HR: 10:42h
AN: SM32A-02 INVITED [Abstracts]
TI: A Fermi Mechanism for the Production of Energetic Electrons During Magnetic Reconnection
AU: * Drake, J F
EM: drake@plasma.umd.edu
AF: University of Maryland, IREAP
University of Maryland, College Park, MD 20742
United States
AU: Che, H
EM: hche@glue.umd.edu
AF: University of Maryland, IREAP
University of Maryland, College Park, MD 20742
United States
AU: Shay, M A
EM: shay@physics.udel.edu
AF: University of Maryland, IREAP
University of Maryland, College Park, MD 20742
United States
AU: Swisdak, M
EM: marc.swisdak@nrl.navy.mil
AF: Icarus Research, Inc., P.0. Box 30780, Bethesda, MD 20824-0780
United States
AB:
The production of energetic electrons has been documented in
observations of solar flares and magnetic reconnection in the Earth's
magnetosphere, yet the explanation of these observations
remains an open question. Simulations reveal that magnetic
reconnection with a guide field leads to the growth and dynamics of
multiple magnetic islands rather than a single large x-line. Above a
critical energy electron acceleration is dominated by the Fermi-like
reflection of electrons within the resulting magnetic islands rather
than by the parallel electric fields associated with the
x-line. Particles trapped within islands gain energy as they reflect
from ends of contracting magnetic islands, slowly drift outwards and
scatter as they undergo non-adiabatic motion near the magnetic
separatrices. A Fokker-Planck equation for the distribution of
energetic particles similar to that developed in shock accelertion
theory is obtained by averaging over the particle interaction with
many islands. Steady state solutions in reconnection geometry result
from convective losses balancing the Fermi drive. Distribution
functions take the form of a powerlaw whose spectral index depends on
the mean aspect-ratio of the islands. In large systems the spectral
index is the same as that obtained for high mach number shocks --
namely the conversion efficiency of magnetic energy into energetic
electrons is high. The energy content of these particles is a
consequence of their high mobility -- they can rapidly interact with
many islands to reach high energy. The model is consistent with
several key solar and magnetospheric observations: the production of
large numbers of energetic electrons; the isotropy of the particle
distributions at high energy and powerlaw distributions.
DE: 2723 Magnetic reconnection (7526, 7835)
DE: 7514 Energetic particles (2114)
DE: 7526 Magnetic reconnection (2723, 7835)
DE: 7845 Particle acceleration
SC: SPA-Magnetospheric Physics [SM]
MN: Fall Meeting 2005