Title :
Modified internal model controller design based on OKID for multivariable system with time delays
Author :
Zhigang Zhou ; Linbo Xie
Author_Institution :
Key Lab. of Adv. Process Control for Light Ind. (Minist. of Educ.), Jiangnan Univ., Wuxi, China
fDate :
May 31 2014-June 2 2014
Abstract :
Most industrial processes have multiple time delays and due to the existence of these time delays and couplings within these systems, the control performances are usually not satisfied. In this paper, a modified internal model controller (MIMC) design procedure is employed to deal with this obstacle based on a model discretization and simplification method, together with a decoupling controller. First, the multivariable system with time delays is decoupled into subsystems. Then, a model reduction method of observer/Kalman filter identification (OKID) is used to simplify the complicated subsystems, without involving the common time delay factor. Based upon the discrete-time simplified models obtained by OKID method, the modified internal model controllers are designed to control the decoupled subsystems to track the set-point values. Finally, simulation results of a chemical process are given to illustrate the effectiveness of the proposed method.
Keywords :
Kalman filters; control system synthesis; delay systems; discrete time systems; multivariable systems; observers; reduced order systems; MIMC design procedure; OKID method; chemical process; decoupled subsystems; decoupling controller; discrete-time simplified models; industrial processes; model discretization; model reduction method; modified internal model controller design; multiple time delays; multivariable system; observer-Kalman filter identification; set-point values; time delay factor; Control systems; Delay effects; Laboratories; MIMO; Markov processes; Process control; Tuning; Decoupling control; MIMC; Multivariable system with time delay; OKID;
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.2014.6852470