Published 2019 | Version v1
Report

On the Divertor Heat Flux Width Scaling

  • 1. Lawrence Livermore National Laboratory (United States)
  • 2. Dalian University of Technology, Dalian (China)
  • 3. Peking University (China)
  • 4. Institute of Plasma Physics, Chinese Academy of Sciences, Hefei (China)
  • 5. General Atomics, San Diego, CA 92186 (United States)
  • 6. University of Tennessee, Knoxville, TN 37996 (United States)
  • 7. University of Science and Technology of China, Hefei (China)

Description

The BOUT++ code has been used to simulate edge plasma electromagnetic (EM) turbulence and transport, and to study the role of EM turbulence in setting the scrape-off layer (SOL) heat flux width λq. More than a dozen tokamak discharges from C-Mod, DIII-D, EAST, ITER and CFETR have been simulated with encouraging success. The parallel electron heat fluxes onto the target from the BOUT++ simulations of C-Mod, DIII-D, and EAST follow the experimental heat flux width scaling of the inverse dependence on the poloidal magnetic field. Further turbulence statistics analysis shows that the blobs are generated near the pedestal pressure peak gradient region inside the separatrix and contribute to the transport of the particle and heat in the SOL region. Transport simulations show two distinct regimes: drift dominant regime and turbulence dominant regime. For current tokamak H-mode discharges, drift and turbulent transport both compete in setting the heat flux width, possibly due to its compact machine size and good pedestal confinement.

Part of:
Third IAEA Technical Meeting on Divertor Concepts. Report of Abstracts

Additional details

Publishing Information

Imprint Title
Third IAEA Technical Meeting on Divertor Concepts. Report of Abstracts
Imprint Pagination
68 p.
Journal Page Range
p. 37-38
Report number
INIS-XA--21M2087

Conference

Title
3. IAEA Technical Meeting on Divertor Concepts
Acronym
DC 2019
Dates
4-7 Nov 2019
Place
Vienna (Austria)

Optional Information