DocumentCode
2904732
Title
A nonlinear control design approach based on multi-linear models
Author
Palizban, H.A. ; Safavi, A.A. ; Romagnoli, J.A.
Author_Institution
Dept. of Chem. Eng., Sydney Univ., NSW, Australia
Volume
5
fYear
1997
fDate
4-6 Jun 1997
Firstpage
3490
Abstract
A relatively simple method which is however capable of controlling some complex nonlinear processes using multiple models is presented. The idea is based on developing local linear models for the whole operating range of the process being controlled. First different operating zones where the nonlinear process can be approximated with linear models are found. Then the nonlinear plant is approximated by a set of local models where each model is valid for a small operating region. The models are smoothly connected together to form a global continuous model using validity functions. Once the global model is developed, it is embedded within a linear control framework and a global control system for the whole operating range of the process is designed. Simulation results of the applications of this approach for the modeling and control of a typical chemical engineering process are presented. The performance of the control system is illustrated for different operating conditions which show the capability of the technique for controlling nonlinear processes
Keywords
chemical technology; control system synthesis; nonlinear control systems; process control; chemical engineering process; complex nonlinear processes; global continuous model; linear control framework; local models; multi-linear models; nonlinear control design approach; Chemical engineering; Control design; Control system synthesis; Control systems; Laboratories; Linear approximation; Nonlinear control systems; Optimal control; Predictive models; Process control;
fLanguage
English
Publisher
ieee
Conference_Titel
American Control Conference, 1997. Proceedings of the 1997
Conference_Location
Albuquerque, NM
ISSN
0743-1619
Print_ISBN
0-7803-3832-4
Type
conf
DOI
10.1109/ACC.1997.612117
Filename
612117
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