Bringing global gyrokinetic turbulence simulations to the transport timescale using a multiscale approach

POSTER

Abstract

Predictive whole-device simulation models will play an increasingly important role in ensuring the success of fusion experiments and accelerating the development of fusion energy. In the core of tokamak plasmas, a separation of timescales between turbulence and transport makes a single direct simulation of both processes computationally expensive. We present the first demonstration of a multiple-timescale method coupling global gyrokinetic simulations with a transport solver to calculate the self-consistent, steady-state temperature profile. Initial results are highly encouraging, with the coupling method appearing robust to the difficult problem of turbulent fluctuations. The method holds potential for integrating first-principles turbulence simulations into whole-device models and advancing the understanding of global plasma behavior.

Authors

  • Jeffrey Parker

    Lawrence Livermore National Laboratory, LLNL

  • Lynda LoDestro

    LLNL

  • Daniel Told

    MPI of Plasma Physics- Garching, Max Planck Institute for Plasma Physics, Boltzmannstr. 2, D-85748 Garching, Germany, Max-Planck-Institut fur Plasmaphysik, Garching

  • Gabriele Merlo

    UCLA, University of California, Los Angeles

  • Lee Ricketson

    LLNL

  • Alejandro Campos

    LLNL

  • Frank Jenko

    UCLA, Univ of California - Los Angeles, University of California Los Angeles

  • Jeffrey Hittinger

    LLNL, Lawrence Livermore Natl Lab