Investigation of magnetic fluctuations in L-H and H-L transition dynamics on DIII-D

  • T Ashton-Key
  • , Y Andrew
  • , R Kingham
  • , E Kim
  • , C Jones
  • , T L Rhodes
  • , L Schmitz
  • , Z Yan

Research output: Contribution to journalArticlepeer-review

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Abstract

The dynamics of the L-H transition is not fully understood, with many parameters changing the threshold power to enter H-mode and the self-regulation between zonal flows and turbulence in the plasma edge. This paper is primarily a presentation of experimental results for DIII-D L-H and H-L transitions and speculation on the observations made. Power threshold analysis and measurements of pedestal temperatures for these transitions are presented. A comparison is made between an L-H transition and H-L transition of comparable Psep exhibiting oscillatory behaviour, showing symmetry between forward and backward transition dynamics. This paper shows the first observations of magnetic fluctuations during L-H and H-L transitions on DIII-D, and shows that L-H and H-L transitions have similar magnetic fluctuation dynamics. Information geometry analysis has been performed on measurements of plasma density fluctuations, perpendicular plasma velocity fluctuations, and magnetic field fluctuations to investigate the self-regulation and evolution of these variables during the transitions. Perpendicular flow evolution is shown to dominate the transition dynamics in both directions, but self-regulation behaviour is observed between all three variables. A strong correlation between magnetic fluctuation information rate and density fluctuation information rate for these two shots shows the strong influence of magnetic behaviour on both the L-H and H-L transition, and that these transition dynamics necessarily include electromagnetic effects.
Original languageEnglish
Article number025027
Number of pages19
JournalPlasma Physics and Controlled Fusion
Volume67
Issue number2
Early online date24 Jan 2025
DOIs
Publication statusPublished - 28 Feb 2025

Bibliographical note

Open access CC-BY

Funding

I would like to acknowledge support from the EPSRC Centre for Doctoral Training in Nuclear Energy Futures, EP/S023844/1. Many thanks go to Kathreen Thome for acting as my General Atomics host. Part of the data analysis was performed using the OMFIT integrated modelling framework [54]. This material is based upon work supported by the U.S. Department of Energy, Office of Science, Office of Fusion Energy Sciences, using the DIII-D National Fusion Facility, a DOE Office of Science user facility, under Award(s) DE-FC02-04ER54698, DE-SC0020287, DE-SC0019352, DE-FG02-08ER54999. I would like to acknowledge support from the EPSRC Centre for Doctoral Training in Nuclear Energy Futures, EP/S023844/1. Many thanks go to Kathreen Thome for acting as my General Atomics host. Part of the data analysis was performed using the OMFIT integrated modelling framework []. This material is based upon work supported by the U.S. Department of Energy, Office of Science, Office of Fusion Energy Sciences, using the DIII-D National Fusion Facility, a DOE Office of Science user facility, under Award(s) DE-FC02-04ER54698, DE-SC0020287, DE-SC0019352, DE-FG02-08ER54999.

FundersFunder number
Fusion Energy Sciences
U.S. Department of Energy
EPSRC Centre for Doctoral Training in Nuclear Energy FuturesEP/S023844/1
Office of ScienceDE-SC0019352, DE-SC0020287, DE-FG02-08ER54999, DE-FC02-04ER54698
Office of Science

    Keywords

    • L-H Transition
    • H-mode
    • edge transport barrier
    • turbulence
    • L-mode
    • H-L transition
    • pedestal physics

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