Title :
Multivariable robust control of the plasma rotational transform profile for advanced tokamak scenarios in DIII-D
Author :
Wenyu Shi ; Wehner, William ; Barton, Jay H. ; Boyer, Mark D. ; Schuster, Eugenio ; Moreau, Didier ; Luce, Tim C. ; Ferron, John R. ; Walker, Michael L. ; Humphreys, David A. ; Penaflor, B.G. ; Johnson, R.D.
Author_Institution :
Dept. of Mech. Eng. & Mech., Lehigh Univ., Bethlehem, PA, USA
Abstract :
The tokamak is a high order, distributed parameter, nonlinear system with a large number of instabilities. Therefore, accurate theoretical plasma models are difficult to develop. However, linear plasma response models around a particular equilibrium can be developed by using data-driven modeling techniques. This paper introduces a linear model of the rotational transform ι profile evolution based on experimental data from the DIII-D tokamak. The model represents the response of the ι profile to the electric field due to induction as well as to heating and current drive (H&CD) systems. The control goal is to use both induction and H&CD systems to regulate the plasma ι profile around a particular target profile. A singular value decomposition (SVD) of the 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 without input constraint that minimizes the reference tracking error and rejects external disturbances with minimal control energy. The feedback controller is then augmented with an anti-windup compensator, which keeps the given profile controller well-behaved in the presence of magnitude constraints in the actuators and leaves the nominal closed-loop unmodified when no saturation is present. Finally, computer simulations and experimental results illustrate the performance of the model-based profile controller.
Keywords :
Tokamak devices; closed loop systems; distributed parameter systems; multivariable control systems; nonlinear control systems; plasma flow; plasma instability; plasma simulation; plasma toroidal confinement; robust control; singular value decomposition; DIII-D tokamak; actuators; antiwindup compensator; computer simulations; control channels; current drive system; data-driven modeling techniques; electric field; external disturbances; heating system; high order distributed parameter nonlinear system; induction; instabilities; linear plasma response models; magnitude constraints; minimal control energy; mixed sensitivity control design problem; model-based profile controller performance; multivariable robust control; nominal closed-loop; plasma models; plasma profile; plasma rotational transform profile; rotational transform profile evolution; singular value decomposition; stabilizing feedback controller; steady state; tracking error; Actuators; Adaptive control; Steady-state; Tokamaks; Transfer functions;
Conference_Titel :
American Control Conference (ACC), 2012
Conference_Location :
Montreal, QC
Print_ISBN :
978-1-4577-1095-7
Electronic_ISBN :
0743-1619
DOI :
10.1109/ACC.2012.6315411