Title :
Output feedback PD power-level control for modular high temperature gas-cooled reactors
Author_Institution :
Inst. of Nucl. & New Energy Technol., Tsinghua Univ., Beijing, China
fDate :
May 31 2014-June 2 2014
Abstract :
Due to its inherent safety feature, the modular high temperature gas-cooled reactor (MHTGR) has been seen as one of the best candidates in building next generation nuclear plants (NGNPs). Since the MHTGR dynamics has high nonlinearity, it is necessary to develop nonlinear power-level controller which is not only beneficial to the safe, stable, efficient and autonomous operation of the MHTGR but also easy to be implemented practically. In this paper, based on the concept of shifted-ectropy and the physically-based control design approach, it is proved theoretically that the simple proportional-differential (PD) output-feedback power-level control provides globally asymptotic closed-loop stability. Numerical simulation results verify the theoretical results and show the influence of the controller parameters to the dynamic response.
Keywords :
PD control; closed loop systems; dynamic response; feedback; gas cooled reactors; nonlinear control systems; nuclear power stations; stability; MHTGR dynamics; NGNP; PD control; asymptotic closed-loop stability; dynamic response; modular high temperature gas-cooled reactor; next generation nuclear plants; nonlinear power-level controller; physically-based control design approach; proportional-differential output-feedback power-level control; shifted-ectropy concept; Control design; Helium; Inductors; Kinetic theory; Neutrons; PD control; Temperature control; Closed-loop stability; Modular high temperature gas-cooled reactor (MHTGR); Power-level control;
Conference_Titel :
Control and Decision Conference (2014 CCDC), The 26th Chinese
Conference_Location :
Changsha
Print_ISBN :
978-1-4799-3707-3
DOI :
10.1109/CCDC.2014.6853035