Title :
Coprime factor anti-windup for systems with sensor saturation
Author :
Sofrony, J. ; Turner, M.C.
Author_Institution :
Dept. of Mechatron., Nat. Univ. of Colombia, Bogota, Colombia
fDate :
June 29 2011-July 1 2011
Abstract :
This paper considers the design of anti-windup compensators for linear systems with saturated sensor measurements. The architecture used for the anti-windup (AW) compensators resembles that commonly used in fault-detection and high performance control, rather than the traditional anti-windup approach. Stability of the system is examined and it transpires that the design problem reduces to choosing appropriately a coprime factorisation of the plant, and its associated Bezout complement. In turn, this new problem has a state-space interpretation which requires the choice of appropriate state-feedback and observer gains such that a certain nonlinear matrix inequality (NLMI) is feasible. Although this NLMI is not easily linearised, it is shown that, providing the plant under consideration is detectable and controllable, there always exists a choice of parameters such that this inequality is satisfied and therefore, there always exists an anti-windup compensator (of this particular form) such that the overall closed-loop system with sensor saturation is asymptotically stable.
Keywords :
asymptotic stability; closed loop systems; compensation; control nonlinearities; control system synthesis; linear systems; matrix decomposition; observers; state feedback; state-space methods; Bezout complement; NLMI; antiwindup compensator design; asymptotically stable system; closed-loop system; coprime factorisation; fault-detection; linear system; nonlinear matrix inequality; observer gain; saturated sensor measurement; sensor saturation; state-feedback; state-space problem; system stability; Actuators; Asymptotic stability; Equations; Linear matrix inequalities; Linear systems; Stability criteria; ℒ2 gain; Anti-windup; sensor saturation;
Conference_Titel :
American Control Conference (ACC), 2011
Conference_Location :
San Francisco, CA
Print_ISBN :
978-1-4577-0080-4
DOI :
10.1109/ACC.2011.5990941