Model-based control development for KSTAR enabled by TRANSP

ORAL

Abstract

Model-based control and scenario development will be critical for reaching the highest possible performance of KSTAR and future fusion devices like ITER. Key to the model-based approach is the development of a hierarchy of models of varying fidelity, execution speed, and complexity, suited to different roles in the design process. These approaches are being actively developed for KSTAR to enable reaching many of the scientific goals of the device, including ramp-up optimization, non-inductive scenario optimization, and rotation and current profile control. For this work, both analytic and data-driven reduction methods have been used, with the TRANSP integrated modeling code serving as the foundation of the modeling hierarchy. Initial control algorithms and design tools have been developed that will enable accelerated offline and real-time model-based decision making in future experimental campaigns. The reduced models and TRANSP have been integrated with the control design software Simulink. This enables a hierarchy of models to be used to validate control algorithms prior to experiments, which will accelerate the commissioning process. Several recent results in these areas will be covered along with plans for future development and applications.

*This work was supported by the US Department of Energy Grant under contract number DE-AC02-09CH11466

Authors

  • Mark Boyer

    • PPPL
    • Princeton Plasma Physics Laboratory
  • Xingqiu Yuan

    • Princeton Plasma Physics Laboratory
  • Francesca Poli

    • Princeton Plasma Physics Lab
    • PPPL
    • Princeton Plasma Physics Laboratory
  • H.S. Kim

    • NFRI
    • National Fusion Research Institute
  • S.H. Hahn

    • NFRI
  • Eugenio Schuster

    • Lehigh University
  • Shira Morosohk

    • Lehigh University
  • S.A. Sabbagh

    • Columbia U.
    • Columbia University
  • Jae-heon Ahn

    • Columbia University
  • W. Wehner

    • General Atomics