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Exploration of Non-Resonant Divertor Features on the Compact Toroidal Hybrid

POSTER

Abstract

Non-resonant divertors (NRDs) separate the confined plasma from the surrounding plasma facing components (PFCs). However, a complex scrape-off layer (SOL), created by chaotic magnetic topology in the plasma edge, connects the core plasma to the PFCs through varying magnetic flux tubes. The Compact Toroidal Hybrid (CTH) is a test-bed to study this by scanning across its inductive current. Simulations observe a significant change of the chaotic edge structure and an effective distance between the confined plasma and the instrumented wall targets. The intersection pattern is observed to be a narrow helical band, which we claim is a resilient strike line pattern. However, signatures of finger-like structures, defined as homoclinic tangles in chaotic domains, within the plasma edge connect the island chains to this resilient pattern. The dominant connection length field lines intersecting the targets are observed via heat flux modelling with EMC3-EIRENE. At low inductive current levels, the excursion of the field lines resembles a limited plasma wall scenario. At high currents, a private flux region is created in the area where the helical strike line pattern splits into two bands. These bands are divertor legs with distinct SOL parallel particle flow channels. The results show the NRD strike line resiliency within CTH, but also show the underlying chaotic edge structure determining if the configuration is diverted or limited. This work supports future design efforts for a mechanical structure for the NRD.

Publication: K. A. Garcia et al (2023) Exploration of Non-Resonant Divertor Features on the Compact Toroidal Hybrid sub. to Nuc. Fus.

Presenters

  • Kelly A Garcia

    University of Wisconsin - Madison

Authors

  • Kelly A Garcia

    University of Wisconsin - Madison

  • Aaron Bader

    University of Wisconsin - Madison, Type One Energy, Type One Energy

  • Heinke G Frerichs

    University of Wisconsin - Madison

  • Gregory J Hartwell

    Auburn University

  • John C Schmitt

    Type One Energy, Auburn University, Type One Energy

  • Nicholas R Allen

    Auburn University

  • Oliver Schmitz

    University of Wisconsin - Madison