Space Nomads: Meteorites in Sky, Field, and LaboratoryLaPaz, Lincoln
Science
Space Nomads: Meteorites in Sky, Field, and Laboratory
LaPaz, Lincoln
Meteorites
Hold a pencil against the tip of your nose and look at it first with
your right eye closed and then with your left eye closed. Repeat this
experiment with the pencil held at arm’s length. In the first case, the
pencil will seem to shift position very greatly; in the second, although
the same base line (the distance between your eyes) is used, the pencil
will seem to shift position only slightly.
Such an apparent shift in position is called a _parallactic
displacement_, or, simply, _parallax_. The notion of parallax is of the
greatest importance in most branches of astronomy, and it leads (with
proper instruments and a little mathematics) to exact determinations of
the distances of remote objects.
For our purpose, we need not go into all the interesting but complicated
details. Our experiment with the pencil shows that if a meteor was close
by, like a blinding bolt of lightning, then, as seen by a pair of
observers separated by only a few blocks, the meteor would show a large
parallax. But if this meteor was as far away as the stars, it would show
no parallax at all, no matter how widely the pair of observers were
separated on the earth.
There were many clever scientists among the Greeks, and it is quite
possible that a pair of them actually tried out this simple parallax
experiment on the meteors and so were able to prove that these beautiful
light effects occurred in the high but not too distant layers of the
atmosphere. The earliest calculations of meteor heights that are so far
known, however, were made in Bologna, Italy, in 1719 and 1745—long after
the heyday of Greek science.
The meteor heights found by the Italians were quite low in the
atmosphere, probably for two reasons. First, the visual (unaided-eye)
observations they had to use were made by eyewitnesses stationed so
close together that accurate fixes were impossible. Secondly, these
visual observations must have related only to the very brightest and
therefore lowest portions of the luminous paths of the meteors through
the atmosphere.
In 1798, two German students operating from carefully chosen and widely
separated stations began the systematic observation of meteors for
parallax. They found that the height of appearance of most meteors lay
between 48 and 60 miles above the earth’s surface. It is now known that
most meteors, as observed with the naked eye, appear at about 70 miles
and disappear at about 50 miles above the surface of the earth. These
figures, obtained from visual work, still stand in spite of the
development of such modern techniques as photographic and radar
recording of meteor paths.
Public-domain text, read in full here on John Shaqi.
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