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High-performance plasmas after pellet injections in Wendelstein 7-X

  • S. A. Bozhenkov
  • , Y. Kazakov
  • , O. P. Ford
  • , M. N.A. Beurskens
  • , J. Alcusón
  • , J. A. Alonso
  • , J. Baldzuhn
  • , C. Brandt
  • , K. J. Brunner
  • , H. Damm
  • , G. Fuchert
  • , J. Geiger
  • , O. Grulke
  • , M. Hirsch
  • , U. Höfel
  • , Z. Huang
  • , J. Knauer
  • , M. Krychowiak
  • , A. Langenberg
  • , H. P. Laqua
  • S. Lazerson, N. B. Marushchenko, D. Moseev, M. Otte, N. Pablant, E. Pasch, A. Pavone, J. H.E. Proll, K. Rahbarnia, E. R. Scott, H. M. Smith, T. Stange, A. Von Stechow, H. Thomsen, Yu Turkin, G. Wurden, P. Xanthopoulos, D. Zhang, R. C. Wolf
  • Max-Planck-Institut für Plasmaphysik
  • Laboratorio Nacional de Fusión
  • MIT Plasma Science and Fusion Center
  • Princeton Plasma Physics Laboratory
  • Eindhoven University of Technology
  • Los Alamos National Laboratory

Résultats de recherche: Contribution à un journalArticleRevue par des pairs

97 Citations (Scopus)

Résumé

A significant improvement of plasma parameters in the optimized stellarator W7-X is found after injections of frozen hydrogen pellets. The ion temperature in the post-pellet phase exceeds 3 keV with 5 MW of electron heating and the global energy confinement time surpasses the empirical ISS04-scaling. The plasma parameters realized in such experiments are significantly above those in comparable gas-fuelled discharges. In this paper, we present details of these pellet experiments and discuss the main plasma properties during the enhanced confinement phases. Local power balance is applied to show that the heat transport in post-pellet phases is close to the neoclassical level for the ion channel and is about a factor of two above that level for the combined losses. In comparable gas-fuelled discharges, the heat transport is by about ten times larger than the neoclassical level, and thus is largely anomalous. It is further observed that the improvement in the transport is related to the peaked density profiles that lead to a stabilization of the ion-scale turbulence.

langue originaleAnglais
Numéro d'article066011
journalNuclear Fusion
Volume60
Numéro de publication6
Les DOIs
étatPublié - juin 2020

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