Summary of experimental core turbulence characteristics in ohmic and electron cyclotron resonance heated discharges in T-10 tokamak plasmas

被引:84
|
作者
Vershkov, VA [1 ]
Shelukhin, DA [1 ]
Soldatov, SV [1 ]
Urazbaev, AO [1 ]
Grashin, SA [1 ]
Eliseev, LG [1 ]
Melnikov, AV [1 ]
机构
[1] IV Kurchatov Atom Energy Inst, Russian Res Ctr, Nucl Fus Inst, Moscow 123182, Russia
关键词
D O I
10.1088/0029-5515/45/10/S17
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
This report summarizes the results of experimental turbulence investigations carried out at T-10 for more than 10 years. The turbulence characteristics were investigated using correlation reflectometry, multipin Langmuir probe (MLP) and heavy ion beam probe diagnostics. The reflectometry capabilities were analysed using 2D full-wave simulations and verified by direct comparison using a MLP. The ohmic and electron cyclotron resonance heated discharges show the distinct transition from the core turbulence, having complex spectral structure, to the unstructured one in the scrape-off layer. The core turbulence includes 'broad band, quasi-coherent' features, arising due to the excitation of rational surfaces with high poloidal m-numbers, with a low frequency near zero and specific oscillations at 15-30 kHz. All experimentally measured properties of low frequency and high frequency quasi-coherent oscillations are in good agreement with predictions of linear theory for the ion temperature gradient/dissipative trapped electron mode instabilities. Significant local changes in the turbulence characteristics were observed at the edge velocity shear layer and in the core near q = 1 radius after switching off the electron cyclotron resonance heating (ECRH). The local decrease in the electron heat conductivity and decrease in the turbulence level could be evidence of the formation of an electron internal transport barrier. The dynamic behaviour of the core turbulence was also investigated for the case of fast edge cooling and the beginning phase of ECRH.
引用
收藏
页码:S203 / S226
页数:24
相关论文
共 40 条
  • [31] Time evolution of the ion temperature in the T-10 tokamak during simultaneous pellet injection and electron-cyclotron resonance heating
    Yu. V. Gott
    Yu. D. Pavlov
    A. A. Borshchagovskiĭ
    E. P. Gorbunov
    M. M. Dremin
    O. V. Ishevskiĭ
    A. Ya. Kislov
    S. V. Krylov
    V. V. Matveev
    V. V. Prut
    I. N. Roĭ
    D. V. Ryzhakov
    Yu. V. Skosyrev
    V. M. Trukhin
    A. V. Khramenkov
    V. V. Chistyakov
    Plasma Physics Reports, 2007, 33 : 969 - 973
  • [32] ECRH effect on the electric potential and turbulence in the TJ-II stellarator and T-10 tokamak plasmas
    Melnikov, A., V
    Krupnik, L., I
    Ascasibar, E.
    Cappa, A.
    Chmyga, A. A.
    Deshko, G. N.
    Drabinskij, M. A.
    Eliseev, L. G.
    Hidalgo, C.
    Khabanov, P. O.
    Khrebtov, S. M.
    Kharchev, N. K.
    Komarov, A. D.
    Kozachek, A. S.
    Lysenko, S. E.
    Molinero, A.
    de Pablos, J. L.
    Ufimtsev, M., V
    Zenin, V. N.
    PLASMA PHYSICS AND CONTROLLED FUSION, 2018, 60 (08)
  • [33] Time evolution of the ion temperature in the T-10 tokamak during simultaneous pellet injection and electron-cyclotron resonance heating
    Gott, Yu. V.
    Pavlov, Yu. D.
    Borshchagovskii, A. A.
    Gorbunov, E. P.
    Dremin, M. M.
    Ishevskii, O. V.
    Kislov, A. Ya.
    Krylov, S. V.
    Matveev, V. V.
    Prut, V. V.
    Roi, I. N.
    Ryzhakov, D. V.
    Skosyrev, Yu. V.
    Trukhin, V. M.
    Khramenkov, A. V.
    Chistyakov, V. V.
    PLASMA PHYSICS REPORTS, 2007, 33 (12) : 969 - 973
  • [34] Experimental verification of sawtooth control by energetic particles in ion cyclotron resonance heated JET tokamak plasmas
    Graves, J. P.
    Chapman, I. T.
    Coda, S.
    Johnson, T.
    Lennholm, M.
    Alper, B.
    de Baar, M.
    Crombe, K.
    Eriksson, L.-G.
    Felton, R.
    Howell, D.
    Kiptily, V.
    Koslowski, H. R.
    Mayoral, M.-L.
    Monakhov, I.
    Nunes, I.
    Pinches, S. D.
    NUCLEAR FUSION, 2010, 50 (05)
  • [35] INVESTIGATION OF THE 2ND-HARMONIC ELECTRON-CYCLOTRON CURRENT DRIVE EFFICIENCY ON THE T-10 TOKAMAK
    RAZUMOVA, KA
    ALIKAEV, VV
    DREMIN, MM
    ESIPCHUK, YV
    KISLOV, AY
    NOTKIN, GE
    PAVLOV, YD
    FOREST, CB
    LOHR, J
    LUCE, TC
    HARVEY, RW
    PHYSICS OF PLASMAS, 1994, 1 (05) : 1554 - 1559
  • [36] Observation of inward and outward particle convection in the core of electron cyclotron heated and current driven plasmas in the Tokamak a Configuration Variable
    Furno, I
    Weisen, H
    PHYSICS OF PLASMAS, 2003, 10 (06) : 2422 - 2428
  • [37] ELECTRON-CYCLOTRON CURRENT-DRIVE EXPERIMENTS IN A T-10 TOKAMAK - SUPERTHERMAL ELECTRON X-RAY-EMISSION
    ESIPCHUK, YV
    KIRNEVA, NA
    MARTYNOV, AA
    TRUKHIN, VM
    PLASMA PHYSICS REPORTS, 1995, 21 (07) : 543 - 549
  • [38] Edge characteristics and global confinement of electron cyclotron resonance heated plasmas in the TJ-II Stellarator
    Tabarés, FL
    Brañas, B
    García-Cortés, I
    Tafalla, D
    Estrada, T
    Tribaldos, V
    PLASMA PHYSICS AND CONTROLLED FUSION, 2001, 43 (08) : 1023 - 1037
  • [39] Reconstruction of superthermal electron velocity distribution function from electron cyclotron spectra at down-shifted frequencies in tokamak T-10
    Minashin, P. V.
    Kukushkin, A. B.
    Poznyak, V. I.
    EC-17 - 17TH JOINT WORKSHOP ON ELECTRON CYCLOTRON EMISSION AND ELECTRON CYCLOTRON RESONANCE HEATING, 2012, 32
  • [40] Study of core plasma rotation characteristics of RF-heated H-mode discharges on experimental advanced superconducting tokamak
    Lyu, B.
    Wang, F. D.
    Chen, J.
    Hu, R. J.
    Li, Y. Y.
    Fu, J.
    Zhang, H. M.
    Bitter, M.
    Hill, K. W.
    Shi, Y. J.
    Ye, M. Y.
    Wan, B. N.
    PHYSICS OF PLASMAS, 2020, 27 (02)