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Developing the hybrid scenario in DIII-D and KSTAR for W-compatible long-pulse operation

  • S. K. Kim
  • , B. Victor
  • , Y. H. Lee
  • , J. M. Park
  • , F. Turco
  • , T. Odstrcil
  • , Q. Hu
  • , A. Bortolon
  • , A. Biwole
  • , W. Boyes
  • , T. Osborne
  • , W. Choi
  • , J. Chung
  • , Y. M. Jeon
  • , W. H. Ko
  • , J. K. Lee
  • , H. H. Lee
  • , J. Ko
  • , S. Oh
  • , Y. S. Na
  • Y. S. Han, B. S. Kim, S. M. Yang, J. A. Snipes, E. Kolemen

Research output: Contribution to journalArticlepeer-review

Abstract

Long-pulse, high-performance operation with tungsten plasma-facing components is a crucial challenge for achieving steady-state (SS) goals in ITER and future fusion devices. This paper presents a joint international effort between the DIII-D and KSTAR tokamaks aimed at demonstrating the compatibility of the high (Formula presented) (Formula presented) hybrid scenario with a tungsten divertor and superconducting coils. A DIII-D hybrid scenario recipe is successfully tailored to KSTAR’s operational constraints, which facilitates cross-device studies. The results show successful 30 s long-pulse operation in KSTAR at a normalized beta ( (Formula presented) (Formula presented) = 2.4) with a benign (Formula presented) (Formula presented) 4/3 mode and effective mitigation of tungsten accumulation. Despite this success, the KSTAR scenario exhibits a greater than 25% reduction in thermal confinement compared to the DIII-D reference. To investigate this discrepancy, we performed a predictive TGYRO validation study, which suggests that the difference is likely caused by a weaker temperature pedestal in the KSTAR discharge due to a higher and narrower density pedestal. In addition, such lower thermal confinement leads to higher impurity accumulation, possibly due to a change in neoclassical transport with increased inward pinch, which further degrades global confinement. We also report that stationary, long-pulse operation with sustained thermal confinement requires consistent fueling and wall conditioning. These findings highlight the importance of optimized fueling and real-time wall conditioning in achieving a high temperature pedestal and strong global confinement during stable long-pulse operation. We propose potential approaches toward fully SS, long-pulse operation, including real-time wall conditioning using an impurity dropper in KSTAR and future tokamaks.

Original languageEnglish (US)
Article number076019
JournalNuclear Fusion
Volume66
Issue number7
DOIs
StatePublished - Jul 2026

All Science Journal Classification (ASJC) codes

  • Nuclear and High Energy Physics
  • Condensed Matter Physics

Keywords

  • DIII-D
  • hybrid scenario
  • KSTAR
  • long-pulse
  • tungsten divertor

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