steadily driven
against it, so these rivers sawed their gorges through the fold as
fast as it rose beneath them. Streams which thus maintain the
course which they had antecedent to a deformation of the region
are known as ANTECEDENT streams. Examples of such are the Sutlej
and other rivers of India, whose valleys trench the outer ranges
of the Himalayas and whose earlier river deposits have been
upturned by the rising ridges. On the other hand, mountain crests
are usually divides, parting the head waters of different drainage
systems. In these cases the original streams of the region have
been broken or destroyed by the uplift of the mountain mass across
their paths.
On the whole, which have worked more rapidly, processes of
deformation or of denudation?
LAND FORMS DUE TO FOLDING
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