Space Nomads: Meteorites in Sky, Field, and LaboratoryLaPaz, Lincoln
Science
Space Nomads: Meteorites in Sky, Field, and Laboratory
LaPaz, Lincoln
Meteorites
[Illustration: Collecting small surface specimens of meteorites with
portable detecting devices: a powerful alnico magnet mounted on a
light wooden sled, and a horseshoe magnet at the end of a cane. See
p. 98.]
To increase recoveries, searchers have employed, in addition to their
eyes, various types of permanent magnets, either mounted on the end of a
cane and used to probe the upper few inches of loose soil, or dragged
behind the searcher on a small, light sled. Meteorite hunters have also
used more powerful portable electromagnets to collect large amounts of
meteoritic material (both solid iron and iron-shale) not only from the
surface but also from shallow depths. Even the best of these simple
magnetic devices, however, are useless in the detection of really deeply
buried meteoritic material.
Meteorites do not merely fall upon the earth (as most astronomical
textbooks still insist), but usually penetrate into it—often quite
deeply. In fact, one of our mathematical investigations showed that
perhaps 100,000 times as much meteoritic nickel-iron is concentrated
below maximum plow-depth (approximately one foot) as lies above that
depth. Clearly, some form of instrument capable of detecting deeply
buried meteorites needed to be devised if this wealth of buried material
was not to be lost to science. This need was answered by the development
of special _meteorite detectors_.
Although meteorite detectors working on several different principles
have been constructed, we shall limit attention here to the simplest and
most field-worthy design. The essential principle on which it operates
is one familiar to any Boy or Girl Scout who has used a magnetic
compass. The first lesson Scoutmasters teach is not to read compass
directions from such an instrument when it is held near a mass of iron
of considerable size, such as an automobile. Such a large iron mass
alters or distorts the local magnetic field of the earth on which the
direction-finding ability of the ordinary compass depends. It is this
very characteristic, so bothersome to the user of a compass, that is the
principle on which meteorite detectors work. For if an electrically
driven meteorite detector capable of generating its own magnetic field
is carried over a deeply buried iron meteorite, the instrument’s
magnetic field will be distorted by the presence of the metal mass, just
as the local magnetic field of the earth was distorted by the metal of
the automobile.
[Illustration: A 146-pound iron, found by this girl without the use
of instruments although only a small corner of the meteorite was
visible above the surface of the ground.]
[Illustration: A commercially built meteorite detector in
operation.]
Public-domain text, read in full here on John Shaqi.
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