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Self-consistent full-wave and Fokker-Planck calculations for ion cyclotron heating in non-Maxwellian plasmas

Authors :
E. F. Jaeger
Lee A. Berry
Sean Ahern
Mark D. Carter
C. K. Phillips
D.A. D'Ippolito
P.T. Bonoli
John Wright
Donald B. Batchelor
Ed D'Azevedo
R. W. Harvey
Ryan D Moore
Richard F. Barrett
J.R. Myra
M. Choi
H. Okuda
David Smithe
R. J. Dumont
Source :
Physics of Plasmas. 13:056101
Publication Year :
2006
Publisher :
AIP Publishing, 2006.

Abstract

Magnetically confined plasmas can contain significant concentrations of nonthermal plasma particles arising from fusion reactions, neutral beam injection, and wave-driven diffusion in velocity space. Initial studies in one-dimensional and experimental results show that nonthermal energetic ions can significantly affect wave propagation and heating in the ion cyclotron range of frequencies. In addition, these ions can absorb power at high harmonics of the cyclotron frequency where conventional two-dimensional global-wave models are not valid. In this work, the all-orders global-wave solver AORSA [E. F. Jaeger et al., Phys. Rev. Lett. 90, 195001 (2003)] is generalized to treat non-Maxwellian velocity distributions. Quasilinear diffusion coefficients are derived directly from the wave fields and used to calculate energetic ion velocity distributions with the CQL3D Fokker-Planck code [R. W. Harvey and M. G. McCoy, Proceedings of the IAEA Technical Committee Meeting on Simulation and Modeling of Thermonuclear ...

Details

ISSN :
10897674 and 1070664X
Volume :
13
Database :
OpenAIRE
Journal :
Physics of Plasmas
Accession number :
edsair.doi...........6ea07ce3c8d78d578d75913c84e0f864
Full Text :
https://doi.org/10.1063/1.2173629