Gyrokinetic simulations of mesoscale energetic particle-driven Alfvenic turbulent transport embedded in microturbulence

被引:65
作者
Bass, E. M. [1 ]
Waltz, R. E. [1 ]
机构
[1] Gen Atom Co, San Diego, CA 92186 USA
关键词
ALPHA-PARTICLES; BURNING PLASMAS; SHEAR; WAVES; EIGENMODES; MODES; EXCITATION; PHYSICS; MAGNETOHYDRODYNAMICS; INSTABILITY;
D O I
10.1063/1.3509106
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
Energetic particle (EP) transport from local high-n toroidal Alfven eigenmodes (TAEs) and energetic particle modes (EPMs) is simulated with a gyrokinetic code Linear and nonlinear simulations have identified a parameter range where the longwave TAE and EPM are unstable alongside the well-known ion-temperature-gradient (ITG) and trapped-electron-mode (TEM) instabilities A new eigenvalue solver in GYRO facilitates this mode identification States of nonlinearly saturated local TAE/EPM turbulent intensity are identified, showing a "soft" transport threshold for enhanced energetic particle transport against the TAE/EPM drive from the EP pressure gradient The very long-wavelength (mesoscale) TAE/EPM transport is saturated partially by nonlinear interaction with microturbulent ITG/TEM-driven zonal flows Fixed-gradient-length, nonlinearly saturated states are accessible over a relatively narrow range of EP pressure gradient Within this range, and in the local limit employed, TAE/EPM-driven transport more closely resembles drift-wave microturbulent transport than "stiff' ideal MHD transport with a clamped critical total pressure gradient At a higher, critical EP pressure gradient, fixed-gradient nonlinear saturation fails EP transport increases without limit and background transport decreases Presumably saturation is then obtained by relaxation of the EP pressure gradient to near this critical EP pressure gradient If the background plasma gradients driving the ITG/TEM turbulence and zonal flows are weakened, the critical gradient collapses to the TAE/EPM linear stability threshold Even at the critical EP pressure gradient there is no evidence that TAE/EPM instability significantly increases transport in the background plasma channels (C) 2010 American Institute of Physics [doi 10 1063/1 3509106]
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页数:11
相关论文
共 74 条
[1]   Anomalous transport of energetic particles in ITER relevant scenarios [J].
Albergante, M. ;
Graves, J. P. ;
Fasoli, A. ;
Jenko, F. ;
Dannert, T. .
PHYSICS OF PLASMAS, 2009, 16 (11) :112301
[2]   Gyrokinetic calculations of diffusive and convective transport of α particles with a slowing-down distribution function [J].
Angioni, C. ;
Peeters, A. G. .
PHYSICS OF PLASMAS, 2008, 15 (05)
[3]  
Balay S, 1997, MODERN SOFTWARE TOOLS FOR SCIENTIFIC COMPUTING, P163
[4]  
Balay S., 2009, PETSC
[5]  
BALAY S, 2008, 9511 ANL
[6]   CONTINUUM DAMPING OF LOW-N TOROIDICITY-INDUCED SHEAR ALFVEN EIGENMODES [J].
BERK, HL ;
VANDAM, JW ;
GUO, Z ;
LINDBERG, DM .
PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1992, 4 (07) :1806-1835
[7]   Pressure-gradient-induced Alfven eigenmodes: I. Ideal MHD and finite ion Larmor radius effects [J].
Bierwage, A. ;
Chen, L. ;
Zonca, F. .
PLASMA PHYSICS AND CONTROLLED FUSION, 2010, 52 (01)
[8]   Critical nonlinear phenomena for kinetic instabilities near threshold [J].
Breizman, BN ;
Berk, HL ;
Pekker, MS ;
Porcelli, F ;
Stupakov, GV ;
Wong, KL .
PHYSICS OF PLASMAS, 1997, 4 (05) :1559-1568
[9]   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
[10]   Particle simulation of bursting Alfven modes in JT-60U [J].
Briguglio, S. ;
Fogaccia, G. ;
Vlad, G. ;
Zonca, F. ;
Shinohara, K. ;
Ishikawa, M. ;
Takechi, M. .
PHYSICS OF PLASMAS, 2007, 14 (05)