The Geologic Story of the Great Plains: A nontechnical description of the origin and evolution of the landscape of the Great PlainsTrimble, Donald E.
Science
The Geologic Story of the Great Plains: A nontechnical description of the origin and evolution of the landscape of the Great Plains
Trimble, Donald E.
Geology -- Great Plains; Landscapes -- Great Plains
These undulations affected both the older basement rocks and the
overlying sedimentary rocks, and they take the form of gentle basins and
arches that in some places span several States. (See sketch map, figure
7.) A series of narrow basins lies along the mountain front on the west
side of the Great Plains. A broad, discontinuous arch extends southwest
from the Superior Upland to the Rocky Mountain front to form a buried
divide that separates the large Williston basin on the north from the
Anadarko basin to the south.
While the flat-lying layers of the Interior Plains were being only
gently warped, vastly different earth movements were taking place
farther west, in the area of the present Rocky Mountains. Along a
relatively narrow north-trending belt, extending from Mexico to Alaska,
the land was being uplifted at a great rate. The layers of sedimentary
rock deposited in the inland sea were stripped from the crest of the
rising mountainous belt by erosion and transported to its flanks as the
gravel, sand, and mud of streams and rivers. This transported sediment
was deposited on the plains to form the rocks of the Cretaceous Hell
Creek, Lance, Laramie, Vermejo, and Raton Formations. Vegetation thrived
on this alluvial plain, and thick accumulations of woody debris were
buried to ultimately become coal. This lush vegetation provided ample
food for the hordes of three-horned dinosaurs (_Triceratops_) that
roamed these plains. Their fossilized remains are found from Canada to
New Mexico.
[Illustration: _Figure 5.—Geologic time chart and the progression of
life forms. Note Cretaceous_ Triceratops, _Oligocene_ Titanotheres, _and
Miocene_ Moropus.]
GEOLOGIC TIME
The Age of the Earth
The Earth is very old—4.5 billion years or more according to recent
estimates. Most of the evidence for an ancient Earth is contained in
the rocks that form the Earth’s crust. The rock layers themselves—like
pages in a long and complicated history—record the surface-shaping
events of the past, and buried within them are traces of life—the
plants and animals that evolved from organic structures that existed
perhaps 3 billion years ago.
Also contained in rocks once molten are radioactive elements whose
isotopes provide Earth scientists with an atomic clock. Within these
rocks, “parent” isotopes decay at a predictable rate to form
“daughter” isotopes. By determining the relative amounts of parent and
daughter isotopes, the age of these rocks can be calculated.
Thus, the results of studies of rock layers (stratigraphy), and of
fossils (paleontology), coupled with the ages of certain rocks as
measured by atomic clocks (geochronology), attest to a very old Earth!
[Illustration: _Figure 6.—Generalized paleogeographic map of the United
States in Late Cretaceous time (65 to 80 million years ago), when most
of the Great Plains was beneath the sea._]
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