DocumentCode :
1282401
Title :
Spatial control of a large pressurized heavy water reactor
Author :
Tiwari, A.P. ; Banyopadhyay, B. ; Govindarajan, G.
Author_Institution :
Div. of Reactor Control, Bhabha Atomic Res. Centre, Bombay, India
Volume :
43
Issue :
4
fYear :
1996
fDate :
8/1/1996 12:00:00 AM
Firstpage :
2440
Lastpage :
2453
Abstract :
The paper presents tile design of a near optimal linear regulator for controlling xenon-induced spatial oscillations in a large, pressurized heavy water reactor. The nonlinear mathematical model of the reactor including xenon iodine dynamics is characterized by 56 state variables land 14 inputs. This nonlinear model is linearized over rated power of the reactor and then the singularly perturbed structure of the linear model is exploited to decompose it into a fast subsystem of 14th order and a slow subsystem of 42nd order. The slow subsystem regulator problem is formulated as a cheap control problem that entails the solving of regulator problems of a 28th-order submodel and a 14th-order submodel. The fast subsystem regulator problem is also solved, Separately designed regulators are finally combined to obtain the near-optimal composite control for the original 56th-order model
Keywords :
control systems; fission reactor core control; nuclear power stations; 14th-order submodel; 28th-order submodel; 56th-order model; PHWR; Xe-induced spatial oscillations; fast subsystem; large pressurized heavy water reactor; near optimal linear regulator; near-optimal composite control; nonlinear mathematical model; singularly perturbed structure; slow subsystem regulator problem; spatial control; state variables; xenon iodine dynamics; Delay effects; Inductors; Kinetic theory; Neutrons; Optimal control; Perturbation methods; Pressure control; Regulators; Shape; Xenon;
fLanguage :
English
Journal_Title :
Nuclear Science, IEEE Transactions on
Publisher :
ieee
ISSN :
0018-9499
Type :
jour
DOI :
10.1109/23.531794
Filename :
531794
Link To Document :
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