DocumentCode :
2566083
Title :
High-order computational method applied to the multi-fluid plasma model
Author :
Shumlak, U. ; Lilly, R. ; Miller, S. ; Reddell, N. ; Sousa, E.
Author_Institution :
Aerosp. & Energetics Res. Program, Univ. of Washington, Seattle, WA, USA
fYear :
2012
fDate :
8-13 July 2012
Abstract :
High-order accurate finite element methods are important for problems that have strong anisotropies and complicated geometries and for stiff equation systems that are coupled through large source terms. Magnetized plasma simulations of realistic devices using the multi-fluid plasma model are examples that benefit from high-order accuracy. The multi-fluid plasma model only assumes local thermodynamic equilibrium within each fluid, e.g. ion and electron fluids for the two-fluid plasma model. Physical parameters indicate the importance of the two-fluid effects: electron to ion mass ratio, ion skin depth, and ion Larmor radius. The algorithm1 implements a discontinuous Galerkin method with an approximate Riemann solver to compute the fluxes of the fluids and electromagnetic fields at the computational cell interfaces. The multi-fluid plasma model has time scales on the order of the electron and ion cyclotron frequencies, the electron and ion plasma frequencies, the electron and ion sound speeds, and the speed of light. The multi-fluid plasma algorithm is implemented in a flexible code framework (WARPX) that allows easy extension of the physical model to include multiple fluids and additional physics. The code runs on multi-processor machines and is being adapted with OpenCL to many-core systems, characteristic of the next generation of high performance computers. WARPX has demonstrated a three-fluid (electrons, ions, and neutrals) simulation of a plasma sheath formation. Atomic reactions are incorporated that describe the effects of collisions between the species explicitly, allowing for the identification of regions of ionization/recombination, and interspecies momentum and energy transfer. The algorithm is validated with several test problems including the GEM challenge magnetic reconnection problem and the generation of dispersive plasma waves which are compared to analytical dispersion diagrams. The algorithm is applicable to study advanced physics calcu- ations of plasma dynamics including magnetic plasma confinement and astrophysical plasmas. Three-dimensional solutions of the Z-pinch and the field reversed configuration (FRC) magnetic plasma confinement configurations are presented.
Keywords :
Galerkin method; Z pinch; astrophysical plasma; finite element analysis; ionisation; magnetic reconnection; multiprocessing systems; plasma collision processes; plasma devices; plasma electromagnetic wave propagation; plasma magnetohydrodynamics; plasma sheaths; plasma simulation; plasma thermodynamics; reversed field pinch; OpenCL; WARPX; Z-pinch; analytical dispersion diagrams; approximate Riemann solver; astrophysical plasma; atomic reactions; collision effects; computational cell; discontinuous Galerkin method; dispersive plasma waves; electromagnetic fields; electron fluids; electron sound speed; electron-to-ion mass ratio; energy transfer; field reversed configuration; flexible code framework; fluid plasma model; high performance computers; high-order accurate finite element methods; high-order computational method; ion Larmor radius; ion cyclotron frequencies; ion fluids; ion plasma frequencies; ion skin depth; ion sound speed; ionization region; local thermodynamic equilibrium; magnetic plasma confinement configurations; magnetic reconnection problem; magnetized plasma simulations; momentum transfer; multifluid plasma model; multiprocessor machines; physical parameters; plasma dynamics; plasma sheath formation simulation; recombination region; stiff equation systems; three-dimensional solutions; two-fluid effects; two-fluid plasma model; Computational modeling; Fluids; Heuristic algorithms; Magnetic liquids; Mathematical model; Physics; Plasmas;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Plasma Science (ICOPS), 2012 Abstracts IEEE International Conference on
Conference_Location :
Edinburgh
ISSN :
0730-9244
Print_ISBN :
978-1-4577-2127-4
Electronic_ISBN :
0730-9244
Type :
conf
DOI :
10.1109/PLASMA.2012.6383974
Filename :
6383974
Link To Document :
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