Long-duration plasma operation in WEST

ORAL  · Invited

Abstract

The WEST superconducting tokamak, featuring a full tungsten environment and equipped with an actively cooled ITER-grade divertor[1], provides valuable inputs for future ITER operation. Substantial progress has been achieved in developing quasi non-inductive scenarios, resulting in 6 minute-long plasma discharges and 1.15 GJ injected/extracted energy, featuring good L-mode confinement (H98y,2 ~ 1.0) and a stationary central electron temperature of ~4keV. The plasma duration was limited by outgassing from far-off in-vessel elements when approaching the gigajoule range, with the evidence of a progressive conditioning as long pulses were repeated. A high fluence campaign has been carried out in attached divertor condition (Te target ~ 20 eV), cumulating 3 hours of plasma and a divertor particle fluence equivalent to an ITER shot. However, the accumulation of redeposited layers on the divertor triggered impurity events, increasingly impacting the plasma operation [2]. In terms of impurity contamination, a resilient radiative fraction is observed due to the strong connection between tungsten sources and radiative losses [3]. Mitigation strategies include wall conditioning using an impurity powder dropper [4] and developing X-point radiator (XPR) regimes. Stable XPR was successfully feedback-controlled for over 10s in L-mode and displayed improved confinement [5]. These approaches show promising prospects for extending this divertor-preserving regime, crucial to reactor operation, towards long durations and improved performance. Furthermore, WEST has demonstrated Ion Cyclotron (IC) assisted breakdown in low electric field conditions (Vloop ~ 0.5V/m), approaching ITER value (Vloop ~ 0.33V/m). IC wall conditioning experiments have also started and will be pursued in the next experimental campaign.

Publication: [1] J. Bucalossi et al. Nuclear Fusion 62, 042007, 2022
[2] J. Gaspar et al. PSI conference, 2024
[3] N. Fedorczak et al., G. Ciraolo et al. PSI conference, 2024
[4] A. Gallo et al., R. Lunsford et al, K. Afonin et al PSI conference, 2024
[5] L. Fèvre et al., N. Rivals et al. PSI conference, 2024

Presenters

  • Remi J Dumont

    • CEA, IRFM
    • CEA, IRFM, F-13108 Saint-Paul-lez-Durance, France

Authors

  • Remi J Dumont

    • CEA, IRFM
    • CEA, IRFM, F-13108 Saint-Paul-lez-Durance, France
  • Patrick Maget

    • CEA, IRFM
  • Pierre Manas

    • CEA Cadarache
    • CEA, IRFM
  • Clarisse Bourdelle

    • CEA, IRFM, F-13108 St-Paul-Lez-Durance, France
    • CEA, IRFM
  • Theo Fonghetti

    • CEA, IRFM
  • Jorge Morales

    • CEA, IRFM
  • Kirill Afonin

    • CEA Cadarache
    • CEA, IRFM
  • Tullio Barbui

    • Princeton Plasma Physics Laboratory
  • Guido Ciraolo

    • CEA, IRFM
  • Yann Corre

    • CEA, IRFM
  • Luis F Delgado-Aparicio

    • Princeton Plasma Physics Laboratory
  • Julien Dominski

    • Princeton Plasma Physics Laboratory
  • Annika C Ekedahl

    • CEA, IRFM
  • Nicolas Fedorczak

    • CEA, IRFM
    • IRFM-CEA
  • Alberto Gallo

    • CEA Cadarache
    • CEA, IRFM
  • Jonathan Gaspar

    • AMU CNRS IUSTI
  • Christophe Guillemaut

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
    • CEA, IRFM
  • Julien Hillairet

    • CEA, IRFM
  • Ernesto Lerche

    • Laboratory for Plasma Physics LPP-ERM/KMS, B-1000 Brussels, Belgium
    • LPP-ERM-KMS
  • Robert A. Lunsford

    • Princeton Plasma Physics Laboratory
  • Didier Mazon

    • CEA, IRFM
  • Philippe Moreau

    • CEA IRFM, F-13108 Saint-Paul-Lez-Durance
    • CEA, IRFM
  • Rémy Nouailletas

    • CEA, IRFM
  • Cedric Reux

    • CEA, IRFM, F-13108 St-Paul-Lez-Durance, France
    • CEA, IRFM
  • Nicolas Rivals

    • CEA, IRFM
    • CEA Cadarache
  • Yves Savoye-Peysson

    • CEA, IRFM
  • emmanuelle Tsitrone

    • IRFM-CEA
    • CEA, IRFM
    • CEA-IRFM, Centre de Cadarache, Saint-Paul-lez-Durance, 13108 Cedex
  • Tom Wauters

    • ITER Organization