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Impurity study in the dimensionless and dimensional isotope identity experiment between JET Deuterium and Tritium L-mode plasmas

  • JET Contributors
  • , EUROfusion Tokamak Exploitation Teamb
  • Institute of Plasma Physics and Laser Microfusion
  • CEA Cadarache
  • Max-Planck-Institut für Plasmaphysik
  • ENEA Centro Ricerche Frascati
  • VTT Technical Research Centre of Finland Ltd
  • Culham Science Centre
  • ENAC-IIC-GEL
  • University of Padova
  • Institute of Plasma Physics AS CR
  • Graz University of Technology
  • Aalto University
  • Ev-K2-CNR Committee
  • Ghent University
  • National Technical University of Athens
  • Uppsala University
  • Aix-Marseille Université
  • Consorzio CREATE
  • Centre for Energy Research
  • University of Milano-Bicocca
  • University of Seville
  • Universitá di Cagliari
  • Laboratorio Nacional de Fusión
  • KTH Royal Institute of Technology
  • Politecnico di Torino
  • Università degli Studi di Catania
  • Koninklijke Militaire School - Ecole Royale Militaire
  • Research Centre Julich
  • Durham University
  • Instituto Superior Técnico
  • Technical University of Eindhoven
  • Tuscia University
  • Technical University of Denmark
  • University of Rome “Tor Vergata”
  • Plasma and Radiation Physics (INFLPR)
  • ITER
  • Culham Centre for Fusion Energy
  • Lithuanian Energy Institute
  • University of California, San Diego
  • Plasma Science and Fusion Center
  • Heinrich Heine University Düsseldorf
  • Univ.́ Henri Poincaré
  • Universidad Nacional de Educación a Distancia
  • University of Latvia (LU)
  • Institute of Meteorology and Climate Research
  • General Atomics
  • Comenius University
  • Princeton Plasma Physics Laboratory
  • FOM Institute DIFFER 'Dutch Institute for Fundamental Energy Research'
  • EUROfusion Programme Management Unit
  • Ruđer Bošković Institute
  • The University of Texas at Austin
  • KU Leuven
  • Warsaw University of Technology
  • Department of Biochemistry and Molecular and Structural Biology
  • Dublin City University
  • Queen's University of Belfast
  • University of Ljubljana
  • University of York
  • Earth Sciences
  • Institute of Nuclear Research, National Academy of Sciences in Ukraine
  • Vienna University of Technology
  • University of Innsbruck
  • Opole University
  • Daegu University
  • Seoul National University
  • Institute of Electronics Bulgarian Academy of Sciences
  • Institute for Nuclear Physics
  • Complutense University
  • University of Basel
  • Institution ‘Project Center ITER’
  • National Fusion Research Institute
  • University College Cork
  • NCSR Demokritos
  • Ioffe Institute
  • Long Beach VA and University of California
  • Harvard University
  • University of Rome
  • Czech Technical University in Prague
  • Chalmers University of Technology
  • Columbia University
  • Argonne National Laboratory
  • Consorzio Rfx
  • Université de Nice
  • European Commission
  • National Centre for Nuclear Research
  • University of Ioannina
  • Ipatimup Diagnósticos
  • Oak Ridge National Laboratory
  • IUSTI
  • Nancy Université
  • EUROfusion Programme Management Unit
  • University Roma Tre
  • National Institute for Fusion Science
  • Universidad Carlos III de Madrid
  • Loughborough University
  • Aristotle University of Thessaloniki
  • University of Helsinki
  • Kharkov Institute of Physics and Technology
  • Pompeu Fabra University (UPF)
  • Politecnico di Milano
  • University of Oxford
  • Aix Marseille Université
  • Kharkov National University

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

1 Citation (Scopus)

Résumé

The behaviour of impurities in fusion plasmas is of crucial importance for achieving sustained fusion reactions, and understanding similarities and differences between Deuterium (D) and Tritium (T) plasmas is needed to assess potential changes from DD to DT in ITER and future reactors. The first dimensionless and dimensional isotope identity experiments between Deuterium (D) and Tritium (T) L-mode plasmas were conducted at the JET W/Be wall. In the first approach, the discharges with matched ρ∗, ν∗, βn, q, and Te/Ti were compared to emphasize direct isotope effects, while in the dimensional approach engineering parameters such as toroidal magnetic field BT, plasma current Ip, plasma electron density and NBI power PNBI were matched. The dimensionless isotope scaling showed an improvement in global confinement and local transport in T plasmas in comparison to the matched D one (Cordey et al 1999 Nucl. Fusion 39 301). Detailed impurity analyses using VUV, visible spectroscopy, SXR cameras, and bolometry revealed that T plasmas exhibited higher radiation and impurity content, particularly Ni and W, compared to D plasmas. Understanding the origin of the increased impurity content is addressed in this paper. The dimensionless experiments showed differences in impurity transport. The Be source behaviour varied: D plasmas had higher Be influx in the dimensionless approach due to lower electron density and enhanced sputtering (Saibene et al 1999 Nucl. Fusion 39 1133), while T plasmas showed a higher Be source in the dimensional experiments, highlighting isotope mass effects. W in the divertor region was not sputtered by hydrogen isotopes. W in the divertor region was not sputtered by hydrogen isotopes. In the dimensionless experiments, W sputtering was primarily influenced by Ni in T plasmas and by Be in D plasmas. However, in the dimensional approach, Be played a more significant role in W sputtering within T plasmas. MHD instabilities, including ST oscillations, were present in all cases other ones were correlated with NBI power levels; higher NBI power led to elevated levels of Be, Ni, and W impurities. The comprehensive comparison underscores the necessity of accounting for isotope mass effects in predictive modelling and optimization of plasma performance in fusion reactors.

langue originaleAnglais
Numéro d'article016045
journalNuclear Fusion
Volume65
Numéro de publication1
Les DOIs
étatPublié - 1 janv. 2025
Modification externeOui

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