There are extensive regions throughout which the rocks have been changed
in a manner similar to the alterations commonly found adjacent to
igneous intrusions which, in general, have been brought about in some
other way. This regional metamorphism, as it is termed, has affected the
rocks in certain instances throughout districts measuring many hundreds
of square miles in surface extent, and with a vertical range of many
thousands of feet. The rocks referred to have been changed without
fusion from a previous condition, during which they were either
sedimentary beds or cooled and crystallized igneous magma. This
conclusion has been verified in numerous instances by tracing the
thoroughly altered rocks to regions where the change has been less
intense and finally to where they pass by insensible gradations into
easily recognisable sedimentary or igneous terranes. Common examples of
metamorphic rocks are mica, schist, gneiss, statuary marble,
certain granites, etc. These rocks frequently have a foliated or fissile
structure, such as it is presumed would result from a flowing movement
within the mass while under great pressure. Characteristically also the
rocks are composed of interlocking crystals or portions of crystals,
which are not contained in a glassy base, as is the case with most rocks
that have crystallized from fusion. That is, the metamorphic rocks are
characteristically _holocrystalline_, while igneous rocks are
_porphyritic_, or _cryptocrystalline_.
The analogy between rocks altered by contact metamorphism and those
affected by regional metamorphism had led to the conclusion that the
latter, like the former, have been changed by heat and the passage
through them of heated water bearing mineral matter, and especially
silica, in solution. More than this, the foliation frequently so
characteristic of metamorphic rocks is considered as evidence of a
flowing movement or shearing of the material while under pressure. In
short, rocks are altered by heat, especially if water is present in
them, by motion, and by chemical changes produced by percolating waters,
and perhaps in still other ways. The degree of heat required is not
definitely known, and probably varies according to the nature of the
rocks, the presence or absence of water, etc., but is certainly less
than that necessary to produce fusion, and is thought, in general, to be
in the neighbourhood of 750 deg. F. While heat alone is considered as
sufficient to produce metamorphism, it is probable that in most
instances two or more of the agencies just referred to have been in
operation at the same time. In the case of the foliated rocks motion
within the mass seems to have been the predominating factor, and
dynamical metamorphism is considered as important as heat metamorphism.
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