DocumentCode
635908
Title
Economic model predictive control of nonlinear two-time-scale systems
Author
Ellis, Matthew ; Heidarinejad, Mohsen ; Christofides, Panagiotis D.
Author_Institution
Dept. of Chem. & Biomol. Eng., Univ. of California, Los Angeles, Los Angeles, CA, USA
fYear
2013
fDate
25-28 June 2013
Firstpage
323
Lastpage
328
Abstract
We focus on the development of a Lyapunov-based economic model predictive control (LEMPC) method for nonlinear singularly perturbed systems in standard form arising naturally in the modeling of two-time-scale chemical processes. A composite control structure is proposed in which, a “fast” Lyapunov-based model predictive controller (LMPC) using a quadratic cost function which penalizes the deviation of the fast states from their equilibrium slow manifold and the corresponding manipulated inputs, is used to stabilize the fast dynamics while a two-mode “slow” LEMPC design is used on the slow subsystem that addresses economic considerations as well as desired closed-loop stability properties by utilizing an economic (typically non-quadratic) cost function in its formulation and possibly dictating a time-varying process operation. Through a multirate measurement sampling scheme, fast sampling of the fast state variables is used in the fast LMPC while slow-sampling of the slow state variables is used in the slow LEMPC. Appropriate stabilizability assumptions are made and suitable constraints are imposed on the proposed control scheme to guarantee the closed-loop stability and singular perturbation theory is used to analyze the closed-loop system.
Keywords
Lyapunov methods; closed loop systems; control system synthesis; nonlinear control systems; predictive control; sampling methods; singularly perturbed systems; stability; time-varying systems; LEMPC method; Lyapunov-based economic model predictive control method; closed-loop stability; closed-loop stability properties; closed-loop system; composite control structure; economic cost function; multirate measurement sampling scheme; nonlinear singularly perturbed systems; nonlinear two-time-scale systems; quadratic cost function; singular perturbation theory; stabilizability assumptions; time-varying process operation; two-time-scale chemical processes; Cost function; Economics; Manifolds; Predictive models; Process control; Stability analysis; Vectors;
fLanguage
English
Publisher
ieee
Conference_Titel
Control & Automation (MED), 2013 21st Mediterranean Conference on
Conference_Location
Chania
Print_ISBN
978-1-4799-0995-7
Type
conf
DOI
10.1109/MED.2013.6608741
Filename
6608741
Link To Document