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Auxiliary heating and current drive physics for the ST-E1 fusion power plant

  • N. A. Lopez
  • , A. F.P. McAdam
  • , N. Bertelli
  • , S. Shiraiwa
  • , M. Ono
  • , Y. Takase
  • , X. Zhang
  • , M. Borscz
  • , J. Stirling
  • , A. Alieva
  • , E. N.J. Maartensson
  • , S. A.M. McNamara

Research output: Contribution to journalArticlepeer-review

Abstract

This work describes the physics basis for the proposed auxiliary heating and current drive system on the ST-E1 fusion power plant. The ST-E1 flattop plasma considered here is fully non-inductive with a bootstrap fraction of 0.9 and the remaining current driven by EC waves. Using the recently published physics-based optimization method for EC launchers (Lopez et al 2025 Plasma Phys. Control. Fusion 67 055012), we show that the target flattop ECCD can be achieved with a net efficiency of 52 kA MW−1 using fundamental O-mode (O1) with frequency range 160–200 GHz launched from the low-field side top half of the vacuum vessel (LFS top-launch). From considering two candidate rampup scenarios, we conclude that LFS top-launch O1 ECCD can be equally effective during the early stages of plasma operation, although poloidal steering might be needed. X-mode waves injected from the LFS midplane are also shown to be effective for rampup even when (Formula presented) (Formula presented)  keV. We also present modeling results for the pre-conceptual design of an ICRH system proposed for ST-E1. Using TORIC, we find that an ICRH system aiming for 42–48 MHz and toroidal mode number (Formula presented) (Formula presented) robustly achieves dominant ion damping via Helium-3 minority heating transitioning to second-harmonic Tritium heating. We then show that such waves can be efficiently generated by a 5-strap traveling-wave antenna (TWA) using the Petra-M code. The TWA has a 40–45 MHz passband within which (Formula presented) (Formula presented) of the power entering the TWA is coupled to the plasma with the remaining (Formula presented) (Formula presented) of the power being transmitted through the TWA and possibly recirculated; the power reflected back into the transmission lines is negligible. This passband structure persists even when the evanescent distance is increased by a factor of two, or when the magnetic-field angle is increased by 30, demonstrating inherent load resilience that will be crucial for effective ICRH on ST-E1.

Original languageEnglish (US)
Article number086010
JournalNuclear Fusion
Volume66
Issue number8
DOIs
StatePublished - Aug 2026

All Science Journal Classification (ASJC) codes

  • Nuclear and High Energy Physics
  • Condensed Matter Physics

Keywords

  • electron cyclotron
  • fusion power plant
  • heating and current drive
  • ion cyclotron
  • traveling wave antenna

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