These few examples must suffice of the great class of metamorphic
rocks. As we have seen, they owe their origin to the alteration of
both of the other classes of rocks--the sedimentary and the
igneous--by heat and pressure, assisted usually by the presence of
water. The fact of change is seen in their hardness arid
cementation, their more or less complete recrystallization, and
their foliation; but the change is often so complete that no trace
of their original structure and mineral composition remains to
tell whether the rocks from which they were derived were
sedimentary or igneous, or to what variety of either of these
classes they belonged.
In many cases, however, the early history of a metamorphic rock
can be deciphered. Fossils not wholly obliterated may prove it
originally water-laid. Schists may contain rolled-out pebbles,
showing their derivation from a conglomerate. Dikes of igneous
rocks may be followed into a region where they have been foliated
by pressure. The most thoroughly metamorphosed rocks may sometimes
be traced out into unaltered sedimentary or igneous rocks, or
among them may be found patches of little change where their
history maybe read.
Metamorphism is most common among rocks of the earlier geological
ages, and most rare among rocks of recent formation. No doubt it
is now in progress where deep-buried sediments are invaded
by heat either from intrusive igneous masses or from the earth's
interior, or are suffering slow deformation under the thrust of
mountain-making forces.
Suggest how rocks now in process of metamorphism may sometimes be
exposed to view. Why do metamorphic rocks appear on the surface
to-day?
MINERAL VEINS
In regions of folded and broken rocks fissures are frequently
found to be filled with sheets of crystalline minerals deposited
from solution by underground water, and fissures thus filled are
known as mineral veins. Much of the importance of mineral veins is
due to the fact that they are often metalliferous, carrying
valuable native metals and metallic ores disseminated in fine
particles, in strings, and sometimes in large masses in the midst
of the valueless nonmetallic minerals which make up what is known
as the VEIN STONE.
The most common vein stones are QUARTZ and CALCITE. FLUORITE
(calcium fluoride), a mineral harder than calcite and
crystallizing in cubes of various colors, and BARITE (barium
sulphate), a heavy white mineral, are abundant in many veins.
The gold-bearing quartz veins of California traverse the
metamorphic slates of the Sierra Nevada Mountains. Below the zone
of solution (p. 45) these veins consist of a vein stone of quartz
mingled with pyrite (p. 13), the latter containing threads and
grains of native gold. But to the depth of about fifty feet from
the surface the pyrite of the vein has been dissolved, leaving a
rusty, cellular quartz with grains of the insoluble gold scattered
through it.
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