Interpretation of the finite pressure gradient effects in the reversed shear Alfven eigenmode theory

被引:35
作者
Gorelenkov, N. N. [1 ]
Kramer, G. J. [1 ]
Nazikian, R. [1 ]
机构
[1] Princeton Univ, Princeton Plasma Phys Lab, Princeton, NJ 08543 USA
关键词
D O I
10.1088/0741-3335/48/8/013
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
Ideal MHD equations employed in the NOVA code are analysed analytically and numerically in order to investigate the role of the pressure gradient on global reversed shear Alfven eigenmodes (RSAEs) or Alfven cascades. We confirm both numerically and analytically conclusions obtained earlier using the ideal MHD code NOVA [1] and analytically [10] that the plasma pressure gradient plays a key role in the existence condition and in the dispersion relation for the mode. The effect of the plasma pressure gradient is to shift the mode frequency up at the low part of the RSAE frequency chirp and downshift the mode frequency when the frequency approaches the TAE gap. This finding is contrary to predictions in a recent publication [2], where the pressure gradient is found to be always stabilizing by means of downshifting the RSAE frequency and enhancing its interaction with the continuum. We resolve this discrepancy by showing that neglecting the pressure gradient effect on the plasma equilibrium (modification of the Shafranov shift and the averaged curvature) leads to conclusions at variance with the numerical and analytical results presented here. A new variational approximation of the RSAE is introduced which compares remarkably well with NOVA solutions. With this new approximation we clearly demonstrate the diagnostic potential and limitations of the RSAE frequency measurement for MHD spectroscopy.
引用
收藏
页码:1255 / 1269
页数:15
相关论文
共 19 条
[1]   Theoretical interpretation of Alfven cascades in tokamaks with nonmonotonic q profiles -: art. no. 185002 [J].
Berk, HL ;
Borba, DN ;
Breizman, BN ;
Pinches, SD ;
Sharapov, SE .
PHYSICAL REVIEW LETTERS, 2001, 87 (18) :185002-1
[2]   Theory of Alfven eigenmodes in shear reversed plasmas [J].
Breizman, BN ;
Berk, HL ;
Pekker, MS ;
Pinches, SD ;
Sharapov, SE .
PHYSICS OF PLASMAS, 2003, 10 (09) :3649-3660
[3]  
BREIZMAN BN, 2005, PHYS PLASMAS, V12
[4]   LOW-N SHEAR ALFVEN SPECTRA IN AXISYMMETRICAL TOROIDAL PLASMAS [J].
CHENG, CZ ;
CHANCE, MS .
PHYSICS OF FLUIDS, 1986, 29 (11) :3695-3701
[5]   KINETIC EXTENSIONS OF MAGNETOHYDRODYNAMICS FOR AXISYMMETRICAL TOROIDAL PLASMAS [J].
CHENG, CZ .
PHYSICS REPORTS-REVIEW SECTION OF PHYSICS LETTERS, 1992, 211 (01) :1-51
[6]   A NUMERICAL STUDY OF THE HIGH-N SHEAR ALFVEN SPECTRUM GAP AND THE HIGH-N GAP MODE [J].
CHU, MS ;
GREENE, JM ;
LAO, LL ;
TURNBULL, AD ;
CHANCE, MS .
PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1992, 4 (11) :3713-3721
[7]   EXISTENCE OF CORE LOCALIZED TOROIDICITY-INDUCED ALFVEN EIGENMODE [J].
FU, GY .
PHYSICS OF PLASMAS, 1995, 2 (04) :1029-1031
[8]  
FU GY, 2006, PHYS PLASMAS, V13
[9]   Double-gap Alfven eigenmodes: Revisiting eigenmode interaction with the Alfven continuum [J].
Gorelenkov, NN .
PHYSICAL REVIEW LETTERS, 2005, 95 (26)
[10]   TOKAMAK EQUILIBRIUM [J].
GREENE, JM ;
JOHNSON, JL ;
WEIMER, KE .
PHYSICS OF FLUIDS, 1971, 14 (03) :671-+