Abstract
JOURNAL OF GEOPHYSICAL RESEARCH,
VOL. 111,
A03202,
7 PP., 2006
doi:10.1029/2005JA011437
Monte Carlo modeling of toroidal ion distributions and ion temperatures at high altitudes equatorward of the cusp: Effect of finite gyroradius
Space Research Laboratory, Department of Physics, Al-Quds University, Jerusalem, Palestine
Space Research Laboratory, Department of Physics, Al-Quds University, Jerusalem, Palestine
We report that the effect of finite gyroradius is responsible for production of the H+ and O+ toroids at high altitudes equatorward of the cusp that are observed by TIDE and TIMAS ion instruments on board the polar
spacecraft. The energization of charged particles, owing to interaction with electromagnetic turbulence, has an important
influence on the plasma outflow in space. The effect of wave-particle interactions (WPI) on H+ and O+ outflow at high altitudes equatorward of the cusp was investigated by using Monte Carlo method. The Monte Carlo model includes
the effect of WPI, gravity, polarization electrostatic field, and the divergence of the geomagnetic field within the simulation
tube (1.2–10 Earth radii, R
E
). As the ions drift upward along the geomagnetic field lines, they interact with the electromagnetic turbulence and consequently
get heated in the direction perpendicular to the geomagnetic field. The mirror force converts some of the gained ion energy
in the perpendicular direction into parallel kinetic energy. These effects combine to form an ion-conic velocity distribution.
However, as the ions are heated and move to higher altitudes, the ion gyroradius ρ
i
may become comparable to the perpendicular wavelength of the electromagnetic turbulence λ
Received 20 September 2005; accepted 1 December 2005; published 3 March 2006.
Citation: (2006), Monte Carlo modeling of toroidal ion distributions and ion temperatures at high altitudes equatorward of the cusp: Effect of finite gyroradius, J. Geophys. Res., 111, A03202, doi:10.1029/2005JA011437.
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