Eolian turbidity currents are better known as _dust storms_. Air over
deserts is cooled significantly when rain passes through it. This cooler
and denser air sinks toward the desert surface. When it reaches the
ground, the air is deflected forward and sweeps up surface debris in its
turbulence as a dust storm.
[Illustration: Saltation moves small particles in the direction of the
wind in a series of short hops or skips.]
Crops, people, villages, and possibly even climates are affected by dust
storms. Some dust storms are intercontinental, a few may circle the
globe, and occasionally they may engulf entire planets. When the Mariner
9 spacecraft arrived at Mars in 1971, the entire planet was enshrouded
in global dust.
[Illustration: Dust storm along the Mohave River near Daggett,
California, October 24, 1919 (photograph by D. G. Thompson).]
Most of the dust carried by dust storms is in the form of silt-size
particles. Deposits of this windblown silt are known as _loess_. The
thickest known deposit of loess, 335 meters, is on the Loess Plateau in
China. In Europe and in the Americas, accumulations of loess are
generally from 20 to 30 meters thick.
Small whirlwinds, called _dust devils_, are common in arid lands and are
thought to be related to very intense local heating of the air that
results in instabilities of the air mass. Dust devils may be as much as
one kilometer high.
Eolian deposition
Wind-deposited materials hold clues to past as well as to present wind
directions and intensities. These features help us understand the
present climate and the forces that molded it. Wind-deposited sand
bodies occur as sand sheets, ripples, and dunes.
_Sand sheets_ are flat, gently undulating sandy plots of sand surfaced
by grains that may be too large for saltation. They form approximately
40 percent of eolian depositional surfaces. The Selima Sand Sheet, which
occupies 60,000 square kilometers in southern Egypt and northern Sudan,
is one of the Earth’s largest sand sheets. The Selima is absolutely flat
in some places; in others, active dunes move over its surface.
Wind blowing on a sand surface _ripples_ the surface into crests and
troughs whose long axes are perpendicular to the wind direction. The
average length of jumps during saltation corresponds to the wavelength,
or distance between adjacent crests, of the ripples. In ripples, the
coarsest materials collect at the crests. This distinguishes small
ripples from dunes, where the coarsest materials are generally in the
troughs.
[Illustration: Wind-blown sand moves up the gentle upwind side of the
dune by saltation or creep. Sand accumulates at the brink, the top of
the slipface. When the buildup of sand at the brink exceeds the angle of
repose, a small avalanche of grains slides down the slipface. Grain by
grain, the dune moves downwind.]
Public-domain text, read in full here on John Shaqi.
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