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Assessing plasma face component thermal response to rotating 3D magnetic fields for SPARC tokamak

  • M. Scotto D'Abusco
  • , A. Wingen
  • , T. Looby
  • , A. Kleiner
  • , D. Corona
  • , R. M. Churchill
  • , N. Ferraro
  • , S. Munaretto

Research output: Contribution to journalArticlepeer-review

Abstract

Thermal response simulations of plasma-facing components (PFCs) in the SPARC tokamak, performed with the HEAT code, show that three-dimensional (3D) heat loads resulting from stationary n = 1 perturbations require highly radiative scenarios, with up to 95 % of the power crossing the separatrix (P SOL) being radiated, to maintain PFC temperatures within acceptable operational limits, whereas the application of slowly rotating 3D fields substantially reduces the thermal loads. The HEAT module, developed to predict heat loads from non-axisymmetric plasmas, is extended to model time-dependent heat flux patterns generated by rotating 3D fields, and a comprehensive thermal analysis is performed on PFCs subjected to both the maximum and minimum power loads, as well as to rotating heat flux distributions, to evaluate the temperature evolution for varying perturbation amplitudes and rotation frequencies. The extension of this analysis to 3D fields with toroidal mode number n = 2 shows that this configuration leads to weaker localized heat flux peaks relative to the n = 1 case, enabling safe operation with less than 80 % of the power radiated when static 3D fields of low amplitude are applied, while using slowly rotating fields at higher amplitudes. These results indicate that n = 2 perturbations are generally less detrimental to divertor power exhaust, emphasizing the strong dependence of divertor power exhaust on the characteristics of the applied 3D fields.

Original languageEnglish
Article number062301
JournalPhysics of Plasmas
Volume33
Issue number6
DOIs
StatePublished - Jun 1 2026

Funding

This work was supported by the U.S. Department of Energy’sOffice of Fusion Energy Sciences Compact Toroidal Conceptsprogram, namely Resolving science and technology gaps for FusionPilot Plants through collaborative research on Compact ToroidalConcepts; Princeton Plasma Physics Laboratory is operated for theDOE by Princeton University under contract DE-AC02-09CH11466 and DE-AC05-00OR22725. This work is supported inpart by Commonwealth Fusion Systems. This work was supported by the U.S. Department of Energy's Office of Fusion Energy Sciences Compact Toroidal Concepts program, namely Resolving science and technology gaps for Fusion Pilot Plants through collaborative research on Compact Toroidal Concepts; Princeton Plasma Physics Laboratory is operated for the DOE by Princeton University under contract DE-AC02-09CH11466 and DE-AC05-00OR22725. This work is supported in part by Commonwealth Fusion Systems.

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