Space Nomads: Meteorites in Sky, Field, and LaboratoryLaPaz, Lincoln
Science
Space Nomads: Meteorites in Sky, Field, and Laboratory
LaPaz, Lincoln
Meteorites
As our earth moves along its orbit about the sun, meteoritic bodies can
run into it from any direction. The direction from which they do
approach strongly influences the speed of these bodies as they plunge
through the earth’s atmosphere. A meteorite moving slowly about the sun
in the same direction as the earth and chancing to catch up with our
globe more or less from behind will have an observed speed of only a few
miles a second. For example, the speed calculated from Harvard
meteor-photographs of one such not-too-spectacular “rear-end” collision
amounted to no more than 7.3 miles per second, just about the speed a
rocket must acquire to escape from the apron strings of Mother Earth.
[Illustration: Meteor shower. Earth and particle-swarm passing
through the intersection of their orbits at nearly the same moment.]
In contrast to such a “rear-end” collision, the speed observed would be
far greater if the meteorite happened to collide exactly “head-on” with
the earth. For, in this case, the orbital speed of our planet would be
_added_ to that of the meteorite about the sun. As an example, suppose
that at the earth’s average distance from the center of our Solar
System, the speed of a meteorite with respect to the sun were 32.23
miles per second. (This speed was actually found for the mass that
produced one of the first meteors photographed simultaneously by the
Harvard stations at Cambridge and Oak Ridge, Massachusetts.) Then if
such a meteorite ran “head-on” into the earth, the speed observed for it
in the atmosphere would be over 51 miles per second. And mathematics
would show that the orbit of this meteorite with respect to the sun was
a wide open hyperbola.
If the orbit of the earth and the orbit of a swarm of particles of
cosmic matter intersect, and if the earth and the swarm pass through
this intersection in space at nearly the same moment, multitudes of
meteors appear. We then say that a _meteor shower_ takes place. The
position of the point at which the particle-swarm crosses the earth’s
orbit about the sun fixes the date of the meteor shower.
Because the particles that make a meteor shower are moving through space
along parallel paths as they come into the earth’s atmosphere, the
meteors all seem to shoot out from a single small area in the sky. You
may have seen something like this in the case of the sunrise or sunset
effect known as “the sun drawing water.” In this more familiar
phenomenon, the sun’s disk is the area from which shafts of sunlight
radiate out in a beautiful, if somewhat irregular, fan-like pattern. The
area from which the meteors of a given shower seem to come is the
_radiant_ of that shower.
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account