HR: 0800h
AN: SM31B-1242 [Abstracts]
TI: Substorm Injections Produce Sufficient Electron Energization to Account for MeV Flux Enhancements
Following Some Storms
AU: * Mithaiwala, M
EM: mithaiwa@physics.utexas.edu
AF: The University of Texas at Austin
Department of Physics
Institute for Fusion Studies, The Unversity of Texas at Austin
Physics Department
1 University Station C1600, Austin, TX 78712-0264
United States
AU: Horton, W
EM: horton@physics.utexas.edu
AF: The University of Texas at Austin
Department of Physics
Institute for Fusion Studies, The Unversity of Texas at Austin
Physics Department
1 University Station C1600, Austin, TX 78712-0264
United States
AB:
One of the main questions concerning radiation belt research is the
origin of very high energy ($>1 MeV$) electrons following many
space storms. Under the hypothesis that the plasma sheet
electron population is the source of these electrons which are
convected to the outer radiation belt region during substorms, we
estimate the flux of particles generated at geosynchronous
orbit. We use the test particle method of following guiding center
electrons as they drift in the electromagnetic fields during substorm
dipolarization. The dipolarization pulse model
electromagnetic fields are taken from the {\it Li et al.}~[1998]
substorm particle injection model. We find that a substorm
dipolarization can produce enough electrons within geosynchronous
orbit to account for the electrons seen following storms. To do this
we compute transport ratios of plasma sheet electrons, that is the
relative ratio of plasma sheet electrons that are transported and
trapped in the inner magnetosphere during substorms, as well as the
change in energy of the electrons. Since high fluxes of $MeV$
electrons are only seen following storms and not isolated substorms,
it is likely that these electrons may serve as a source population
for other energization mechanisms which accelerate the
electrons to MeV energies. Furthermore we do parametric studies of
the dipolarization model to understand physically what conditions
enable the generation of this source population.
This work supported in part by NSF Grant No. ATM-0229863.
DE: 2720 Energetic particles, trapped
DE: 2744 Magnetotail
DE: 2753 Numerical modeling
DE: 2760 Plasma convection
DE: 2788 Storms and substorms
SC: SPA-Magnetospheric Physics [SM]
MN: 2004 AGU Fall Meeting