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Investigation of heat flux from non-charged particles in the different divertor closures in DIII-D

ORAL

Abstract

A method of using a combination of flush and recessed surface eroding thermocouple (SETC) was develop in DIII-D to independently measure the heat flux to the first wall armor carried by non-charged particles, qnc, from that carried by charged particles, qch. Comparison of heat flux-carrying components in the open divertor and closed divertor is made for the first time in a tokamak. Measurements at lower open divertor of DIII-D showed that qch dominates in the attached plasma, while in the detachment conditions, qnc can contribute up to 50% of the total heat flux near the separatrix. SOLPS modeling results indicate the 2D radiation profile in the SAS divertor significantly changes with the increase of upstream density, which suggests that the location of peak qnc moves outward along the divertor. The experiments carried out in the SAS-VW divertor suggests the distribution of qnc is largely dependent on the location and the degree of detachment. As plasma density increases, qnc decreases near the separatrix while increasing in the far SOL, which is consistent with the SOLPS simulation. In the far SOL region, qnc may contribute nearly 100% of total heat flux at the divertor surface. Using the new SETC array installed in the SAS-VW divertor, the dependence of qnc on divertor closure, drift direction and divertor detachment will be systemically investigated in the near future.

Presenters

  • Jun Ren

    University of Tennessee, University of Tennessee – Knoxville

Authors

  • Jun Ren

    University of Tennessee, University of Tennessee – Knoxville

  • David C Donovan

    University of Tennessee, University of Tennessee - Knoxville, Department of Nuclear Engineering, University of Tennessee, Knoxville, Tennessee 37996, USA, University of Tennessee, Knoxville, University of Tennessee – Knoxville

  • Jonathan G Watkins

    General Atomics - San Diego, Sandia National Lab, Sandia National Laboratories

  • Huiqian Wang

    General Atomics - San Diego, General Atomics

  • Xinxing Ma

    General Atomics, Oak Ridge Associated Universities

  • Roberto Maurizio

    Oak Ridge Associated Universities / General Atomics

  • Tom Looby

    Commonwealth Fusion Systems, CFS

  • John Canik

    Oak Ridge National Lab

  • Dmitry L Rudakov

    UCSD, University of California San Diego, University of California, San Diego

  • Peter C Stangeby

    Univ of Toronto

  • Dan M Thomas

    General Atomics - San Diego, General Atomics

  • Rejean Boivin

    General Atomics - San Diego, General Atomics