DocumentCode :
1717256
Title :
A soft constraint adjustment method based on multi-parametric programming in steady-state target calculation for model predictive control
Author :
Lin Xiaozhong ; Xie Lei ; Su Hongye
Author_Institution :
State Key Lab. of Ind. Control Technol., Zhejiang Univ., Hangzhou, China
fYear :
2013
Firstpage :
4046
Lastpage :
4051
Abstract :
In order to track the result of local economic optimization, steady-state target calculation for Model Predictive Control should be implemented. When steady-state target calculation for Model Predictive Control becomes infeasible, soft constraints adjustment is involved to make it feasible. The traditional method does not consider that different soft constraints adjustment will affect final economic objective achievement, It is not guaranteed to achieve the optimal economic objective through soft constrains adjustment by choosing different weighted coefficient according to experience, a multi-parametric programming algorithm is proposed to divide the variation range of coefficients of the soft constraint into different regions. It can determine the most suitable soft constraints adjustment to achieve optimal economic objective by comparing economic objective value in the different region. Simulation results of typical control model of a heavy oil fractionator proposed by Royal Dutch/Shell Group showed the effectivity of the proposed algorithm.
Keywords :
linear programming; predictive control; Royal Dutch-Shell Group; economic optimization; model predictive control; multiparametric linear programming; multiparametric programming; soft constraint adjustment method; steady-state target calculation; weighted coefficient; Economics; Laboratories; Optimization; Predictive control; Programming; Steady-state; multi-parametric linear programming; soft constraint; steady-state target calculation;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Control Conference (CCC), 2013 32nd Chinese
Conference_Location :
Xi´an
Type :
conf
Filename :
6640128
Link To Document :
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