The first terrestrial crust formed, as indicated, would be incapable of
resisting the waves of the ocean of internal fire, which would be
depressed and raised up at its daily flux and reflux in obedience to
the attraction of the sun and moon. Who can trace, even in imagination,
the fearful rendings, the gigantic inundations, which would result from
these movements! Who would dare to paint the sublime horrors of these
first mysterious convulsions of the globe! Amid torrents of molten
matter, mixed with gases, upheaving and piercing the scarcely
consolidated crust, large crevices would be opened, and through these
gaping cracks waves of liquid granite would be ejected, and then left to
cool and consolidate on the surface. Fig. 14 represents the formation of
a primitive granitic mountain, by the eruption of the internal granitic
matter which forces its way to the surface through a fracture in the
crust. In some of these mountains, Ben Nevis for example, three
different stages of the eruption can be traced. “Ben Nevis, now the
undoubted monarch of the Scottish mountains,” says Nicol, “shows well
the diverse age and relations of igneous rocks. The Great Moor from
Inverlochy and Fort William to the foot of the hill is gneiss. Breaking
through, and partly resting on the gneiss is granite, forming the lower
two-thirds of the mountain up to the small tarn on the shoulder of the
hill. Higher still is the huge prism of porphyry, rising steep and
rugged all around.” In this manner would the first mountains be formed.
In this way, also, might some metallic veins be ejected through the
smaller openings, true injections of eruptive matter produced from the
interior of the globe, traversing the primitive rocks and constituting
the precious depository of metals, such as copper, zinc, antimony, and
lead. Fig. 15 represents the internal structure of some of these
metallic veins. In this case the fracture is only a fissure in the rock,
which soon became filled with injected matter, often of different kinds,
which in crystallising would completely fill the hollow of this cleft,
or crack; but sometimes forming cavities or geodes as a result of the
contraction of the mass.
[Illustration: Fig. 15.--Metallic veins.]
But some eruptions of granitic and other substances, ejected from the
interior, never reach the surface at all. In such cases the clefts and
crevices--longitudinal or oblique--are filled, but the fissures in the
crust do not themselves extend to the surface. Fig. 16 represents an
eruption of granite through a mass of sedimentary rock--the granite
ejected from the centre fills all the clefts and fractures, but it has
not been sufficiently powerful to force its way to the surface.
[Illustration: Fig. 16.--Eruption of granite.]
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