In our search, therefore, for analogous forms on our own earth, we must
leave out the craters and domes of the type furnished by the European
volcanoes and their representatives abroad, and have recourse to others
of a different type. Is there then, we may ask, any type of volcanic
mountain on our globe comparable with those on the moon? In all
probability there is.
If the reader will turn to the description of the volcanoes of the
Hawaiian group in the Pacific, especially that of Mauna Loa, as given by
Professor Dana and others, and compare it with that of Copernicus, he
will find that in both cases we have a circular rampart of solid lava
enclosing a vast plain of the same material from which rise one or more
lava-cones. The interiors in both cases are terraced. So that, allowing
for differences in magnitude, it would seem that there is no essential
distinction between lunar craters and terrestrial craters of the type of
Mauna Loa. Dana calls these Hawaiian volcanoes "basaltic," basalt being
the prevalent material of which they are formed. Those of the moon may
be composed of similar material, or otherwise; but in either case we may
suppose they are built up of lava, erupted from vents connected with the
molten reservoirs of the interior. Thus we conclude that they belong to
an entirely different type, and have been built up in a different
manner, from those represented by Etna, Vesuvius, and most of the
extinct volcanoes of Auvergne, the Eifel, and of other districts
considered in these pages.
Let us now endeavour to picture to ourselves the stages through which
the moon may be supposed to have passed from the time her surface began
to consolidate owing to the radiation of her heat into space; for there
is every probability that some of the craters now visible on her disk
were formed at a very early period of her physical history.
When the surface began to consolidate, it must also have contracted; and
the interior molten matter, pressed out by the contracting crust, must
have been over and over again extruded through fissures produced over
the solidified surface, until the solid crust extended over the whole
lunar surface, and became of considerable thickness.
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