Creation of the Teton Landscape: The Geologic Story of Grand Teton National ParkReed, John C. (John Calvin)
Science
Creation of the Teton Landscape: The Geologic Story of Grand Teton National Park
Reed, John C. (John Calvin)
Geology -- Wyoming -- Grand Teton National Park
The flat treeless floor of Jackson Hole narrows southward. Rising out of
the middle are the previously described steepsided ice-scoured rocky
buttes. Beginning near the town of Jackson, part of which is visible,
and extending as far south as the eye can see are row upon row of sharp
ridges and snowcapped peaks that converge at various angles. These are
the Hoback, Wyoming, Salt River, and Snake River Ranges.
CARVING THE RUGGED PEAKS
The rugged grandeur of the Tetons is a product of four geologic factors:
the tough hard rocks in the core, the amount of vertical uplift, the
recency of the mountain-making movement, and the dynamic forces of
destruction. Many other mountains in Wyoming have just as hard rocks in
their cores and an equally great amount of vertical uplift, but they
rose 50 to 60 million years ago and have been worn down by erosion from
that time on. The Tetons, on the other hand, are the youngest range in
Wyoming, less than 10 million years old, and have not had time to be so
deeply eroded.
Steep mountain slopes—the perpetual battleground
Any steep slope or cliff is especially vulnerable to nature’s methods of
destruction. In the Tetons we see the never-ending struggle between two
conflicting factors. The first is the extreme toughness of the rocks and
their consequent resistance to erosion. The second is the presence of
efficient transporting agencies that move out and away from the
mountains all rock debris that might otherwise bury the lower slopes.
The rocks making up most of the Teton Range are among the hardest,
toughest, and least porous known. Therefore, they resist mechanical
disintegration by temperature changes, ice, and water. They consist
predominantly of minerals that are subject to very little chemical decay
in the cold climate of the Tetons.
Absence of weak layers prevents breaking of the tough rock masses under
their own weight. All these conditions, then, are favorable for
preservation of steep walls and high rock pinnacles. Nevertheless, they
do break down. Great piles of broken rock _(talus)_ that festoon the
slopes of all the higher peaks bear witness to the unrelenting assault
by the process of erosion upon the mountain citadels (figs. 4 and 31).
Rock disintegration and gravitational movement
A great variation in both daily and annual temperatures results in
minute amounts of contraction and expansion of rock particles. Repeated
changes in volume produce stress and strain. Although the rocks in the
Tetons are very dense, they eventually yield; a crack forms. Water which
seeps in along this surface of weakness freezes, either overnight or
during long cold spells, and expands, thereby prying a slab of rock away
from the mountain wall. Repeated _frost wedging_, as the process is
called, results eventually in tipping the slab so that it falls.
Public-domain text, read in full here on John Shaqi.
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