Geology, Vol. 1 [of 3] : $b Geologic processes and their resultsSalisbury, Rollin D.
Science
Geology, Vol. 1 [of 3] : $b Geologic processes and their results
Salisbury, Rollin D.
Geology
Streams may become overloaded by losing velocity or volume, or both.
Decrease in velocity is brought about either by decrease in declivity
or in volume. In general, streams have lower gradients and greater
volumes in their lower courses than in their upper, and these two
elements affect velocity in different ways. If the increase in volume
be not enough to counterbalance the decrease in declivity, as is often
the case, a stream which is loaded in its upper course will deposit
in its lower. The decrease of velocity at the debouchure of a stream
almost always leads to deposition.
Decrease in velocity as the result of decrease in volume is less
common. When decrease in volume occurs, it may be the result of (1)
evaporation, (2) the absorption of water into the bed of the stream,
or (3) branching—the giving off of _distributaries_. While evaporation
is going on everywhere, the diminution of a stream by this means is
usually more than balanced by the increase from tributaries, rainfall,
and springs; but in arid regions a very different condition of things
sometimes exists. If mountains in an arid region be capped with
snow, its melting supplies the streams during the melting season. As
the streams flow out from the mountains through dry regions, they
receive little or no increment from rainfall, tributaries, or springs,
and evaporation reduces the volume of water, or even dissipates it
altogether. Absorption of water into the bed of the stream often
accompanies evaporation. Reduction of volume by evaporation and by
absorption is especially common in arid regions. Wherever loaded
streams are reduced in volume, whether by evaporation or absorption,
deposition takes place.
The third way by which velocity is decreased as the result of
decreasing volume is illustrated at the debouchures of many streams.
Near the Gulf, for example, the Mississippi branches repeatedly (see
Fig. 190). The same phenomena are often seen where one stream joins
another (Fig. 169). Individually the distributaries are much smaller
than the main stream before they separated from it, and because they
are smaller their combined surfaces are greater, and the amount of
energy consumed in the friction of flow is increased. The velocity of
the water and its carrying power are, therefore, reduced. Thus the
branching of streams gives rise to deposition, and where deposition
takes place the gradient of the stream is reduced, and this occasions
still further deposition. The sediment which fills up the channel and
checks the flow finally compels the stream, or some part of it, to
transgress its banks. Deposition, therefore, favors the development of
distributaries, and the development of distributaries in turn favors
deposition.
[Illustration: +Fig.+ 169.—Delta of the Chelan River at its junction
with the Columbia. Shows the tendency of streams to distribute where
active deposition is in progress. (Willis, U. S. Geol. Surv.)]
Public-domain text, read in full here on John Shaqi.
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