Evaluating Doppler backscattering for inferring internal magnetic pitch angle of Mega Ampere Spherical Tokamak-Upgrade plasmas

POSTER

Abstract

Spherical tokamaks (STs), such as the Mega Ampere Spherical Tokamak-Upgrade (MAST-U), have large magnetic pitch angles that vary significantly in space and time. Measuring this pitch angle in the core, with high temporal and spatial resolution, is key for equilibrium reconstruction and controlling magnetohydrodynamic stability. Existing techniques, such as the motional Stark effect diagnostic, might not survive the harsh conditions of burning plasmas in future devices like STEP. In this work, we assess the viability of using a Doppler backscattering (DBS) system to infer the magnetic pitch angle in MAST-U plasmas. DBS is a robust microwave diagnostic typically used for measuring turbulent density fluctuations and flows. Through toroidal steering, DBS operators aim to match the beam wavevector perpendicular to the magnetic field, as mismatch leads to a lower signal and is thus generally undesirable. Conversely, this variation of power on matching has enabled DBS to infer the magnetic pitch angle in DIII-D, a conventional tokamak. We find that while this technique is more challenging to implement in STs, it is nonetheless possible to infer the magnetic pitch angle in the plasma core of up to a normalized poloidal flux of 0.2 in MAST-U. Finally, we show how to optimize a DBS system specifically for measuring the pitch angle.

*This work was funded by the Urban and Green Tech Office, A*STAR, Green Seed Fund C231718014. This material is also based upon work supported by the U.S. Department of Energy, Office of Science, Office of Fusion Energy Sciences, using the DIII-D National Fusion Facility, a DOE Office of Science user facility, under Awards DEFC02- 04ER54698 and DE-SC0019352. This work was also in part supported by a grant from the Engineering and Physical Sciences Research Council (EPSRC) [EP/R034737/1].

Publication: T. Xing et. al., Conceptual design of a Doppler backscattering device for measuring magnetic pitch angles on the Mega-Ampere Spherical Tokamak-Upgrade, in preparation.

Presenters

  • Tingjing Xing

    • Princeton University

Authors

  • Tingjing Xing

    • Princeton University
  • Valerian H Hall-Chen

    • Institute of High Performance Computing, A*STAR
    • Institute of High Performance Computing, Agency for Science, Technology, and Research (A*STAR), Singapore 138632, Singapore
  • Andy K Yeoh

    • University of Oxford
  • Terry Rhodes

    • University of California, Los Angeles
  • Neal A Crocker

    • University of California, Los Angeles
  • Clive Alvin Michael

    • University of California
  • William A Peebles

    • University of California, Los Angeles
  • Peng Shi

    • Institute of Plasma Physics, Chinese Academy of Sciences