Discharge duration limits of contemporary tokamaks and stellarators

被引:3
|
作者
Kuteev, B. V. [1 ,2 ]
Sergeev, V. Yu. [3 ]
机构
[1] Natl Res Ctr, Kurchatov Inst, Moscow, Russia
[2] Natl Res Nucl Univ MEPhI, Moscow, Russia
[3] Peter Great St Petersburg Polytech Univ, St Petersburg, Russia
关键词
discharge duration limit; tokamak; stellarator;
D O I
10.1088/1741-4326/ab713e
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 realization of long-time discharges in magnetic confinement devices (MCDs), namely, in tokamaks and stellarators, is a key issue in the development of controlled fusion energy. Experiments demonstrate that the discharge duration achieved in contemporary MCDs is limited and the normal operation is terminated after 0.3 to 3600 s depending on plasma, discharge and device parameters. This paper is devoted to the analysis of physical mechanisms which may be responsible for the discharge duration limit in MCD operation. The impact of heat transfers to plasma facing components from the plasma, coolants and thermal radiation is evaluated and compared with the available experimental database. The critical temperature T-cr 2300 K of plasma facing components is considered as the key parameter that limits the discharge duration. The regimes of the first wall temperature growth governed by both the heat conductivity and heat capacity are identified experimentally and analytically. Heat removal from wetted areas by means of thermal surface radiation and linear heat transfer to the coolant is identified as the key physical mechanism that determines the boundary of time-limited discharges in MCDs. The principal role of localized wetted areas with a size of 0.2-0.6 m(2) is revealed for operation of contemporary devices. This means that in further development of fusion reactors major attention should be devoted to the organization of a more uniform and distributed heat exhaust. It is shown that the proposed semi-analytical approach explains the experimentally discovered trends in the MCD operation and may be used for the evaluation of the discharge duration limit of new facilities designed to obtain steady-state discharges.
引用
收藏
页数:6
相关论文
共 50 条
  • [31] Analytical modeling of equilibrium of strongly anisotropic plasma in tokamaks and stellarators
    Lepikhin, N. D.
    Pustovitov, V. D.
    [J]. PLASMA PHYSICS REPORTS, 2013, 39 (08) : 605 - 614
  • [32] Pellet Core Fueling in Tokamaks, Stellarators and Reversed Field Pinches
    Geulin, Eleonore
    Pegourie, Bernard
    [J]. PLASMA AND FUSION RESEARCH, 2022, 17
  • [33] Radial electric fields and global electrostatic microinstabilities in tokamaks and stellarators
    Villard, L
    Bottino, A
    Sauter, O
    Vaclavik, J
    [J]. PHYSICS OF PLASMAS, 2002, 9 (06) : 2684 - 2691
  • [34] Pellet Core Fueling in Tokamaks, Stellarators and Reversed Field Pinches
    Geulin, Eléonore
    Pégourié, Bernard
    [J]. Plasma and Fusion Research, 2022, 17
  • [35] DENSITY LIMITS IN TOKAMAKS
    TENDLER, M
    [J]. JOURNAL OF NUCLEAR MATERIALS, 1984, 128 (DEC) : 100 - 103
  • [36] Density limits in tokamaks
    Stacey, WM
    [J]. PHYSICS OF PLASMAS, 1997, 4 (04) : 1069 - 1079
  • [37] Assessment of radial transport induced by Alfvenic resonances in tokamaks and stellarators
    White, R. B.
    Duarte, V. N.
    [J]. PHYSICS OF PLASMAS, 2023, 30 (01)
  • [38] DENSITY LIMITS IN TOKAMAKS
    STAMBAUGH, RD
    BURRELL, KH
    GUEST, GE
    RAWLS, JM
    [J]. BULLETIN OF THE AMERICAN PHYSICAL SOCIETY, 1976, 21 (09): : 1178 - 1179
  • [39] Analytical modeling of equilibrium of strongly anisotropic plasma in tokamaks and stellarators
    N. D. Lepikhin
    V. D. Pustovitov
    [J]. Plasma Physics Reports, 2013, 39 : 605 - 614
  • [40] A COMPARISON OF EDGE TURBULENCE IN TOKAMAKS, STELLARATORS, AND REVERSED-FIELD PINCHES
    TSUI, HYW
    WOOTTON, AJ
    BELL, JD
    BENGSTON, RD
    DIEBOLD, D
    HARRIS, JH
    HERSHKOWITZ, N
    HIDALGO, C
    INGRAHAM, JC
    KILPATRICK, SJ
    LI, GX
    LIN, H
    MANOS, DM
    MEIER, MA
    MILLER, GM
    MUNSON, CP
    PEW, J
    PRAGER, SC
    RITZ, CP
    RUDYJ, A
    SCHOENBERG, KF
    SORENSEN, J
    TANAKA, T
    UCKAN, T
    WEBER, PG
    [J]. PHYSICS OF FLUIDS B-PLASMA PHYSICS, 1993, 5 (07): : 2491 - 2497