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AORSA full wave calculations of helicon waves in DIII-D and ITER

  • C. Lau
  • , E. F. Jaeger
  • , N. Bertelli
  • , L. A. Berry
  • , D. L. Green
  • , M. Murakami
  • , J. M. Park
  • , R. I. Pinsker
  • , R. Prater

Research output: Contribution to journalArticlepeer-review

Abstract

Helicon waves have been recently proposed as an off-axis current drive actuator for DIII-D, FNSF, and DEMO tokamaks. Previous ray tracing modeling using GENRAY predicts strong single pass absorption and current drive in the mid-radius region on DIII-D in high beta tokamak discharges. The full wave code AORSA, which is valid to all order of Larmor radius and can resolve arbitrary ion cyclotron harmonics, has been used to validate the ray tracing technique. If the scrape-off-layer (SOL) is ignored in the modeling, AORSA agrees with GENRAY in both the amplitude and location of driven current for DIII-D and ITER cases. These models also show that helicon current drive can possibly be an efficient current drive actuator for ITER. Previous GENRAY analysis did not include the SOL. AORSA has also been used to extend the simulations to include the SOL and to estimate possible power losses of helicon waves in the SOL. AORSA calculations show that another mode can propagate in the SOL and lead to significant (∼10%-20%) SOL losses at high SOL densities. Optimizing the SOL density profile can reduce these SOL losses to a few percent.

Original languageEnglish (US)
Article number066004
JournalNuclear Fusion
Volume58
Issue number6
DOIs
StatePublished - Apr 11 2018

All Science Journal Classification (ASJC) codes

  • Nuclear and High Energy Physics
  • Condensed Matter Physics

Keywords

  • AORSA
  • DIII-D
  • ITER
  • current drive
  • electromagnetic simulation
  • helicon
  • tokamak

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