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
The amount which a river channel must be deepened in order to change
the remnants of its flood-plain to terraces cannot be definitely
stated. When a channel is so deep that the remnants of a former
flood-plain are no longer flooded, they would be called terraces,
especially if a lower flood-plain has been developed. Even though not
above the reach of floods, they are often called terraces if they are
notably above the channel and separated from it by a lower plain. Thus
the flat at _b_, Fig. 193, would be called a terrace, even though
covered by water in exceptional floods; but the flat at _c_, but
slightly above the channel, would hardly be called a terrace.
[Illustration: +Fig.+ 194.—Diagram illustrating the beginning of the
development of a terrace from a flood-plain.]
The question now arises why a stream, having once developed a
flood-plain, should sink its channel to a lower level, leaving parts
of the old flood-plain as terraces. This may be brought about by the
operation of various causes.
(1) In the first place, the head of the valley-plain where the first
notable deposition takes place normally advances up-stream. After the
advance has been considerable, the descending stream may, on reaching
the head of its valley-plain, lose so much of its load as to be able
to sink its channel into the flood-plain farther down the valley (Fig.
194).
(2) Ordinarily a stream does not drop all its load at the head of its
plain, but only its excess; but it will always drop coarse sediment
to take fine, if fine be available. For a relatively small amount of
coarse material dropped, a relatively large amount of fine may be
taken up (p. 179). Other things being equal, it follows that when a
stream drops coarse material to take fine, its channel is degraded
unless there is at the same time a great reduction in the stream’s
energy. Such reduction is likely to go with the decreasing declivity
down-stream; but this is partly, or sometimes wholly, counterbalanced
by the increasing volume of water. By the exchange of load, therefore,
a stream may ultimately sink its channel below the flood-plain which
the earlier and perhaps smaller stream had developed.
[Illustration: +Fig.+ 195.—Diagram to illustrate the development of
river terraces by the widening of a channel or meander belt. The
valley flat above might not be called a terrace; but the same plain
below, where the meander belt has some width, would be called a
terrace.]
(3) Again, so long as a stream is actively eroding at its head, there
is likely to be some aggradation below. At a later stage in the
stream’s history, when active erosion at the head has ceased because
of the reduction of the surface, less material will be carried from
the upper part of the valley, and the stream on the flood-plain below,
formerly loaded with material from up the valley, is now free to take
up and carry away material temporarily left on the flood-plain. The
result is a deepening of the channel.
Public-domain text, read in full here on John Shaqi.
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