High Performance Core-Edge Solutions in Super H-Mode

ORAL

Abstract

The Super H-Mode (SH) regime is predicted to enable pedestal height and fusion performance substantially higher than standard H-mode operation. This regime exists due to a bifurcation of the pedestal pressure as a function of density, predicted by the EPED model to occur in strongly shaped plasmas above a critical density. The SH regime can have pedestal pressure twice as high, and collisionality 4x lower, than the standard H-mode at the same density. Because the pedestal in SH mode is limited by current-driven modes, increasing the near separatrix density to enable attractive divertor solutions is predicted to be compatible with high fusion performance in the core (unlike in standard H-modes). DIII-D SH experiments have achieved record levels of fusion gain on a medium scale tokamak, and have sustained high performance using 3D magnetic perturbations. New experiments have employed D2 and N2 gas to improve divertor conditions. High pedestal pressure (>20kPa) and core confinement (τE~.15s) are sustained across a 30x gas scan, and with a strongly radiating divertor with a 3x reduction in divertor Te. We discuss DIII-D results, and further predictions for DIII-D and ITER.

*Supported by US DOE under DE‑FG03‑95ER54309, DE-FC02-06ER54873, DE-FC02-04ER54698, DE-SC0014264.

Presenters

  • Philip B Snyder

    • General Atomics
    • General Atomics - San Diego

Authors

  • Philip B Snyder

    • General Atomics
    • General Atomics - San Diego
  • Tom H Osborne

    • General Atomics
    • General Atomics - San Diego
  • C. Alberto Paz-Soldan

    • General Atomics - San Diego
    • General Atomics
    • GA
  • Wayne M Solomon

    • General Atomics
    • General Atomics - San Diego
  • David Eldon

    • General Atomics - San Diego
    • General Atomics
  • Todd E Evans

    • General Atomics - San Diego
    • General Atomics
  • Brian A Grierson

    • Princeton Plasma Physics Laboratory
    • Princeton Plasma Phys Lab
  • Richard Joseph Groebner

    • General Atomics - San Diego
    • General Atomics
  • Jerry W Hughes

    • Massachusetts Inst of Tech-MIT
    • Massachusetts Institute of Technology
    • MIT
    • MIT Plasma Science and Fusion Center
  • Matthias Knolker

    • Ludwig Maximilians Univ
  • Florian M. Laggner

    • Princeton Univ
    • Princeton University
  • Anthony W Leonard

    • General Atomics - San Diego
    • General Atomics, USA
    • General Atomics
  • Orso Meneghini

    • General Atomics
    • General Atomics - San Diego
  • Saskia Mordijck

    • William & Mary Coll
    • William & Mary
  • Thomas W. Petrie

    • General Atomics
    • General Atomics - San Diego
  • Huiqian Wang

    • Oak Ridge Associated Universities
    • General Atomics - San Diego
    • Oak Ridge Associated University
    • ORAU, Oak Ridge, TN, USA
    • Oak Ridge Associated Universities, USA, Oak Ridge Associated Universities, USA
    • General Atomics
  • Jonathan Watkins

    • Sandia National Laboratory
    • Sandia Natl Labs
    • Sandia National Laboratories
    • Sandia National Lab
    • General Atomics - San Diego
    • SNL
    • Sandia National Laboratory, USA
  • Howard R Wilson

    • York Plasma Institute, CCFE
    • Univ of York, CCFE