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WEST full tungsten operation with an ITER grade divertor

  • and the WEST Team
  • , The EUROfusion Tokamak Exploitation Team
  • Commissariat à l'Énergie Atomique et aux Énergies Alternatives
  • Université Aix Marseille
  • American University of Beirut
  • Karlsruher Institut für Technologie
  • MIT Plasma Science and Fusion Center
  • Southwestern Institute of Physics China
  • Max Planck Institute for Plasma Physics
  • Princeton University
  • Institute of Nuclear Physics PAN
  • Technical University of Denmark
  • ITER
  • FORSCHUNGSZENTRUM JULICH GMBH
  • Institut Jean Lamour
  • Istituto di Fisica del Plasma Piero Caldirola
  • Institute of Plasma Physics and Laser Microfusion
  • KAIST
  • Institute for Plasma Research
  • Institute of Plasma Physics, Academy of Sciences of the Czech Republic
  • Institute of Plasma Physics Chinese Academy of Sciences
  • University of Tennessee
  • ENEA Centro Ricerche Frascati
  • National Institutes for Quantum and Radiological Science and Technology
  • École Polytechnique Fédérale de Lausanne
  • Oak Ridge National Laboratory
  • Pohang University of Science and Technology
  • University of Ljubljana
  • VTT Technical Research Centre of Finland
  • Ecole Polytechnique
  • Bulgarian Academy of Sciences
  • Warsaw University of Technology
  • Fusion for Energy
  • National Institute for Laser, Plasma and Radiation Physics
  • Ulsan National Institute of Science and Technology
  • KTH Royal Institute of Technology
  • National Institute for Fusion Science
  • The Hebrew University of Jerusalem
  • FOM Institute DIFFER

Onderzoeksoutput: Bijdrage aan een tijdschriftArtikelpeer review

36 Citaten (Scopus)

Samenvatting

The mission of WEST (tungsten-W Environment in Steady-state Tokamak) is to explore long pulse operation in a full tungsten (W) environment for preparing next-step fusion devices (ITER and DEMO) with a focus on testing the ITER actively cooled W divertor in tokamak conditions. Following the successful completion of phase 1 (2016-2021), phase 2 started in December 2022 with the lower divertor made entirely of actively cooled ITER-grade tungsten mono-blocks. A boronization prior the first plasma attempt allowed for a smooth startup with the new divertor. Despite the reduced operating window due to tungsten, rapid progress has been made in long pulse operation, resulting in discharges with a pulse length of 100 s and an injected energy of around 300 MJ per discharge. Plasma startup studies were carried out with equatorial boron nitride limiters to compare them with tungsten limiters, while Ion Cyclotron Resonance Heating assisted startup was attempted. High fluence operation in attached regime, which was the main thrust of the first campaigns, already showed the progressive build up of deposits and appearance of dust, impacting the plasma operation as the plasma fluence increased. In total, the cumulated injected energy during the first campaigns reached 43 GJ and the cumulated plasma time exceeded 5 h. Demonstration of controlled X-Point Radiator regime is also reported, opening a promising route for investigating plasma exhaust and plasma-wall interaction issues in more detached regime. This paper summarises the lessons learned from the manufacturing and the first operation of the ITER-grade divertor, describing the progress achieved in optimising operation in a full W environment with a focus on long pulse operation and plasma wall interaction.

Originele taal-2Engels
Artikelnummer112022
TijdschriftNuclear Fusion
Volume64
Nummer van het tijdschrift11
DOI's
StatusGepubliceerd - nov 2024

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