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Extension of the energetic particle transport kick model in TRANSP to multiple fast ion species

  • Līga Avotiņa (Member of the Working Group)
  • , Larisa Baumane (Member of the Working Group)
  • , Mihails Haļitovs (Member of the Working Group)
  • , Juris Jansons (Member of the Working Group)
  • , Gunta Ķizāne (Member of the Working Group)
  • , Andris Leščinskis (Member of the Working Group)
  • , Broņislavs Leščinskis (Member of the Working Group)
  • , Elīna Pajuste (Member of the Working Group)
  • , Aigars Vītiņš (Member of the Working Group)
  • , Artūrs Zariņš (Member of the Working Group)
  • , M. Podestà
  • , JET Contributors

    Research output: Contribution to journalArticlepeer-review

    11 Citations (Scopus)

    Abstract

    Alfvénic instabilities (AEs) are well known to cause enhanced transport of energetic particles (EPs) in fusion devices. Most studies until now have focused on characterizing and understanding AE stability in single-species plasmas heated by neutral beams (NB), where deuterium is typically used as both main plasma species and NB fuel. As the fusion community moves toward fusion reactors that target burning plasma conditions, such as ITER, the single-species picture breaks down. Burning plasmas, which will use a mix of deuterium and tritium (DT) as main fuel, also feature the presence of several supra-thermal fusion products such as alpha particles, protons, helium isotopes and high-energy tritium ions. This work presents the extension of the EP transport kick model implemented in the TRANSP time-dependent tokamak transport code to study the combined effect of multiple EP species on AE stability and, in turn, the response of different EP species to plasma instabilities in terms of their redistribution and losses. Further validation of the enhanced model is planned based on experimental results expected from the JET DT campaign scheduled for 2021, in preparation for ITER plasmas and beyond.

    Original languageEnglish
    Article number126047
    JournalNuclear Fusion
    Volume62
    Issue number12
    DOIs
    Publication statusPublished - Dec 2022

    UN SDGs

    This output contributes to the following UN Sustainable Development Goals (SDGs)

    1. SDG 7 - Affordable and Clean Energy
      SDG 7 Affordable and Clean Energy

    OECD Field of Science

    • 1.3 Physical Sciences

    Keywords

    • Alfvenic instabilities
    • energetic particle transport
    • JET tokamak
    • kick model
    • TRANSP

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