The sea might still be warm, and it held in solution or suspension
somewhat different substances from those now present in it, and the
land was at first a mere chaos of rocky crags and pinnacles. But so
soon as the temperature of the waters fell somewhat below the boiling
point, and as even a little soil formed in the valleys and hollows of
the land, there was scope for life, provided that its germs could be
introduced.
On a small scale there was something of this same kind in the sea
and land of Java, after the great eruption of Krakatoa, in 1883. The
bare and arid mountain left after the eruption, began, in the course
of a year, to be occupied by low forms of vegetable life, gradually
followed by others, and verdure was soon restored. The once thickly
peopled sea-bottom, so prolific of life in these warm seas, but
buried under many feet of volcanic ashes and stones, soon began to be
re-peopled, and is now probably as populous as before. But in this
case there were plenty of spores of lichens, mosses, and other humble
plants to be wafted to the desolate cone, and multitudes of eggs and
free-swimming germs of hundreds of kinds of marine animals to re-people
the sea-bottom. Whence were such things to come from to occupy the
old Archæan hills and sea-basins? and all our knowledge of nature
gives us no answer to the question, except that a creative power must
have intervened; but in what manner we know not. That this actually
occurred, we can, however, be assured by the next succeeding geological
formation. We have seen that the granitic and gneissic ridges could
furnish pebbles, sand, and clay, and these once deposited in the
sea-bottom could be hardened into conglomerate, sandstone and slate.
But beside these we have in the next succeeding or Upper Laurentian
formation rocks of a very different character. We have great beds of
limestone and iron ore, and deposits, of carbon or coaly matter, now
in the peculiar state of graphite or plumbago, and it is necessary
for us to inquire how these could originate independently of life. In
modern seas limestone is forming in coral reefs, in shell beds, and in
oceanic chalky ooze composed of minute microscopic shells; but only in
rare and exceptional instances is it formed in any other way; and when
we interrogate the old limestones and marbles which form parts of the
land, they give us evidence that they also are made up of calcareous
skeletons of marine animals or fragments of these.
[Illustration: Fig. 19.--_Distribution of Grenville Limestone in
the district north of Papineauville, with section showing supposed
arrangement of the beds._]
Scale of Map 7 miles to one inch. See also Dr. Bonney's paper, _Geol.
Mag._, July, 1895.
_Dotted area:_ Limestone. _Horizontal lines:_ Upper gneiss (fourth
gneiss of Logan). _Vertical lines:_ Lower gneiss (third gneiss of
Logan). _Diagonal lines:_ Overlying Cambrian and Cambro-Silurian
(Ordovician). (See also Fig. 19A.)
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account