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Observation of enhanced ion particle transport in mixed H/D isotope plasmas on JET

  • JET Contributors
  • Culham Centre for Fusion Energy
  • University of Seville
  • Max-Planck-Institut für Plasmaphysik
  • VTT Technical Research Centre of Finland
  • FOM Institute DIFFER
  • Commissariat à l'Énergie Atomique (CEA)
  • Laboratorio Nacional de Fusión
  • Forschungszentrum Jülich GmbH
  • Institute for Plasma Research
  • Instituto Superior Técnico
  • Queens University
  • University of Helsinki
  • National Institutes for Quantum and Radiological Science and Technology
  • University of Napoli 'Federico II'
  • Universidad Nacional de Educación a Distancia
  • Istituto di Fisica del Plasma Piero Caldirola
  • ITER
  • Consorzio Rfx
  • Kurchatov Institute
  • University of Napoli Parthenope
  • University of Ghent
  • Fluid and Plasma Dynamics
  • ENEA Centro Ricerche Frascati
  • Troitsk Insitute of Innovating and Thermonuclear Research (TRINITI)
  • Uppsala University
  • The 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
  • Imperial College London
  • University of Oxford
  • EUROfusion
  • Oak Ridge National Laboratory
  • Karlsruhe Institute of Technology
  • University of York
  • KTH Royal Institute of Technology
  • Maritime University of Szczecin
  • Institute of Nuclear Physics PAN
  • Institute of Plasma Physics, Academy of Sciences of the Czech Republic
  • University of Trento
  • Ecole Polytechnique Federale de Lausanne
  • Wigner Research Centre for Physics
  • University Mlynska
  • Lviv Polytechnic National University
  • University of Milano-Bicocca
  • The National Institute for Optoelectronics
  • Fourth State Research
  • University of Texas at Austin
  • Belgian Nuclear Research Centre
  • Narodowe Centrum Badań Jadrowych
  • Princeton Plasma Physics Laboratory
  • Université Aix Marseille
  • University of Cagliari
  • University of Warwick
  • Institute of Plasma Physics and Laser Microfusion
  • National Institute for Laser, Plasma and Radiation Physics
  • Jozef Stefan Institute
  • Université de Lorraine
  • Institute of Plasma Physics Chinese Academy of Sciences
  • Center for Energy Research
  • The 'Horia Hulubei' National Institute for Physics and Nuclear Engineering
  • Chalmers University of Technology
  • European Commission
  • Universidad Politécnica de Madrid
  • Second University of Napoli
  • Warsaw University of Technology
  • University of Basilicata
  • Barcelona Supercomputer Centre
  • Centro Brasileiro de Pesquisas Fisicas
  • University of Rome Tor Vergata
  • Ioffe Physical-Technical Institute of the Russian Academy of Sciences
  • General Atomics
  • Universitat Innsbruck
  • University of Toyama
  • University of Strathclyde
  • National Technical University of Athens
  • University of Tuscia
  • Technical University of Denmark
  • KAIST
  • Seoul National University
  • University College Cork
  • Vienna University of Technology
  • University of Opole
  • Daegu University
  • National Fusion Research Institute (NFRI)
  • Dublin City University
  • Pelin Llc
  • Arizona State University
  • Universidad Complutense de Madrid
  • University of Basel
  • Universidad Carlos III de Madrid
  • Consorzio CREATE
  • NCSR 'Demokritos'
  • Purdue University
  • University of California
  • Universidade de São Paulo
  • Lithuanian Energy Institute
  • HRS Fusion
  • Politecnico di Torino
  • Royal Military Academy
  • University of Cassino
  • University of Electronic Science and Technology of China

Research output: Contribution to journalArticlepeer-review

43 Citations (Scopus)

Abstract

Particle transport in tokamak plasmas has been intensively studied in the past, particularly in relation to density peaking and the presence of anomalous inward particle convection in L- and H-modes. While in the L-mode case the presence of the anomalous inward pinch has previously been unambiguously demonstrated, particle transport in the H-mode was unclear. The main difficulty of such studies is that particle diffusion and convection could not be measured independently in steady-state conditions in the presence of a core particle flux. Therefore, it is usually not possible to separate the transport effect(inward convection), from the source effect (slow diffusion of particles introduced to the plasma core by neutral beam injection heating). In this work we describe experiments done on JET with mixtures of two hydrogenic isotopes: H and D. It is demonstrated that in the case of several ion species, convection and diffusion can be separated in a steady plasma without implementation of perturbative techniques such as gas puff modulation. Previous H-mode density peaking studies suggested that for this relatively high electron collisionality plasma scenario, the observed density gradient is mostly driven by particle source and low particle diffusivity D < 0.5 ∗ χ eff. Transport coefficients derived from observation of the isotope profiles in the new experiments far exceed that value - ion particle diffusion is found to be as high as D 2 ∗ χ eff, combined with a strong inward convection. Apparent disagreement with previous findings was explained by significantly faster transport of ion components with respect to the electrons, which could not be observed in a single main ion species plasma. This conclusion is confirmed by quasilinear gyrokinetic simulations.

Original languageEnglish
Article number076022
JournalNuclear Fusion
Volume58
Issue number7
DOIs
Publication statusPublished - 4 Jun 2018

Keywords

  • Particle transport
  • Tokamak
  • plasma

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