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DIII-D upper-divertor baffle optimization for pumping high-triangularity discharges

POSTER

Abstract

Magnetic equilibria with high divertor triangularity provide a potential path to stable high-beta discharges in DIII-D at higher pedestal density. Core plasma density control utilizing a cryo pump adjacent to the upper/outer divertor of DIII-D is a key component for this scenario.1 The present study focuses on the impact of self-consistent plasma+neutral 2D profiles in the full scrape-off layer using UEDGE solutions with cross-field plasma drifts in a double-null magnetic geometry. The results provide local plasma fluxes for an analytic pumping-rate model benchmarked with Monte Carlo neutral simulations1 and in turn, pumping is shown to modify the plasma. The highest pumping rates are obtained for the ion B´B drift directed away from the upper divertor region, which leads to a densification of the outer target. Optimization of the baffle and pump-duct locations and shapes are obtained via iteration between the plasma and pumping models.

1 R. Wilcox et al., these proceedings.

Presenters

  • Thomas D Rognlien

    Lawrence Livermore Natl Lab

Authors

  • Thomas D Rognlien

    Lawrence Livermore Natl Lab

  • Menglong Zhao

    Lawrence Livermore Natl Lab, LLNL

  • Maxim Umansky

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

  • Robert Wilcox

    Oak Ridge National Lab, General Atomics - San Diego, ORNL

  • Mogen Shafer

    ORNL

  • Gary Porter

    LLNL

  • Marv Rensink

    LLNL

  • Tom Osborne

    General Atomics

  • Tony Leonard

    GA

  • Mathias Groth

    Aalto University, Aalto Univerity

  • Max Fenstermacher

    LLNL

  • Steven L Allen

    Lawrence Livermore Natl Lab, LLLN