Internal transport barrier in tokamak and helical plasmas

被引:93
|
作者
Ida, K. [1 ,2 ]
Fujita, T. [3 ]
机构
[1] Natl Inst Fus Sci, Toki, Gifu 5095292, Japan
[2] Grad Univ Adv Studies, 322-6 Oroshi, Toki, Gifu 5095292, Japan
[3] Nagoya Univ, Grad Sch Engn, Nagoya, Aichi 4648603, Japan
关键词
internal transport barrier; ITB; toroidal plasma; REVERSED MAGNETIC SHEAR; RADIAL ELECTRIC-FIELD; TOROIDAL-MOMENTUM-TRANSPORT; BOOTSTRAP CURRENT FRACTION; STEADY-STATE OPERATION; REAL-TIME CONTROL; H-MODE REGIME; IMPROVED CONFINEMENT; DIII-D; IMPURITY TRANSPORT;
D O I
10.1088/1361-6587/aa9b03
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
The differences and similarities between the internal transport barriers (ITBs) of tokamak and helical plasmas are reviewed. By comparing the characteristics of the ITBs in tokamak and helical plasmas, the mechanisms of the physics for the formation and dynamics of the ITB are clarified. The ITB is defined as the appearance of discontinuity of temperature, flow velocity, or density gradient in the radius. From the radial profiles of temperature, flow velocity, and density the ITB is characterized by the three parameters of normalized temperature gradient, R/L-T, the location, rho(ITB), and the width, W/a, and can be expressed by 'weak' ITB (small R/L-T) or 'strong' (large R/L-T), 'small' ITB (small rho(ITB)) or 'large' ITB (large rho(ITB)), and 'narrow' (small W/a) or 'wide' (large W/a). Three key physics elements for the ITB formation, radial electric field shear, magnetic shear, and rational surface (and/or magnetic island) are described. The characteristics of electron and ion heat transport and electron and impurity transport are reviewed. There are significant differences in ion heat transport and electron heat transport. The dynamics of ITB formation and termination is also discussed. The emergence of the location of the ITB is sometimes far inside the ITB foot in the steady-state phase and the ITB region shows radial propagation during the formation of the ITB. The non-diffusive terms in momentum transport and impurity transport become more dominant in the plasma with the ITB. The reversal of the sign of non-diffusive terms in momentum transport and impurity transport associated with the formation of the ITB reported in helical plasma is described. Non-local transport plays an important role in determining the radial profile of temperature and density. The spontaneous change in temperature curvature (second radial derivative of temperature) in the ITB region is described. In addition, the key parameters of the control of the ITB and future prospects are discussed.
引用
收藏
页数:38
相关论文
共 50 条
  • [1] Internal transport barrier simulation with pellet injection in tokamak and helical reactor plasmas
    Higashiyama, Y.
    Yamazaki, K.
    Garcia, J.
    Arimoto, H.
    Shoji, T.
    11TH IAEA TECHNICAL MEETING ON H-MODE PHYSICS AND TRANSPORT BARRIERS, 2008, 123
  • [2] Physics of internal transport barrier of toroidal helical plasmas
    Itoh, K.
    Toda, S.
    Fujisawa, A.
    Itoh, S. -I.
    Yagi, M.
    Fukuyama, A.
    Diamond, P. H.
    Ida, K.
    PHYSICS OF PLASMAS, 2007, 14 (02)
  • [3] Study of internal transport barrier triggering mechanism in tokamak plasmas
    Dong, JQ
    Mou, ZZ
    Long, YX
    Mahajan, SM
    PHYSICS OF PLASMAS, 2004, 11 (12) : 5673 - 5679
  • [4] Minimum energy state of tokamak plasmas with an internal transport barrier
    Tamano, T
    Katanuma, I
    PLASMA PHYSICS AND CONTROLLED FUSION, 2002, 44 : A307 - A312
  • [5] Impact of avalanche type of transport on internal transport barrier formation in tokamak plasmas
    F. Kin
    K. Itoh
    T. Bando
    K. Shinohara
    N. Oyama
    A. Terakado
    M. Yoshida
    S. Sumida
    Scientific Reports, 13
  • [6] Impact of avalanche type of transport on internal transport barrier formation in tokamak plasmas
    Kin, F.
    Itoh, K.
    Bando, T.
    Shinohara, K.
    Oyama, N.
    Terakado, A.
    Yoshida, M.
    Sumida, S.
    SCIENTIFIC REPORTS, 2023, 13 (01)
  • [7] A simple model for internal transport barrier induced by fishbone in tokamak plasmas
    Liu, Zhaoyang
    Fu, Guoyong
    JOURNAL OF PLASMA PHYSICS, 2023, 89 (06)
  • [8] Computational images of internal-transport-barrier oscillations in tokamak plasmas
    Bizarro, Joao P. S.
    Litaudon, Xavier L.
    Tala, Tuomas J. J.
    IEEE TRANSACTIONS ON PLASMA SCIENCE, 2008, 36 (04) : 1090 - 1091
  • [9] Internal transport barriers in tokamak plasmas
    Wolf, RC
    PLASMA PHYSICS AND CONTROLLED FUSION, 2003, 45 (01) : R1 - R91
  • [10] Heat and momentum transport of ion internal transport barrier plasmas on the Large Helical Device
    Nagaoka, K.
    Ida, K.
    Yoshinuma, M.
    Takeiri, Y.
    Yokoyama, M.
    Morita, S.
    Tanaka, K.
    Ido, T.
    Shimizu, A.
    Tamura, N.
    Funaba, H.
    Murakami, S.
    Goto, M.
    Takahashi, H.
    Suzuki, C.
    Suzuki, Y.
    Ikeda, K.
    Osakabe, M.
    Tsumori, K.
    Nakano, H.
    Kaneko, O.
    Yamada, H.
    NUCLEAR FUSION, 2011, 51 (08)