Four-Dimensional Continuum Gyrokinetic Code: Neoclassical Simulation of Fusion Edge Plasmas

POSTER

Abstract

We are developing a continuum gyrokinetic code, TEMPEST, to simulate edge plasmas. Our code represents velocity space via a grid in equilibrium energy and magnetic moment variables, and configuration space via poloidal magnetic flux and poloidal angle. The geometry is that of a fully diverted tokamak (single or double null) and so includes boundary conditions for both closed magnetic flux surfaces and open field lines. The 4-dimensional code includes kinetic electrons and ions, and electrostatic field-solver options, and simulates neoclassical transport. The present implementation is a Method of Lines approach where spatial finite-differences (higher order upwinding) and implicit time advancement are used. We present results of initial verification and validation studies: transition from collisional to collisionless limits of parallel end-loss in the scrape-off layer, self-consistent electric field, and the effect of the real X-point geometry and edge plasma conditions on the standard neoclassical theory, including a comparison of our 4D code with other kinetic neoclassical codes and experiments.

*This work was performed under the auspices of the USDOE by University of California Lawrence Livermore National Laboratory under contract No. W-7405-Eng-48 and was supported as LLNL LDRD project 04-SI-003.

Authors

  • X.Q. Xu

  • A. Xiong

  • B.I. Cohen

  • R.H. Cohen

  • M.R. Dorr

  • J.A. Hittinger

  • G.D. Kerbel

  • W.M. Nevins

  • T.D. Rognlien

    • LLNL