Runaway dynamics in reactor-scale spherical tokamak disruptions

被引:5
|
作者
Berger, Esmee [1 ]
Pusztai, Istvan [1 ]
Newton, Sarah L. [2 ]
Hoppe, Mathias [3 ]
Vallhagen, Oskar [1 ]
Fil, Alexandre [2 ]
Fulop, Tunde [1 ]
机构
[1] Chalmers Univ Technol, Dept Phys, SE-41296 Gothenburg, Sweden
[2] Culham Ctr Fus Energy, Abingdon OX14 3DB, Oxon, England
[3] Ecole Polytech Fed Lausanne, Swiss Plasma Ctr, CH-1015 Lausanne, Switzerland
基金
英国工程与自然科学研究理事会;
关键词
fusion plasma; runaway electrons; ELECTRON;
D O I
10.1017/S0022377822001209
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
Understanding generation and mitigation of runaway electrons in disruptions is important for the safe operation of future tokamaks. In this paper we investigate the runaway dynamics in reactor-scale spherical tokamaks, focusing on a compact nominal design with a plasma current of 21 megaamperes (MA), 1.8 T magnetic field on axis and major radius of approximately 3 m. We study both the severity of runaway generation during unmitigated disruptions, and the effect that typical mitigation schemes based on massive material injection have on runaway production. The study is conducted using the numerical framework dream (Disruption Runaway Electron Analysis Model). We find that, in many cases, mitigation strategies are necessary to prevent the runaway current from reaching multi-MA levels. Our results indicate that, with a suitably chosen deuterium-neon mixture for mitigation, it is possible to achieve a tolerable runaway current and ohmic current evolution. However, this does not account for the runaway source due to wall activation, which has been found to severely limit successful mitigation at conventional aspect ratios, but whose definition requires a more complete wall specification. Furthermore, the majority of the thermal energy loss is found to happen through radial transport rather than radiation, which poses a risk of unacceptable localised heat loads.
引用
收藏
页数:20
相关论文
共 50 条
  • [41] Simulation of runaway electron generation and diffusion during major disruptions in the HL-2A tokamak
    Li, Yanli
    Sun, Jizhong
    Zhang, Yipo
    Sang, Chaofeng
    Wu, Na
    Wang, Dezhen
    FUSION ENGINEERING AND DESIGN, 2014, 89 (7-8) : 1019 - 1023
  • [42] Liquid lithium divertor system in a spherical tokamak reactor
    Nagayama, Yoshio
    IEEJ Transactions on Fundamentals and Materials, 2009, 129 (09) : 580 - 584
  • [43] Overview of damage to beryllium limiters by unmitigated disruptions and runaway electrons in the JET tokamak with metal walls
    Jepu, I.
    Widdowson, A.
    Matthews, G. F.
    Coad, J. P.
    Likonen, J.
    Brezinsek, S.
    Rubel, M.
    Pintsuk, G.
    Petersson, P.
    Fortuna-Zalesna, E.
    Grzonka, J.
    Porosnicu, C.
    Dinca, P.
    Pompilian, O.
    Butoi, B.
    Moga, S. G.
    Silburn, S.
    Kuksenko, S.
    Alves, E.
    Catarino, N.
    Pitts, R. A.
    Chen, L.
    Ratynskaia, S.
    NUCLEAR FUSION, 2024, 64 (10)
  • [44] Integrated Particle- and Reactor-Scale Simulation of Pine Pyrolysis in a Fluidized Bed
    Pecha, M. Brennan
    Ramirez, Emilio
    Wiggins, Gavin M.
    Carpenter, Daniel
    Kappes, Branden
    Daw, Stuart
    Ciesielski, Peter N.
    ENERGY & FUELS, 2018, 32 (10) : 10683 - 10694
  • [45] Disruption runaway electron generation and mitigation in the Spherical Tokamak for Energy Production (STEP)
    Fil, A.
    Henden, L.
    Newton, S.
    Hoppe, M.
    Vallhagen, O.
    NUCLEAR FUSION, 2024, 64 (10)
  • [46] Dynamics of high energy runaway electrons in the Frascati Tokamak Upgrade
    Esposito, B
    Martín-Solís, JR
    Poli, FM
    Mier, JA
    Sánchez, R
    Panaccione, L
    PHYSICS OF PLASMAS, 2003, 10 (06) : 2350 - 2360
  • [47] Reactor-scale cultivation of the hyperthermophilic methanarchaeon Methanococcus jannaschii to high cell densities
    Mukhopadhyay, B
    Johnson, EF
    Wolfe, RS
    APPLIED AND ENVIRONMENTAL MICROBIOLOGY, 1999, 65 (11) : 5059 - 5065
  • [48] Runaway electron dynamics in tokamak plasmas with high impurity content
    Martin-Solis, J. R.
    Loarte, A.
    Lehnen, M.
    PHYSICS OF PLASMAS, 2015, 22 (09)
  • [49] Effect of plasma elongation on current dynamics during tokamak disruptions
    Fulop, T.
    Helander, P.
    Vallhagen, O.
    Embreus, O.
    Hesslow, L.
    Svensson, P.
    Creely, A. J.
    Howard, N. T.
    Rodriguez-Fernandez, P.
    JOURNAL OF PLASMA PHYSICS, 2020, 86 (01)
  • [50] Investigating nonlinear magnetohydrodynamics in an optimized, reactor-scale quasi-axisymmetric stellarator
    Wright, A. M.
    Ferraro, N. M.
    PHYSICS OF PLASMAS, 2024, 31 (08)