A radio-frequency sheath boundary condition and its effect on slow wave propagation

被引:67
作者
D'Ippolito, D. A. [1 ]
Myra, J. R. [1 ]
机构
[1] Lodestar Res Corp, Boulder, CO 80301 USA
关键词
D O I
10.1063/1.2360507
中图分类号
O35 [流体力学]; O53 [等离子体物理学];
学科分类号
070204 ; 080103 ; 080704 ;
摘要
Predictive modeling of radio-frequency wave propagation in high-power fusion experiments requires accounting for nonlinear losses of wave energy in the plasma edge and at the wall. An important mechanism of "anomalous" power losses is the acceleration of ions into the walls by rf sheath potentials. Previous work computed the "sheath power dissipation" non-self-consistently by postprocessing fields obtained as the solution of models which did not retain sheaths. Here, a method is proposed for a self-consistent quantitative calculation of sheath losses by incorporating a sheath boundary condition (SBC) in antenna coupling and wave propagation codes. It obtains the self-consistent sheath potentials and spatial distribution of the time-averaged power loss in the solution for the linear rf fields. It can be applied for ion cyclotron and (in some cases) lower hybrid waves. The use of the SBC is illustrated by applying it to the problem of an electron plasma wave propagating in a waveguide. This model problem is relevant to understanding the low heating efficiency in direct ion-Bernstein wave launch. Implications for calculating sheath voltages driven by fast-wave antennas are also discussed. (c) 2006 American Institute of Physics.
引用
收藏
页数:12
相关论文
共 33 条
[1]   Edge plasma density convection during ion cyclotron resonance heating on Tore Supra [J].
Bécoulet, M ;
Colas, L ;
Pécoul, S ;
Gunn, J ;
Ghendrih, P ;
Bécoulet, A ;
Heuraux, S .
PHYSICS OF PLASMAS, 2002, 9 (06) :2619-2632
[2]   PLASMA SHEATH FORMATION BY RADIO-FREQUENCY FIELDS [J].
BUTLER, HS ;
KINO, GS .
PHYSICS OF FLUIDS, 1963, 6 (09) :1346-1355
[3]   Combined rf and transport effects in magnetized capacitive discharges [J].
Carter, M. D. ;
Ryan, P. M. ;
Hoffman, D. ;
Lee, W. S. ;
Buchberger, D. ;
Godyak, V. .
JOURNAL OF APPLIED PHYSICS, 2006, 100 (07)
[4]  
CHODURA R, 1989, P 16 EUR C CONTR B 3, V13, P1089
[5]   Key results of long pulse ICRH operation in Tore Supra [J].
Colas, L. ;
Basiuk, V. ;
Beaumont, B. ;
Becouelt, A. ;
Bosia, G. ;
Bremond, S. ;
Chantant, M. ;
Clairet, R. ;
Ekedahl, A. ;
Faudot, E. ;
Geraud, A. ;
Goniche, M. ;
Heuraux, S. ;
Hoang, G. T. ;
Lombard, G. ;
Millon, L. ;
Mitteau, R. ;
Mollard, P. ;
Vulliez, K. .
NUCLEAR FUSION, 2006, 46 (07) :S500-S513
[6]   Hot spot phenomena on Tore Supra ICRF antennas investigated by optical diagnostics [J].
Colas, L ;
Costanzo, L ;
Desgranges, C ;
Brémond, S ;
Bucalossi, J ;
Agarici, G ;
Basiuk, V ;
Beaumont, B ;
Bécoulet, A ;
Nguyen, F .
NUCLEAR FUSION, 2003, 43 (01) :1-15
[7]  
COLAS L, 2005, P 16 TOP C RAD FREQ, P150
[8]   Modelling of mixed-phasing antenna-plasma interactions on JET A2 antennas [J].
D'Ippolito, DA ;
Myra, JR ;
Ryan, PM ;
Righi, E ;
Heikkinen, J ;
Lamalle, PU ;
Noterdaeme, JM .
NUCLEAR FUSION, 2002, 42 (12) :1357-1365
[9]   RADIO-FREQUENCY-SHEATH-DRIVEN EDGE PLASMA CONVECTION AND INTERACTION WITH THE H-MODE [J].
DIPPOLITO, DA ;
MYRA, JR ;
JACQUINOT, J ;
BURES, M .
PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1993, 5 (10) :3603-3617
[10]   Low-power fast wave antenna loading as a radio-frequency sheath diagnostic [J].
DIppolito, DA ;
Myra, JR .
PHYSICS OF PLASMAS, 1996, 3 (01) :420-426