Title :
Physically-Based Power-Level Control for Modular High Temperature Gas-Cooled Reactors
Author_Institution :
Inst. of Nucl. & New Energy Technol. (INET), Tsinghua Univ., Beijing, China
Abstract :
Because of its strong inherent safety, the modular high temperature gas-cooled nuclear reactor (MHTGR) has been regarded as the central part of the next generation nuclear plants (NGNPs). Power-level control is one of the key techniques which provide safe, stable and efficient operation for the MHTGRs. The physically-based regulation theory is definitely a promising trend of modern control theory and provides a control design method that can suppress the unstable part of the system dynamics and remain the stable part. Usually, the control law designed by the physically-based control theory has a simple form and high performance. Stimulated by this, a novel nonlinear dynamic output feedback power-level control is established in this paper for the MHTGR based upon its own dynamic features. This newly-built control strategy guarantees the globally asymptotic stability and provides a satisfactory transient performance through properly adjusting the feedback gains. Simulation results not only verify the correctness of the theoretical results but also illustrate the high control performance.
Keywords :
asymptotic stability; control system synthesis; feedback; fission reactor safety; gas cooled reactors; nonlinear control systems; nonlinear dynamical systems; nuclear power stations; control design method; feedback gains; globally asymptotic stability; modular high temperature gas-cooled reactors; next generation nuclear plants; nonlinear dynamic output feedback power-level control; physically-based power-level control theory; physically-based regulation theory; reactor safety; system dynamics; transient performance; Asymptotic stability; Control theory; Fuels; Helium; Inductors; Temperature control; Thermodynamics; Lyapunov function; modular high temperature gas-cooled reac-tor (MHTGR); next generation nuclear plant (NGNP); nonlinear power-level control; shifted-ectropy;
Journal_Title :
Nuclear Science, IEEE Transactions on
DOI :
10.1109/TNS.2012.2207126