DocumentCode :
3484976
Title :
Adaptive nonlinear burn control in tokamak fusion reactors
Author :
Boyer, Mark D. ; Schuster, Eugenio
Author_Institution :
Dept. of Mech. Eng. & Mech., Lehigh Univ., Bethlehem, PA, USA
fYear :
2012
fDate :
27-29 June 2012
Firstpage :
5043
Lastpage :
5048
Abstract :
There are many challenging control problems critical to the success of burning fusion plasma experiments like ITER. Among them, the most fundamental problem is the control of plasma density and temperature, referred to as the burn condition. While passively stable burn conditions exist, economic and technological constraints may require future commercial fusion reactors to operate at unstable burn conditions. The instability is due to the fact that at low temperatures, the rate of thermonuclear reaction increases as the plasma temperature rises. To stabilize such operating points, it will be essential to have active control of the system. Most existing burn control efforts use control techniques based on linearized models. Such models break down for large perturbations and must be designed around a particular operating point. In this work, we utilize a spatially averaged (zero-dimensional) nonlinear transport model to synthesize a nonlinear feedback controller that can stabilize the burn condition of a fusion reactor. The nonlinear controller guarantees stability of the plasma density and temperature for a much larger range of perturbations than linear designs and is augmented with an adaptive law that guarantees stability despite uncertainty in particle confinement time parameters. A zero-dimensional transport simulation study is presented to show the ability of the controller to bring the system back to the desired equilibrium from a given set of initial perturbations even when there is significant uncertainty in the confinement parameters.
Keywords :
Tokamak devices; adaptive control; combustion; feedback; fusion reactors; nonlinear control systems; plasma density; temperature control; ITER; active control; adaptive nonlinear burn control; burn condition; economic constraint; fusion plasma; linearized model; nonlinear feedback controller; nonlinear transport model; particle confinement time parameter; plasma density; technological constraint; temperature control; thermonuclear reaction; tokamak fusion reactor; zero-dimensional transport simulation; Adaptation models; Equations; Impurities; Mathematical model; Plasma temperature; Uncertainty;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
American Control Conference (ACC), 2012
Conference_Location :
Montreal, QC
ISSN :
0743-1619
Print_ISBN :
978-1-4577-1095-7
Electronic_ISBN :
0743-1619
Type :
conf
DOI :
10.1109/ACC.2012.6315530
Filename :
6315530
Link To Document :
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