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High li Steady State Scenario on KSTAR

ORAL

Abstract

The high li scenario on KSTAR has achieved βN≈3, G=βNH89/q952≈0.3, Vloop≈0 at q95=5, close to the performance required for the ITER steady-state mission. This high li scenario relies on a very peaked current profile with qmin≈1 for the improved confinement and stability. The large positive magnetic shear from the peaked current profile leads to enhanced confinement and results in a high no-wall βN limit. The high βN condition can be achieved even without the need for wall stabilization. A long Ohmic or L-mode phase was used to allow current to penetrate to the axis, followed by injecting on-axis NB (4.3 MW) and EC (1.1 MW) power at the highest li≈1.5. A new robust high li recipe has been developed under the given superconducting coil environment of slow PF coil response to maintain shape control during the rapid βN ramp-up. High li≈1 discharges often develop small amplitude of n=2 MHD modes, resulting in the degradation of electron energy confinement. Good beam ion confinement was obtained with the estimated anomalous beam ion diffusion Db~0 both with and without the n=2 modes. The theory-based FASTRAN modeling with TGLF and EPED reproduces the experimental profiles reasonably well. Extrapolation to ITER will be discussed.

Presenters

  • Jin Myung Park

    Oak Ridge National Laboratory

Authors

  • Jin Myung Park

    Oak Ridge National Laboratory

  • Kyungjin Kim

    Oak Ridge National Lab

  • Y. M. Jeon

    Korea Institute of Fusion Energy, Korea Institute for Fusion Energy

  • H. S. Hahn

    KFE, Korea Institute of Fusion Energy (KFE), Korea Institute of Fusion Energy

  • Jisung Kang

    Korea Institute of Fusion Energy, Korea Institute of Fusion Energy (KFE)

  • J. Chung

    Korea Institute of Fusion Energy

  • H.S. Kim

    Korea Institute of Fusion Energy (KFE), Korea Institute of Fusion Energy

  • Jinseok Ko

    Korea Institute of Fusion Energy, KFE

  • Christopher T Holcomb

    Lawrence Livermore Natl Lab, Lawrence Livermore National Laboratory, LLNL, Lawrence Livermore National Lab

  • J.R. Ferron

    General Atomics