How is this done? We have said that one of the isotopes of uranium,
²³⁵U, decays faster—about 6.3 times faster—than the other, ²³⁸U. They
decay into two different isotopes of lead. Therefore, if we can
determine the isotopic composition of average ordinary lead in the
earth’s crust today, and if we can somehow obtain a sample of the kind
of lead that is locked in the earth’s core, we can calculate how long it
took to change the PRIMORDIAL lead (like that in the core) into
present-day lead in the crust by the gradual addition of radiogenic
lead—lead that has resulted from the decay of uranium. Now, someone
might logically ask, “Isn’t it necessary to know also the actual amount
of uranium involved in the process, and isn’t this difficult to
determine?” It turns out to be a remarkable aspect of the
Holmes-Houtermans calculation that the uranium-concentration terms
cancel out in the equations and only the _ratio_ of the isotopes and
their decay constants need be considered. These are all known
accurately.
Next, we must decide just what is average present-day lead? It isn’t
enough to go to a lead mine and get a sample, because, unfortunately,
leads from different mines have widely varied isotopic composition—that
is, a different mixture of four natural isotopes, ²⁰⁴Pb, ²⁰⁶Pb, ²⁰⁷Pb,
and ²⁰⁸Pb—as a result of their geologic histories. No, lead samples from
a mine won’t do. However, geologists have been able to separate lead
from recent marine sediments, obtained from the ocean bottom, far from
land. These are of uniform composition, and are good samples of what the
world’s rivers bring into the ocean. Other useful samples can be found
in plateau basalts, which are enormous bodies of dark volcanic rock that
make up the bedrock in many parts of the world. The lead from these
basalts is isotopically very much like the lead in the oceans.
Very well, but how about the lead from the core? Where can we hope to
find a sample of it? It turns out to be easier than you might think.
Astronomers believe it highly probable that most meteorites are
fragments of a former planet that broke up for reasons that are not
entirely clear. It is pretty definite, however, that this protoplanet
(or these protoplanets, for there may have been more than one) had an
iron core, and this core (or these cores) is the source of the iron
meteorites sailing around in space. A large meteorite hit the earth not
too long ago (geologically speaking) and caused the Meteor Crater near
Canyon Diablo in Arizona.
[Illustration: _Examining ocean-bottom sediments obtained by lowering a
tube-like instrument that brings up a long rod-shaped “core”, prior to
nuclear age determination of the sample._]
Public-domain text, read in full here on John Shaqi.
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