HR: 0800h
AN: SM41A-1131    [Abstracts]
TI: Magnetic field line curvature induced pitch angle diffusion in the radiation belts
AU: * Young, S L
EM: Shawn.Young@Hanscom.AF.mil
AF: Air Force Research Laboratory, Space Vehicles Directorate, VSBXR 29 Randolph Road, Hanscom AFB, MA 01731 United States
AU: Denton, R E
EM: Richard.E.Denton@Dartmouth.edu
AF: Dartmouth College, Department of Physics and Astronomy, Hanover, NH 03755 United States
AU: Anderson, B J
EM: Brian.Anderson@JHUAPL.edu
AF: Johns Hopkins University Applied Physics Laboratory, APL/JHU PO Box 670, Laurel, MD 20725-0670 United States
AU: Hudson, M K
EM: maryk@sunset.dartmouth.edu
AF: Dartmouth College, Department of Physics and Astronomy, Hanover, NH 03755 United States
AB: Magnetic field line curvature (FLC) affects particle populations throughout the magnetosphere. Strongly curved field lines quickly isotropize particle distributions with relatively low energies in the tail and keep the loss cone well supplied. In the inner magnetosphere, weaker curvature allows higher energy particles to remain trapped for longer periods of time, but limits on lifetimes are still imposed. Because of the exponential nature of the onset of non-adiabaticity (leading to pitch angle scattering), rough estimates for the importance of this mechanism assume an ``on/off'' switch. If $\varepsilon$ is above threshold, the particles are quickly scattered, while populations with $\varepsilon$ below this value are not affected at all. Here $\varepsilon$ is the ratio between the maximum gyroradius a particle on a particular field line may have and that field line's minimum radius of curvature. We investigate the effects of magnetic field line curvature in the inner magnetosphere using the pitch angle diffusion equation for phase space density with the diffusion coefficient based on an empirically derived FLC induced pitch angle scattering model. A range of numerically calculated results shows the effects of varying not only $\varepsilon$, but various magnetic field parameters. Using these results in conjunction with magnetic field parameters calculated from a combination of the Tsygenenko 2001 and IGRF magnetic field models we explore the effects of both $D_{st}$ and the dipole tilt angle on different particle populations. We show results that support the ``on/off'' model with threshold values of $\varepsilon$ varying between 0.15 and 0.38. Higher speed populations do not require as large of values of $\varepsilon$ to diffuse at the same rate as lower speed populations.
DE: 2716 Energetic particles, precipitating
DE: 2720 Energetic particles, trapped
DE: 2730 Magnetosphere--inner
SC: SPA-Magnetospheric Physics [SM]
MN: 2004 AGU Fall Meeting