Investigation of geodesic acoustic mode oscillations in the T-10 tokamak

被引:196
作者
Melnikov, A. V. [1 ]
Vershkov, V. A.
Eliseev, L. G.
Grashin, S. A.
Gudozhnik, A. V.
Krupnik, L. I.
Lysenko, S. E.
Mavrin, V. A.
Perfilov, S. V.
Shelukhin, D. A.
Soldatov, S. V.
Ufimtsev, M. V.
Urazbaev, A. O.
Van Oost, G.
Zimeleva, L. G.
机构
[1] IV Kurchatov Atom Energy Inst, RRC, Nucl Fus Inst, Moscow 123182, Russia
[2] Kharkov Phys & Technol Inst, NSC, Inst Plasma Phys, UA-310108 Kharkov, Ukraine
[3] Moscow MV Lomonosov State Univ, Dept Computat Math & Cybernet, Moscow, Russia
[4] Univ Ghent, B-9000 Ghent, Belgium
关键词
D O I
10.1088/0741-3335/48/4/S07
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
Geodesic acoustic modes (GAMs) were investigated on the T-10 tokamak using heavy ion beam probe, correlation reflectometry and multipin Langmuir probe diagnostics. Regimes with Ohmic heating and with on- and off-axis ECRH were studied. It was shown that GAMs are mainly the potential oscillations. Typically, the power spectrum of the oscillations has the form of a solitary quasi-monochromatic peak with the contrast range 3-5. They are the manifestation of the torsional plasma oscillations with poloidal wavenumber m = 0, called zonal flows. The frequency of GAMs changes in the region of observation and decreases towards the plasma edge. After ECRH switch-on, the frequency increases, correlating with growth in the electron temperature T-e. The frequency of the GAMs depends on the local T-e as f(GAM) similar to c(s)/R similar to T-e(1/2), which is consistent with a theoretical scaling for GAM, where c(s) is the sound speed within a factor of unity. The GAMs on T-10 are found to have density limit, some magnetic components and an intermittent character. They tend to be more excited near low-q magnetic surfaces.
引用
收藏
页码:S87 / S110
页数:24
相关论文
共 50 条
  • [41] The direct measurements of the plasma electric potential by heavy ion beam probe on T-10 tokamak - Does T-10 obtain the H-mode?
    Melnikov, AV
    Eliseev, LG
    CZECHOSLOVAK JOURNAL OF PHYSICS, 1999, 49 : 35 - 40
  • [42] ECE AND ECH APPLICATION FOR INVESTIGATION OF PLASMA SELF-ORGANIZATION AT T-10 TOKAMAK
    Poznyak, V. I.
    Gridina, T. V.
    Pitersky, V. V.
    Ploskirev, G. N.
    Ploskirev, E. G.
    Valencia, O.
    EC-17 - 17TH JOINT WORKSHOP ON ELECTRON CYCLOTRON EMISSION AND ELECTRON CYCLOTRON RESONANCE HEATING, 2012, 32
  • [43] Movable magnetic probe system in the T-10 tokamak
    Savrukhin, P. V.
    Shestakov, E. A.
    REVIEW OF SCIENTIFIC INSTRUMENTS, 2012, 83 (01)
  • [44] Plasma structures and transport in the SOL of the T-10 tokamak
    Kirnev, GS
    Budaev, VP
    Grashin, SA
    Gerasimov, EV
    Khimchenko, LN
    JOURNAL OF NUCLEAR MATERIALS, 2005, 337 (1-3) : 352 - 356
  • [45] Investigation of the accumulation of deuterium in carbon-deuterium films from the T-10 tokamak
    L. S. Danelyan
    V. V. Zatekin
    B. N. Kolbasov
    V. S. Kulikauskas
    P. V. Romanov
    Journal of Surface Investigation. X-ray, Synchrotron and Neutron Techniques, 2009, 3 : 242 - 245
  • [46] Li dust injection experiments into T-10 tokamak
    Skokov, V. G.
    Sergeev, V. Yu.
    Bykov, A. S.
    Krylov, S. V.
    Kuteev, B. V.
    Timokhin, V. M.
    Wagner, F.
    FUSION ENGINEERING AND DESIGN, 2014, 89 (12) : 2816 - 2821
  • [47] Intermittent transport in the plasma periphery of the T-10 tokamak
    Kirnev, GS
    Budaev, VP
    Grashin, SA
    Gerasimov, EV
    Khimchenko, LN
    PLASMA PHYSICS AND CONTROLLED FUSION, 2004, 46 (04) : 621 - 637
  • [48] Molecular emission in the edge plasma of T-10 tokamak
    Zimin, A. M.
    Krupin, V. A.
    Troynov, V. I.
    Klyuchnikov, L. A.
    PHYSICS OF ATOMIC NUCLEI, 2015, 78 (12) : 1319 - 1325
  • [49] Modeling of Tungsten Behavior in Plasma of T-10 Tokamak
    I. A. Zemtsov
    V. A. Krupin
    M. R. Nurgaliev
    L. A. Klyuchnikov
    A. R. Nemets
    A. Yu. Dnestrovskij
    D. V. Sarychev
    Physics of Atomic Nuclei, 2018, 81 : 1042 - 1047
  • [50] Simulation of plasma density evolution in the T-10 tokamak
    Yu. N. Dnestrovskij
    V. A. Vershkov
    A. V. Danilov
    A. Yu. Dnestrovskij
    V. N. Zenin
    S. E. Lysenko
    A. V. Melnikov
    D. A. Shelukhin
    G. F. Subbotin
    S. V. Cherkasov
    Plasma Physics Reports, 2016, 42 : 191 - 209