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Electron acceleration in a JET disruption simulation

  • JET Contributors
  • Aix-Marseille Université
  • Max-Planck-Institut für Plasmaphysik
  • Culham Science Centre
  • Research Centre Julich
  • Institute for Plasma Research
  • Instituto Superior Técnico
  • Culham Centre for Fusion Energy
  • Queen's University of Belfast
  • University of Helsinki
  • CEA Cadarache
  • VTT Technical Research Centre of Finland Ltd
  • National Institutes for Quantum and Radiological Science and Technology
  • University of Naples Federico II
  • Universidad Nacional de Educación a Distancia
  • IFP-CNR
  • ITER
  • Consorzio Rfx
  • Kurchatov Institute
  • Università di Napoli Parthenope
  • ENEA Centro Ricerche Frascati
  • Troitsk Insitute of Innovating and Thermonuclear Research (TRINITI)
  • Uppsala University
  • National Institute for Cryogenics and Isotopic Technology
  • Università degli Studi di Catania
  • Fusion for Energy
  • National Institute for Fusion Science
  • Massachusetts Institute of Technology
  • Aalto University
  • University of Latvia (LU)
  • Imperial College London
  • Laboratorio Nacional de Fusión
  • ENAC-IIC-GEL
  • University of Oxford
  • EUROfusion Programme Management Unit
  • Oak Ridge National Laboratory
  • Institute of Meteorology and Climate Research
  • University of York
  • KTH Royal Institute of Technology
  • Maritime University of Szczecin
  • Institute for Nuclear Physics
  • Institute of Plasma Physics AS CR
  • Università di Trento
  • Wigner Research Centre for Physics
  • Comenius University
  • Lviv Polytechnic National University
  • University of Milano-Bicocca
  • National Institute for Optoelectronics
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  • Nuclear Research Centre
  • National Centre for Nuclear Research
  • Princeton Plasma Physics Laboratory
  • Universitá di Cagliari
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  • Soltan Institute for Nuclear Studies
  • FOM Institute DIFFER 'Dutch Institute for Fundamental Energy Research'
  • Plasma and Radiation Physics (INFLPR)
  • Ghent University
  • Department of Biochemistry and Molecular and Structural Biology
  • Nancy Université
  • Institute of Plasma Physics, Chinese Academy of Sciences
  • Center for Energy Research
  • Koninklijke Militaire School - Ecole Royale Militaire
  • Horia Hulubei National Institute of Physics and Nuclear Engineering
  • Chalmers University of Technology
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  • Universidad Politécnica de Madrid
  • University of Campania L. Vanvitelli
  • Warsaw University of Technology
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  • University of Seville
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  • Ioffe Institute
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  • University of Innsbruck
  • University of Toyama
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  • National Technical University of Athens
  • Tuscia University
  • Technical University of Denmark
  • Korea Advanced Institute of Science and Technology
  • Seoul National University
  • University College Cork
  • Vienna University of Technology
  • Opole University
  • Daegu University
  • National Fusion Research Institute
  • Dublin City University
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  • Arizona State University
  • Complutense University
  • University of Basel
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  • University of California
  • University of São Paulo
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  • HRS Fusion
  • Politecnico di Torino
  • Università di Cassino
  • Medical School of UESTC

Research output: Contribution to journalArticlepeer-review

Abstract

Runaways are suprathermal electrons having sufficiently high energy to be continuously accelerated up to tens of MeV by a driving electric field (Connor and Hastie 1975 Nucl. Fusion 15 415). Highly energetic runaway electron (RE) beams capable of damaging the tokamak first wall can be observed after a plasma disruption (Reux et al 2015 Nucl. Fusion 55 129501). Therefore, it is of primary importance to fully understand their generation mechanisms in order to design mitigation systems able to guarantee safe tokamak operations. In a previous work, Sommariva et al (2018 Nucl. Fusion 58), a test particle tracker was introduced in the JOREK 3D non-linear MHD code and used for studying the electron confinement during a simulated JET-like disruption. It was found in Sommariva et al (2018 Nucl. Fusion 58) that relativistic electrons are not completely deconfined by the stochastic magnetic field taking place during the disruption thermal quench (TQ). This is due to the reformation of closed magnetic surfaces at the beginning of the current quench (CQ). This result was obtained neglecting the inductive electric field in order to avoid the unrealistic particle acceleration which otherwise would have happened due to the absence of collision effects. The present paper extends (Sommariva et al 2018 Nucl. Fusion 58) analysing test electron dynamics in the same simulated JET-like disruption using the complete electric field. For doing so, a simplified collision model is introduced in the particle tracker guiding center equations. We show that electrons at thermal energies can become RE during or promptly after the TQ due to a combination of three phenomena: a first REs acceleration during the TQ due to the presence of a complex MHD-induced electric field, particle reconfinement caused by the fast reformation of closed magnetic surfaces after the TQ and a secondary acceleration induced by the CQ electric field.

Original languageEnglish
Article number106022
JournalNuclear Fusion
Volume58
Issue number10
DOIs
Publication statusPublished - 9 Aug 2018
Externally publishedYes

Keywords

  • electron acceleration
  • magnetohydrodynamics
  • particle tracking
  • plasma disruptions
  • runaway electrons

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