DocumentCode :
87170
Title :
Nonlinear Model-Predictive Control for Industrial Processes: An Application to Wastewater Treatment Process
Author :
Honggui Han ; Junfei Qiao
Author_Institution :
Coll. of Electron. Inf. & Control Eng., Beijing Univ. of Technol., Beijing, China
Volume :
61
Issue :
4
fYear :
2014
fDate :
Apr-14
Firstpage :
1970
Lastpage :
1982
Abstract :
Because of their complex behavior, wastewater treatment processes (WWTPs) are very difficult to control. In this paper, the design and implementation of a nonlinear model-predictive control (NMPC) system are discussed. The proposed NMPC comprises a self-organizing radial basis function neural network (SORBFNN) identifier and a multiobjective optimization method. The SORBFNN with concurrent structure and parameter learning is developed as a model identifier for approximating the online states of dynamic systems. Then, the solution of the multiobjective optimization is obtained by a gradient method which can shorten the solution time of optimal control problems. Moreover, the conditions for the stability analysis of NMPC are presented. Experiments reveal that the proposed control technique gives satisfactory tracking and disturbance rejection performance for WWTPs. Experimental results on a real WWTP show the efficacy of the proposed NMPC for industrial processes in many applications.
Keywords :
control engineering computing; gradient methods; learning (artificial intelligence); nonlinear control systems; optimal control; predictive control; radial basis function networks; self-organising feature maps; stability; tracking; wastewater treatment; NMPC system; SORBFNN identifier; WWTP; concurrent structure; disturbance rejection performance; dynamic systems; gradient method; industrial processes; model identifier; multiobjective optimization method; nonlinear model-predictive control system; optimal control problems; parameter learning; self-organizing radial basis function neural network identifier; stability analysis; tracking rejection performance; wastewater treatment process; Multiobjective optimization; nonlinear model-predictive control (NMPC); self-organizing radial basis function neural network (SORBFNN); wastewater treatment process (WWTP);
fLanguage :
English
Journal_Title :
Industrial Electronics, IEEE Transactions on
Publisher :
ieee
ISSN :
0278-0046
Type :
jour
DOI :
10.1109/TIE.2013.2266086
Filename :
6523075
Link To Document :
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