Momentum transport studies in ITER-relevant turbulence regimes on ASDEX Upgrade and DIII-D

POSTER

Abstract

Understanding momentum transport is essential for predicting the plasma rotation of future fusion devices as ITER or SPARC. This work reports results from the ASDEX Upgrade (AUG) and DIII-D tokamaks, aiming to investigate momentum transport in ITER-relevant turbulence regimes with dominant electron heating (ECH). For both machines, the established momentum transport analysis developed at AUG is employed. Previous work on AUG has suggested dependencies of residual stress on the turbulence regime during the transition from ITG to TEM. For this work, discharges with a mixed-mode turbulence regime were analyzed on AUG. The dominant ECH in these experiments gives rise to residual stress, which causes a counter-current intrinsic torque in the inner plasma core. The intrinsic torque at mid-radius locally exceeds the values of the deposited beam torque. Together with momentum diffusion and convection, this results in hollow rotation profiles, which must be avoided for the stability of future fusion devices. First results are presented on the implementation of the analysis technique on DIII-D to investigate momentum transport in low-torque and, consequently, low-rotation regimes with thorough scans of ECH. Turbulence measurements will be performed to assess the Reynolds stress present. Ultimately, this will allow the community to increase confidence in the extrapolation of rotation profiles for future tokamaks.

*Work supported by US DOE under DE-FC02-04ER54698, DE-AC02-09CH11466, DE-FG02-08ER54999, and DE-SC0020287. This work has been carried out within the framework of the EUROfusion Consortium, partially funded by the European Union via the Euratom Research and Training Programme (Grant Agreement No. 101052200—EUROfusion). The Swiss contribution to this work has been funded by the Swiss State Secretariat for Education, Research and Innovation (SERI).

Publication: C. F. B. Zimmermann et al. "Experimental determination of the three components of toroidal momentum transport in the core of a tokamak plasma". In: Nucl. Fusion 63.12 (2023), p. 124003. url: https://doi.org/10.1088/1741-4326/ad0489

C. F. B. Zimmermann et al. "Experimental validation of momentum transport theory in the core of H-mode plasmas in the ASDEX Upgrade tokamak". In: Physics of Plasmas 31.4 (2024), p. 042306. url: https://doi.org/10.1063/5.0203

Presenters

  • Carl Friedrich Benedikt Zimmermann

    • Max Planck Institute for Plasma Physics

Authors

  • Carl Friedrich Benedikt Zimmermann

    • Max Planck Institute for Plasma Physics
  • Clemente Angioni

    • Max Planck Institute for Plasma Physics
    • Max-Planck-Institut für Plasmaphysik, Boltzmannstr. 2, 85748 Garching, Germany
  • Alessandro Bortolon

    • Princeton Plasma Physics Laboratory
  • Colin Chrystal

    • General Atomics - San Diego
    • General Atomics
  • Basil P Duval

    • Ecole Polytechnique Fédérale de Lausanne, SPC
  • Emiliano Fable

    • Max Planck Institut fur Plasmaphysik
  • Shaun R Haskey

    • Princeton Plasma Physics Laboratory
  • Rachael M. McDermott

    • Max Planck Institute for Plasma Physics
  • George R McKee

    • University of Wisconsin-Madison
    • University of Wisconsin, Madison
  • Tomas Odstrcil

    • General Atomics - San Diego
  • X. Qin

    • University of California, Los Angeles
    • University of California Los Angeles
  • Antti Salmi

    • VTT
  • Lothar W Schmitz

    • University of California Los Angeles, TAE Technologies
    • University of California, Los Angeles
    • University of California Los Angeles
  • Tuomas Tala

    • VTT