Radio-frequency sheaths physics: Experimental characterization on Tore Supra and related self-consistent modeling

被引:49
|
作者
Jacquot, Jonathan [1 ]
Milanesio, Daniele [2 ]
Colas, Laurent [1 ]
Corre, Yann [1 ]
Goniche, Marc [1 ]
Gunn, Jamie [1 ]
Heuraux, Stephane [3 ]
Kubic, Martin [1 ]
机构
[1] CEA, IRFM, F-13108 St Paul Les Durance, France
[2] Politecn Torino, Dept Elect, Turin, Italy
[3] U Lorraine P2M, Fac Sci, IJL UMR 7198, F-54506 Vandoeuvre Les Nancy, France
关键词
ANTENNA-PLASMA INTERACTIONS; FARADAY SCREEN; ICRH; CURRENTS; GENERATION; RANGE; SOL;
D O I
10.1063/1.4884778
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
During the 2011 experimental campaign, one of the three ion cyclotron resonance heating (ICRH) antennas in the Tore Supra tokamak was equipped with a new type of Faraday screen (FS). The new design aimed at minimizing the integrated parallel electric field over long field lines as well as increasing the heat exhaust capability of the actively cooled screen. It proved to be inefficient for attenuating the radio-frequency (RF)-sheaths on the screen itself on the contrary to the heat exhaust concept that allowed operation despite higher heat fluxes on the antenna. In parallel, a new approach has been proposed to model self-consistently RF sheaths: the SSWICH (Self-consistent Sheaths and Waves for IC Heating) code. Simulations results from SSWICH coupled with the TOPICA antenna code were able to reproduce the difference between the two FS designs and part of the spatial pattern of heat loads and Langmuir probe floating potential. The poloidal pattern is a reliable result that mainly depends on the electrical design of the antenna while the radial pattern is on the contrary highly sensitive to loosely constrained parameters such as perpendicular conductivity that generates a DC current circulation from the private region inside the antenna limiters to the free scrape off layer outside these limiters. Moreover, the cantilevered bars seem to be the element in the screen design that enhanced the plasma potential. (C) 2014 AIP Publishing LLC.
引用
收藏
页数:10
相关论文
共 50 条
  • [1] Radio-Frequency Sheaths Physics: Experimental Characterization on Tore Supra and Related Self-Consistent Modeling
    Jacquot, Jonathan
    Milanesio, Daniele
    Colas, Laurent
    Corre, Yann
    Goniche, Marc
    Gunn, Jamie
    Heuraux, Stephane
    Kubic, Martin
    RADIOFREQUENCY POWER IN PLASMAS, 2014, 1580 : 97 - 104
  • [2] Self-consistent modeling of radio-frequency plasma generation in stellarators
    Moiseenko, V. E.
    Stadnik, Yu. S.
    Lysoivan, A. I.
    Korovin, V. B.
    PLASMA PHYSICS REPORTS, 2013, 39 (11) : 873 - 881
  • [3] Self-consistent modeling of radio-frequency plasma generation in stellarators
    V. E. Moiseenko
    Yu. S. Stadnik
    A. I. Lysoivan
    V. B. Korovin
    Plasma Physics Reports, 2013, 39 : 873 - 881
  • [4] SELF-CONSISTENT FLUID MODELING OF RADIO-FREQUENCY DISCHARGES IN 2 DIMENSIONS
    DALVIE, M
    SURENDRA, M
    SELWYN, GS
    APPLIED PHYSICS LETTERS, 1993, 62 (24) : 3207 - 3209
  • [5] TORE SUPRA FAST RECIPROCATING RADIO-FREQUENCY PROBE
    THOMAS, CE
    HARRIS, JH
    HASTE, GR
    KWON, M
    GOULDING, RH
    HOFFMAN, DJ
    SAOUTIC, B
    BECOULET, A
    FRABOULET, D
    BEAUMONT, B
    KUUS, H
    LADURELLE, L
    PASCAL, JY
    REVIEW OF SCIENTIFIC INSTRUMENTS, 1995, 66 (02): : 1210 - 1215
  • [6] RADIO-FREQUENCY SHEATHS - MODELING AND EXPERIMENT
    HORWITZ, CM
    PUZZER, T
    SMITH, AM
    JOURNAL OF VACUUM SCIENCE & TECHNOLOGY A-VACUUM SURFACES AND FILMS, 1990, 8 (04): : 3123 - 3131
  • [7] SELF-CONSISTENT STOCHASTIC ELECTRON HEATING IN RADIO-FREQUENCY DISCHARGES
    GOEDDE, CG
    LICHTENBERG, AJ
    LIEBERMAN, MA
    JOURNAL OF APPLIED PHYSICS, 1988, 64 (09) : 4375 - 4383
  • [8] Resonance Cone Interaction With a Self-Consistent Radio-Frequency Sheath
    Myra, J. R.
    D'Ippolito, D. A.
    PHYSICAL REVIEW LETTERS, 2008, 101 (19)
  • [9] Self-consistent kinetic modeling of low-pressure inductively coupled radio-frequency discharges
    Yang, Y
    Wu, HM
    JOURNAL OF APPLIED PHYSICS, 1996, 80 (07) : 3699 - 3704