Neoclassical tearing modes

被引:112
|
作者
Buttery, RJ [1 ]
Günter, S
Giruzzi, G
Hender, TC
Howell, D
Huysmans, G
La Haye, RJ
Maraschek, M
Reimerdes, H
Sauter, O
Warrick, CD
Wilson, HR
Zohm, H
机构
[1] UKAEA Euratom Fus Assoc, Culham Sci Ctr, Abingdon OX14 3DB, Oxon, England
[2] Max Planck Inst Plasma Phys, EURATOM Assoc, Garching, Germany
[3] CEA, Assoc EURATOM CEA Fus, Cadarache, France
[4] Gen Atom Co, San Diego, CA USA
[5] Assoc EURATOM Switzerland, CRPP, Lausanne, Switzerland
关键词
D O I
10.1088/0741-3335/42/12B/306
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
Neoclassical tearing modes are one of the most serious concerns for operation on a next-step tokamak device. The modes occur on present tokamaks at normalized pressure (beta (N)) values comparable to those envisaged For baseline scenarios in future devices, such as ITER-FEAT. Further, empirical scalings based on data from many of the present machines point to much lower thresholds on a larger device. However, physics-based models indicate an important role for the seed island mechanisms, which may in fact give rise to increased stability on larger devices-i.e. if the seed island width (required to trigger the NTM) falls below the critical levels required. Fits based on these models suggest this is the case, bur are too badly constrained at present to make reliable predictions, and the physics is complex, making quantitative theoretical calculation difficult. Further experiments are required to examine the scaling of the seed, as well as to identify the role and relative sizes of the stabilizing terms that set the critical size for mode growth. In the event that the modes are unavoidable, promising feedback stabilization techniques are being developed with the use of localized RF current drive to change the stability properties of the plasma. Further work is needed to demonstrate sustained access to higher beta (N) and provide data to refine models. This paper reviews the underlying physics and key issues, commenting on the present status of understanding and further work required.
引用
收藏
页码:B61 / B73
页数:13
相关论文
共 50 条
  • [41] Model for current drive stabilization of neoclassical tearing modes
    Woodby, Jennifer
    Schuster, Eugenio
    Bateman, Glenn
    Kritz, Arnold H.
    PHYSICS OF PLASMAS, 2008, 15 (09)
  • [42] On the stabilization of neoclassical tearing modes by electron cyclotron waves
    Ramponi, G
    Lazzaro, E
    Nowak, S
    PHYSICS OF PLASMAS, 1999, 6 (09) : 3561 - 3570
  • [43] Nonlinear dynamics of multiple neoclassical tearing modes in tokamaks
    Chandra, D.
    Agullo, O.
    Benkadda, S.
    Garbet, X.
    Sen, A.
    PHYSICS OF PLASMAS, 2013, 20 (04)
  • [44] Curvature effect on tearing modes in presence of neoclassical friction
    Maget, Patrick
    Mellet, Nicolas
    Luetjens, Hinrich
    Meshcheriakov, Dmytro
    Garbet, Xavier
    PHYSICS OF PLASMAS, 2013, 20 (11)
  • [45] Interaction of neoclassical tearing modes with trapped fast ions
    Marchenko, VS
    Lutsenko, VV
    PHYSICS OF PLASMAS, 2001, 8 (11) : 4834 - 4838
  • [46] Heuristic closures for numerical simulations of neoclassical tearing modes
    Gianakon, TA
    Kruger, SE
    Hegna, CC
    PHYSICS OF PLASMAS, 2002, 9 (02) : 536 - 547
  • [47] Analysis of the structure of neoclassical tearing modes in ASDEX Upgrade
    Meskat, JP
    Zohm, H
    Gantenbein, G
    Günter, S
    Maraschek, M
    Suttrop, W
    Yu, Q
    PLASMA PHYSICS AND CONTROLLED FUSION, 2001, 43 (10) : 1325 - 1332
  • [48] β scaling for the onset of neoclassical tearing modes at ASDEX Upgrade
    Gunter, S
    Gude, A
    Maraschek, M
    Sesnic, S
    Zohm, H
    NUCLEAR FUSION, 1998, 38 (10) : 1431 - 1434
  • [49] On the requirements to control neoclassical tearing modes in burning plasmas
    Sauter, O.
    Henderson, M. A.
    Ramponi, G.
    Zohm, H.
    Zucca, C.
    PLASMA PHYSICS AND CONTROLLED FUSION, 2010, 52 (02)
  • [50] Frequency chirping of neoclassical tearing modes by energetic ions
    Cai, Huishan
    NUCLEAR FUSION, 2021, 61 (12)