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Numerical study of tearing mode seeding in tokamak X-point plasma

  • Dmytro Meshcheriakov (Corresponding author)
  • , Matthias Hoelzl
  • , Valentin Igochine
  • , Sina Fietz
  • , Francois Orain
  • , Guido T.A. Huijsmans
  • , Marc Maraschek
  • , Mike Dunne
  • , Rachael McDermott
  • , Hartmut Zohm
  • , Karl Lackner
  • , Sibylle Günter

Research output: Contribution to journalArticleAcademicpeer-review

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Abstract

A detailed understanding of island seeding is crucial to avoid neoclassical tearing modes and their negative consequences like confinement degradation and disruptions. In the present work, we investigate the growth of 2/1 islands in response to magnetic perturbations. Although we use externally applied perturbations produced by resonant magnetic perturbation (RMP) coils for this study, the results are directly transferable to island seeding by other MHD instabilities creating a resonant magnetic field component at the rational surface. Experimental results for 2/1 island penetration from ASDEX Upgrade are presented extending previous studies. Simulations are based on an ASDEX Upgrade L-mode discharge with low collisionality and active RMP coils. Our numerical studies are performed with the 3D, two-fluid, nonlinear MHD code JOREK. All three phases of mode seeding observed in the experiment are also seen in the simulations: first, a weak response phase characterized by large perpendicular electron flow velocities followed by a fast growth of the magnetic island size accompanied by a reduction of the perpendicular electron velocity and finally the saturation to a fully formed island state with perpendicular electron velocity close to zero. Thresholds for mode penetration are observed in the plasma rotation as well as in the RMP coil current. A hysteresis of the island size and electron perpendicular velocity is observed between the ramping up and down of the RMP amplitude consistent with an analytically predicted bifurcation. The transition from dominant kink/bending to tearing parity during the penetration is investigated.

Original languageEnglish
Article number042504
Number of pages13
JournalPhysics of Plasmas
Volume26
Issue number4
DOIs
Publication statusPublished - 1 Apr 2019

Funding

This work was carried out under the auspices of the Max-Planck-Princeton Center for Plasma Physics. This work was carried out within the framework of the EUROfusion Consortium and received funding from the Euratom research and training program 2014–2018 and 2019–2020 under Grant Agreement No. 633053. The views and opinions expressed herein do not necessarily reflect those of the European Commission.

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