English

Quantification of locked mode instability triggered by a change in confinement

Plasma Physics 2024-04-18 v1

Abstract

This work presents the first analysis of the disruptive locked mode (LM) triggered by the dynamics of a confinement change. It shows that, under certain conditions, the LM threshold during the transient is significantly lower than expected from steady states. We investigate the sensitivity to a controlled n=1n = 1 error field (EF) activated prior to the L-H transition in the COMPASS tokamak, at q953q_{95} \approx 3, βN1\beta_N \approx 1, and using EF coils on the high-field side of the vessel. A threshold for EF penetration subsequent to the L-H transition is identified, which shows no significant trend with density or applied torque, and is an apparent consequence of the reduced intrinsic rotation of the 2/1 mode during this transient phase. This finding challenges the assumption made in theoretical and empirical works that natural mode rotation can be predicted by global plasma parameters and urges against using any parametric EF penetration scaling derived from steady-state experiments to define the error field correction strategy in the entire discharge. Furthermore, even at EFs below the identified penetration threshold, disruptive locking of sawtooth-seeded 2/1 tearing modes is observed after about 30% of L-H transitions without external torque.

Keywords

Cite

@article{arxiv.2404.11090,
  title  = {Quantification of locked mode instability triggered by a change in confinement},
  author = {M. Peterka and J. Seidl and T. Markovic and A. Loarte and N. C. Logan and J. -K. Park and P. Cahyna and J. Havlicek and M. Imrisek and L. Kripner and R. Panek and M. Sos and P. Bilkova and K. Bogar and P. Bohm and A. Casolari and Y. Gribov and O. Grover and P. Hacek and M. Hron and K. Kovarik and M. Tomes and D. Tskhakaya and J. Varju and P. Vondracek and V. Weinzettl and the COMPASS Team},
  journal= {arXiv preprint arXiv:2404.11090},
  year   = {2024}
}

Comments

15 pages, 13 figures, submitted to Nuclear Fusion

R2 v1 2026-06-28T15:56:46.081Z