Performance Assessment of Model-Based Optimal Feedforward and Feedback Current Profile Control in NSTX-U using the TRANSP Code

POSTER

Abstract

Active control of the toroidal current density profile is crucial to achieve and maintain high-performance, MHD-stable plasma operation in NSTX-U. A first-principles-driven, control-oriented model describing the temporal evolution of the current profile has been proposed earlier by combining the magnetic diffusion equation with empirical correlations obtained at NSTX-U for the electron density, electron temperature, and non-inductive current drives. A feedforward $+$ feedback control scheme for the requlation of the current profile is constructed by embedding the proposed nonlinear, physics-based model into the control design process. Firstly, nonlinear optimization techniques are used to design feedforward actuator trajectories that steer the plasma to a desired operating state with the objective of supporting the traditional trial-and-error experimental process of advanced scenario planning. Secondly, a feedback control algorithm to track a desired current profile evolution is developed with the goal of adding robustness to the overall control scheme. The effectiveness of the combined feedforward $+$ feedback control algorithm for current profile regulation is tested in predictive simulations carried out in TRANSP.

Authors

  • Z. Ilhan

    Lehigh University

  • W.P. Wehner

    Lehigh University

  • E. Schuster

    Lehigh University

  • Mark Boyer

    PPPL, Princeton Plasma Physics Laboratory

  • David A. Gates

    Princeton Plasma Physics Laboratory, PPPL, Princeton Plasma Physics Lab

  • Stefan Gerhardt

    Princeton Plasma Physics Laboratory, PPPL

  • Jonathan Menard

    PPPL, Princeton Plasma Physics Laboratory