HR: 0830h
AN: SH11C-1113 [PDF]
TI: Self Consistent Modeling of Turbulence Transport with
Implications for Cosmic Ray Transport and Modulation
AU: * Parhi, S
EM: sparhi@bartol.udel.edu
AF: Bartol Research Institute, University of Delaware, Newark, DE 19716 United States
AU: Bieber, J W
EM: john@bartol.udel.edu
AF: Bartol Research Institute, University of Delaware, Newark, DE 19716 United States
AU: Matthaeus, W H
EM: whm@udel.edu
AF: Bartol Research Institute, University of Delaware, Newark, DE 19716 United States
AU: Burger, R A
EM: FSKRAB@puknet.puk.ac.za
AF: School of Physics, Potchefstroom University, Potchefstroom, 2520
South Africa
AB:
A global solar wind turbulence model is discussed in a
simulation domain spanning from 0.2 AU to 100 AU excluding the effect
of termination shock at present. The three governing equations which
model the turbulence describe fluctuation energy, correlation scale and
temperature at every point in the heliosphere. These equations are
solved numerically along every radial direction in our simulation
domain. The parameters present in these equations are varied along the
inner boundary and across the simulation domain. These parameters are
magnetic variance, correlation length, plasma temperature, plasma shear,
wind speed, strength of pick-up ions, and cross helicity, among others.
The simulation results thus obtained are compared with observations.
The turbulence model is then combined with a modulation code that
integrates Parker's transport equation numerically. This is part of our
ongoing effort to integrate turbulence and scattering self
consistently and develop an ab initio model of the solar modulation of
cosmic rays. Implications for cosmic ray scattering and transport in
the outer heliosphere will be discussed in light of recent Voyager
observations at 85 AU.
DE: 2104 Cosmic rays
DE: 2114 Energetic particles, heliospheric (7514)
DE: 2149 MHD waves and turbulence
SC: SPA - Solar and Heliospheric Physics [SH]
MN: 2003 Fall Meeting