Development of Numerical Methods to Estimate the Ohmic Breakdown Scenarios of a Tokamak

POSTER

Abstract

The ohmic breakdown is a fundamental method to initiate the plasma in a tokamak. For the robust breakdown, ohmic breakdown scenarios have to be carefully designed by optimizing the magnetic field configurations to minimize the stray magnetic fields. This research focuses on development of numerical methods to estimate the ohmic breakdown scenarios by precise analysis of the magnetic field configurations. This is essential for the robust and optimal breakdown and start-up of fusion devices especially for ITER and its beyond equipped with low toroidal electric field (E$_{T}\le $0.3 V/m). A field-line-following analysis code based on the Townsend avalanche theory and a particle simulation code are developed to analyze the breakdown characteristics of actual complex magnetic field configurations including the stray magnetic fields in tokamaks. They are applied to the ohmic breakdown scenarios of tokamaks such as KSTAR and VEST and compared with experiments.

Authors

  • Min-Gu Yoo

    Seoul National University

  • J.H. Kim

    National Fusion Research Institute, NFRI, Korea

  • YoungHwa An

    Seoul National University

  • Yong-Seok Hwang

    Seoul National University

  • Seung Bo Shim

    Pusan National University

  • Hae June Lee

    Pusan National University

  • Yong-Su Na

    Seoul National University