Man and the Glacial PeriodWright, G. Frederick (George Frederick)
History
Man and the Glacial Period
Wright, G. Frederick (George Frederick)
Glacial epoch; Prehistoric peoples
In 1857 Professor Tyndall began his systematic and fruitful observations
upon the Mer de Glace and other Alpine glaciers. Professor Forbes had
already demonstrated that, with an accurate instrument of observation,
the motion of a line of stakes might be observed after the lapse
of a single clay, or even of a few hours. As a result of Tyndall's
observations, it was found that the most rapid daily motion in the Mer de
Glace in 1857 was about thirty-seven inches. This amount of motion was
near the lower end of the glacier On ascending the glacier, the rate was
found in general to be diminished; but the diminution was not uniform
throughout the whole distance, being affected both by the size and by the
contour of the valley. The motion in the tributary glaciers was also much
less than that of the main glacier.
This diminution of movement in the tributary glaciers was somewhat
proportionate to their increase in width. For example, the combined
width of the three tributaries uniting to form the Mer de Glace is 2,597
yards; but a short distance below the junction of these tributaries the
total width of the Mer de Glace itself is only 893 yards, or one-third
that of the tributaries combined. Yet, though the depth of the ice is
probably here much greater than in the tributaries, the rapidity of
movement is between two and three times as great as that of any one of
the branches.[AM]
[Footnote AM: See Tyndall's Forms of Water, pp. 78-82.]
From Tyndall's observations it appears also that the line of most rapid
motion is not exactly in the middle of the channel, but is pushed by its
own momentum from one side to the other of the middle, so as always to be
nearer the concave side; in this respect conforming, as far as its nature
will permit, to the motion of water in a tortuous channel.
[Illustration: Fig. 17.]
It is easy to account for this differential motion upon the surface
of a glacier, since it is clear that the friction of the sides of the
channel must retard the motion of ice as it does that of water. It is
clear also that the friction of the bottom must retard the motion of ice
even more than it is known to do in the case of water. In the formation
of breakers, when the waves roll in upon a shallowing beach, every one
is familiar with the effect of the bottom upon the moving mass. Here
friction retards the lower strata of water, and the upper strata slide
over the lower, and, where the water is of sufficient depth and the
motion is sufficiently great, the crest breaks down in foam before the
ever-advancing tide. A similar phenomenon occurs when dams give way and
reservoirs suddenly pour their contents into the restricted channels
below. At such times the advancing water rolls onwards like the surf with
a perpendicular front, varying in height according to the extent of the
flood.
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