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Overview of JET results

  • JET EFDA Contributors
  • JET
  • KTH Royal Institute of Technology
  • Imperial College London
  • Ioffe Institute
  • CEA Cadarache
  • Queen's University of Belfast
  • Association EURATOM-Tekes
  • Culham Centre for Fusion Energy
  • EURATOM Assoc.
  • Troitsk Insitute of Innovating and Thermonuclear Research (TRINITI)
  • Consorzio Rfx
  • Laboratorio Nacional de Fusión
  • Instituto Superior Técnico
  • Wigner Research Centre for Physics
  • Chalmers University of Technology
  • Uppsala University
  • Kurchatov Institute
  • Association Euratom-MEdC
  • Plasma and Radiation Physics (INFLPR)
  • Max-Planck-Institut für Plasmaphysik
  • Università degli Studi di Catania
  • Dublin City University
  • Fusion for Energy
  • Culham Science Centre
  • Aalto University
  • Nuclear Fuel Plant
  • Lehigh University
  • EURATOM Association, Germany
  • Oak Ridge National Laboratory
  • Institute of Meteorology and Climate Research
  • The University of Texas at Austin
  • Association Euratom-IPPLM
  • ENAC-IIC-GEL
  • Université de Nice
  • Lviv Polytechnic National University
  • Koninklijke Militaire School - Ecole Royale Militaire
  • EFDA-CSU Garching
  • Nuclear Research Centre
  • National Institute for Optoelectronics
  • Princeton Plasma Physics Laboratory
  • General Atomics
  • Universitá di Cagliari
  • University of California
  • Colorado School of Mines
  • Japan Atomic Energy Agency
  • Ghent University
  • Institut de Radioprotection et de Sûreté Nucléaire
  • Universidad Politécnica de Madrid
  • Association EURATOM-FOM
  • Institute of Applied Physics of the Russian Academy of Sciences
  • Bulgarian Academy of Sciences
  • Institute of Plasma Physics AS CR
  • European Commission
  • NCSR Demokritos
  • Physikalisch-Technische Bundesanstalt
  • IMBA Institute of Molecular Biotechnology of the Austrian Academy of Sciences
  • University of Maryland, College Park
  • Seoul National University
  • ITER
  • Daegu University
  • Lithuanian Energy Institute
  • Lund University
  • Vienna International Center
  • National Technical University of Athens
  • University of Suttgart
  • University Tartu
  • University of Latvia (LU)
  • Massachusetts Institute of Technology
  • Department of Biochemistry and Molecular and Structural Biology
  • Moscow State University
  • Technical University of Denmark
  • Universidad Carlos III de Madrid
  • Université Libre de Bruxelles
  • Horia Hulubei National Institute of Physics and Nuclear Engineering
  • University of Strathclyde
  • Politecnico di Torino
  • University of Warwick
  • Institut Pierre Simon Laplace, CNRS and CEA
  • University of Tamper
  • University of York
  • Institute of Plasma Physics, Chinese Academy of Sciences

Research output: Contribution to journalArticlepeer-review

Abstract

Since the last IAEA Conference JET has been in operation for one year with a programmatic focus on the qualification of ITER operating scenarios, the consolidation of ITER design choices and preparation for plasma operation with the ITER-like wall presently being installed in JET. Good progress has been achieved, including stationary ELMy H-mode operation at 4.5 MA. The high confinement hybrid scenario has been extended to high triangularity, lower ρ*and to pulse lengths comparable to the resistive time. The steady-state scenario has also been extended to lower ρ*and ν*and optimized to simultaneously achieve, under stationary conditions, ITER-like values of all other relevant normalized parameters. A dedicated helium campaign has allowed key aspects of plasma control and H-mode operation for the ITER non-activated phase to be evaluated. Effective sawtooth control by fast ions has been demonstrated with3He minority ICRH, a scenario with negligible minority current drive. Edge localized mode (ELM) control studies using external n = 1 and n = 2 perturbation fields have found a resonance effect in ELM frequency for specific q95values. Complete ELM suppression has, however, not been observed, even with an edge Chirikov parameter larger than 1. Pellet ELM pacing has been demonstrated and the minimum pellet size needed to trigger an ELM has been estimated. For both natural and mitigated ELMs a broadening of the divertor ELM-wetted area with increasing ELM size has been found. In disruption studies with massive gas injection up to 50% of the thermal energy could be radiated before, and 20% during, the thermal quench. Halo currents could be reduced by 60% and, using argon/deuterium and neon/deuterium gas mixtures, runaway electron generation could be avoided. Most objectives of the ITER-like ICRH antenna have been demonstrated; matching with closely packed straps, ELM resilience, scattering matrix arc detection and operation at high power density (6.2 MW m-2) and antenna strap voltages (42 kV). Coupling measurements are in very good agreement with TOPICA modelling.

Original languageEnglish
Article number094008
JournalNuclear Fusion
Volume51
Issue number9
DOIs
Publication statusPublished - 1 Sept 2011
Externally publishedYes

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