Jupiter (Planet) -- Photographs from space; Jupiter probes; Voyager Project
The discovery of planetary magnetospheres began in 1959 when the first
U.S. Explorer satellite detected the radiation belts around the Earth.
Named for James Van Allen of the University of Iowa, whose
geiger-counter instrument aboard Explorer 1 first measured them, these
belts are regions in which charged atomic particles—primarily electrons
and protons—are trapped by the magnetic field of the Earth. They are one
manifestation of the terrestrial magnetosphere—a large, dynamic region
around the Earth in which the magnetic field of our planet interacts
with streams of charged particles emanating from the Sun.
At almost the same time that the terrestrial magnetosphere was being
discovered by artificial satellites, astronomers were finding evidence
to suggest similar phenomena around Jupiter. Radio astronomy is a branch
of science that measures radiation from celestial bodies at radio
frequencies, which correspond to wavelengths much longer than those of
visible or infrared light. All planets emit weak thermal radio
radiation, but in the late 1950s investigators found that Jupiter was a
much stronger long-wave radio source than would be expected for a planet
with its temperature. This radiation bore the signature of higher-energy
processes. Physicists had seen similar emissions produced in synchrotron
electron accelerators, huge machines in which electrons are whirled
around at nearly the speed of light so that they can be used for
experiments in nuclear physics. The Russian theorist I. S. Shklovsky
identified the Jovian radio radiation as also resulting from the
synchrotron process, due to spiraling electrons trapped in the planet’s
magnetic field. From the intensity and spectrum of the observed
synchrotron radiation, it was clear that both the magnetic field of the
planet and the energy of charged particles in its Van Allen belts were
much greater than was the case for Earth.
Using radio telescopes of high sensitivity, astronomers determined the
approximate strength and orientation of the magnetic field of Jupiter.
Although they were able to measure synchrotron radiation only from the
innermost parts of the Jovian magnetosphere, they could infer that the
total volume occupied by the magnetosphere was enormous. If our eyes
were sensitive to magnetospheric emissions, Jupiter would look more than
twice the diameter of the full moon in the sky.
All four Galilean satellites orbit within the magnetosphere of Jupiter;
in contrast, our Moon lies well outside the terrestrial magnetosphere.
Striking evidence of the interaction of the satellites and the
magnetosphere was provided when it was found that the innermost large
satellite—Io—actually affects the bursts of radio static produced by
Jupiter. Only when Io is at certain places in its orbit are these strong
bursts detected. Theorists suggested that electric currents flowing
between the satellite and the planet might be responsible for this
effect.
The Jovian Satellites
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