Title :
First-principles-driven control of the rotational transform profile in high performance discharges in the DIII-D tokamak
Author :
Wenyu Shi ; Barton, Justin E. ; Wehner, William ; Boyer, Mark D. ; Kritz, Arnold ; Schuster, Eugenio
Author_Institution :
Dept. of Mech. Eng. & Mech., Lehigh Univ., Bethlehem, PA, USA
Abstract :
In this work, a first-principles-driven, control-oriented, nonlinear, partial-differential-equation model of the poloidal flux profile evolution is utilized to design a feedback control algorithm to regulate the rotational transform profile in the DIII-D tokamak. The control goal is to regulate the rotational transform profile, which is related to the poloidal flux profile, around a particular target profile. A singular value decomposition of the nominal plasma model at steady state is carried out to decouple the system and identify the most relevant control channels. A mixed sensitivity H∞ control design problem is formulated to synthesize a stabilizing feedback controller to minimize the reference tracking error with minimal control energy. Simulations based on the first-principles-driven model show that the H∞ controller is capable of regulating the system around the target i profile in the presence of disturbances. When compared to a previously designed data-driven model-based controller, the proposed first-principles-driven model-based controller shows potential for improving the control performance.
Keywords :
H∞ control; MIMO systems; Tokamak devices; control system synthesis; discharges (electric); feedback; nonlinear control systems; nonlinear differential equations; partial differential equations; physical instrumentation control; plasma flow; plasma toroidal confinement; singular value decomposition; stability; DIII-D tokamak; control-oriented differential-equation model; data-driven model-based controller; feedback control algorithm; first-principles-driven control; first-principles-driven model-based multiinput-multioutput controller; high performance discharges; minimal control energy; mixed sensitivity H∞ control design problem; nominal plasma model; nonlinear-differential-equation model; partial-differential-equation model; poloidal flux profile evolution; reference tracking error minimization; rotational transform profile; singular value decomposition; stabilizing feedback controller; target t-profile; Feedforward neural networks; Mathematical model; Plasmas; Sensitivity; Steady-state; Transfer functions; Transforms;
Conference_Titel :
Decision and Control (CDC), 2013 IEEE 52nd Annual Conference on
Conference_Location :
Firenze
Print_ISBN :
978-1-4673-5714-2
DOI :
10.1109/CDC.2013.6760529