Notched velocity profiles and the radial electric field in high ion temperature plasmas in the Tokamak Fusion Test Reactor

被引:61
作者
Ernst, DR
Bell, MG
Bell, RE
Bush, CE
Chang, Z
Fredrickson, E
Grisham, LR
Hill, KW
Jassby, DL
Mansfield, DK
McCune, DC
Park, HK
Ramsey, AT
Scott, SD
Strachan, JD
Synakowski, EJ
Taylor, G
Thompson, M
Wieland, RM
机构
[1] MIT, Dept Phys, Cambridge, MA 02139 USA
[2] Princeton Univ, Princeton Plasma Phys Lab, Princeton, NJ 08543 USA
关键词
D O I
10.1063/1.872771
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
A large "notch," or non-monotonic feature, appears in measured toroidal velocity profiles of the carbon impurity in the Tokamak Fusion Test Reactor (TFTR) [Plasma Phys. Controlled Fusion 26, 11 (1984)], centered near the radius of strongest ion temperature gradient. This is explained as a consequence of radial momentum transport dominated by anomalous diffusion together with parallel heat friction on the impurity ions arising from the hydrogenic neoclassical parallel heat flow. The toroidal velocity profile of the hydrogenic species is predicted to be monotonic, from measurements of the impurity toroidal velocity, consistent with the anomalous radial diffusion of toroidal momentum. This supports a neoclassical calculation of the radial electric field for near-balanced beam injection. In supershot plasmas [Phys. Rev. Lett. 58, 1004 (1987)], a well structure in the radial electric field profile is found in the enhanced confinement region. An associated shear layer separates the core, where the local confinement trends are favorable, from the degraded outer region. This provides a mechanism for the nonlinear coupling of the ion temperature gradient, ion thermal confinement, and the radial electric field, which may help explain the favorable core confinement trends of very high temperature supershot plasmas. (C) 1998 American Institute of Physics.
引用
收藏
页码:665 / 681
页数:17
相关论文
共 60 条
[1]  
[Anonymous], THESIS PRINCETON U
[2]  
Beer M. A., 1995, Gyrofluid models of turbulent transport in tokamaks
[3]  
BELL R, 1995, B AM PHYS SOC, V40, P1871
[4]   INFLUENCE OF SHEARED POLOIDAL ROTATION ON EDGE TURBULENCE [J].
BIGLARI, H ;
DIAMOND, PH ;
TERRY, PW .
PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1990, 2 (01) :1-4
[5]   HIGH-POWER NEUTRAL BEAM HEATING EXPERIMENTS ON TFTR WITH BALANCED AND UNBALANCED MOMENTUM INPUT [J].
BITTER, M ;
ARUNASALAM, V ;
BELL, MG ;
BOSCH, S ;
BRETZ, NL ;
BUDNY, R ;
BUSH, CE ;
DIMOCK, DL ;
DYLLA, HF ;
EFTHIMION, PC ;
FONCK, RJ ;
FREDRICKSON, E ;
FURTH, HP ;
GAMMEL, G ;
GOLDSTON, RJ ;
GREK, B ;
GRISHAM, LR ;
HAMMETT, G ;
HATTORI, K ;
HAWRYLUK, RJ ;
HENDEL, HW ;
HILL, KW ;
HINNOV, E ;
HIRAYAMA, T ;
HOWELL, RB ;
HULSE, RA ;
HSUAN, H ;
JAEHNIG, KP ;
JASSBY, D ;
JOBES, FC ;
JOHNSON, DW ;
JOHNSON, LC ;
KAITA, R ;
KAMPERSCHROER, R ;
KILPATRICK, SJ ;
KNIZE, RJ ;
KUGEL, H ;
LAMARCHE, PH ;
LEBLANC, B ;
LITTLE, R ;
MANOS, DM ;
MANSFIELD, DK ;
MCDERMOTT, S ;
MCGUIRE, K ;
MCNEILL, DH ;
MEADE, DM ;
MEDLEY, SS ;
MIKKELSEN, DR ;
MORRIS, W ;
MUELLER, D .
PLASMA PHYSICS AND CONTROLLED FUSION, 1987, 29 (10A) :1235-1245
[6]   ROLE OF THE RADIAL ELECTRIC-FIELD IN THE TRANSITION FROM L (LOW) MODE TO H (HIGH) MODE TO VH (VERY HIGH) MODE IN THE DIII-D TOKAMAK [J].
BURRELL, KH ;
DOYLE, EJ ;
GOHIL, P ;
GROEBNER, RJ ;
KIM, J ;
LAHAYE, RJ ;
LAO, LL ;
MOYER, RA ;
OSBORNE, TH ;
PEEBLES, WA ;
RETTIG, CL ;
RHODES, TH ;
THOMAS, DM .
PHYSICS OF PLASMAS, 1994, 1 (05) :1536-1544
[7]  
BUSH CE, 1992, P 16 EUR C CONTR F 1, P203
[8]   THEORY OF UBIQUITOUS MODE [J].
COPPI, B ;
PEGORARO, F .
NUCLEAR FUSION, 1977, 17 (05) :969-993
[9]   CURRENT-DRIVEN MODES IN 2-DIMENSIONAL PLASMA CONFIGURATIONS [J].
COPPI, B ;
REM, J .
PHYSICS OF FLUIDS, 1974, 17 (01) :184-192
[10]  
ERNST DR, 1997, THESIS MIT