HR: 1340h
AN: SH23B-0340 [Abstracts]
TI: Charged Particle Transport in a Non-Uniform Magnetic Field with a Statistically Homogeneous Random
Component: Implications for Cosmic-Ray Modulation Models.
AU: * Minnie, J
EM: minnie@bartol.udel.edu
AF: Bartol Research Institute, Department of Physics and Astronomy, 217 Sharp Lab,
University of Delaware, Newark, DE 19716
United States
AU: * Minnie, J
EM: minnie@bartol.udel.edu
AF: Unit for Space Physics, School of Physics, Private Bag X6001,
North-West University, Potchefstroom Campus, Potchefstroom, 2520
South Africa
AU: Burger, R A
EM: fskrab@puk.ac.za
AF: Unit for Space Physics, School of Physics, Private Bag X6001,
North-West University, Potchefstroom Campus, Potchefstroom, 2520
South Africa
AU: Bieber, J W
EM: john@bartol.udel.edu
AF: Bartol Research Institute, Department of Physics and Astronomy, 217 Sharp Lab,
University of Delaware, Newark, DE 19716
United States
AU: Matthaeus, W H
EM: yswhm@bartol.udel.edu
AF: Bartol Research Institute, Department of Physics and Astronomy, 217 Sharp Lab,
University of Delaware, Newark, DE 19716
United States
AB:
In the description of cosmic ray modulation in the heliosphere it is known that the diffusion process is of utmost
importance. However, diffusion theories that provide the analytical results that are used in many of the new generation of ab
initio modulation models are all derived for the case of a uniform background magnetic field. We investigate the effects of
a non-uniform background magnetic field on the propagation of charged particles by means of direct numerical simulation. In
particular, the background magnetic field contains a gradient perpendicular to the mean field direction, while the random
part of the magnetic field is described by the so-called composite model of turbulence, which consists of a slab- and 2D
component respectively. This model for the turbulence is a fully 3D description of the turbulence, with a 20:80 distribution
of energy between the slab- and 2D fluctuations respectively. We find that the presence of a gradient in the magnetic field
has a significant influence on particle transport. In particular we find that the same turbulence field can yield diffusive
transport in a uniform field, while yielding apparent non-diffusive transport (e.g. superdiffusion) when field gradients are
introduced. Supported by NASA grant NNG04GF81G and the National Research Foundation under grant GUN2063412.
DE: 7524 Magnetic fields
DE: 7807 Charged particle motion and acceleration
DE: 7833 Mathematical and numerical techniques (0500, 3200)
DE: 7859 Transport processes
SC: SPA-Solar and Heliospheric Physics [SH]
MN: Fall Meeting 2005