Published June 1989 | Version v1
Journal article

Observer theory applied to the optimal control of xenon concentration in a nuclear reactor

  • 1. Korea Advanced Inst. of Science and Technology, Seoul (Republic of Korea)

Description

The optimal control of xenon concentration in a nuclear reactor is posed as a linear quadratic regulator problem with state feedback control. Since it is not possible to measure the state variables such as xenon and iodine concentrations directly, implementation of the optimal state feedback control law requires estimation of the unmeasurable state variables. The estimation method used is based on the Luenberger observer. The set of the reactor kinetics equations is a stiff system. This singularly perturbed system arises from the interaction of slow dynamic modes (iodine and xenon concentrations) and fast dynamic modes (neutron flux, fuel and coolant temperatures).The singular perturbation technique is used to overcome this stiffness problem. The observer-based controller of the original system is effected by separate design of the observer and controller of the reduced subsystem and the fast subsystem.In particular, since in the reactor kinetics control problem analyzed in the study the fast mode dies out quickly, we need only design the observer for the reduced slow subsystem. The results of the test problems demonstrated that the state feedback control of the xenon oscillation can be accomplished efficiently and without sacrificing accuracy by using the observer combined with the singular perturbation method. (Author)

Additional details

Publishing Information

Journal Title
Journal of the Korean Nuclear Society
Journal Volume
21
Journal Issue
2
Series
J. Korean Nucl. Soc.
Journal Page Range
99-110
ISSN
0372-7327
CODEN
WJHKA

INIS

Country of Publication
Korea, Republic of
Country of Input or Organization
Korea, Republic of
INIS RN
21032216
Subject category
S22: GENERAL STUDIES OF NUCLEAR REACTORS;
Descriptors DEI
OPTIMAL CONTROL; PERTURBATION THEORY; REACTOR KINETICS
Descriptors DEC
CONTROL; KINETICS