Disturbance rejection control for vibration suppression of piezoelectric laminated thin-walled structures

Thin-walled piezoelectric integrated smart structures are easily excited to vibrate by unknown disturbances. In order to design and simulate a control strategy, firstly, an electro-mechanically coupled dynamic finite element (FE) model of smart structures is developed based on first-order shear defo...

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Veröffentlicht in:Journal of sound and vibration 2014-02, Vol.333 (5), p.1209-1223
Hauptverfasser: Zhang, S.Q., Li, H.N., Schmidt, R., Müller, P.C.
Format: Artikel
Sprache:eng
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Zusammenfassung:Thin-walled piezoelectric integrated smart structures are easily excited to vibrate by unknown disturbances. In order to design and simulate a control strategy, firstly, an electro-mechanically coupled dynamic finite element (FE) model of smart structures is developed based on first-order shear deformation (FOSD) hypothesis. Linear piezoelectric constitutive equations and the assumption of constant electric field through the thickness are considered. Based on the dynamic FE model, a disturbance rejection (DR) control with proportional-integral (PI) observer using step functions as the fictitious model of disturbances is developed for vibration suppression of smart structures. In order to achieve a better dynamic behavior of the fictitious model of disturbances, the PI observer is extended to generalized proportional-integral (GPI) observer, in which sine or polynomial functions can be used to represent disturbances resulting in better dynamics. Therefore the disturbances can be estimated either by PI or GPI observer, and then the estimated signals are fed back to the controller. The DR control is validated by various kinds of unknown disturbances, and compared with linear-quadratic regulator (LQR) control. The results illustrate that the vibrations are better suppressed by the proposed DR control. •Developed a piezoelectric coupled FE model based on the FOSD hypothesis.•Developed a disturbance rejection control with PI and GPI observers.•The unknown disturbances can be estimated by either PI or GPI observer.•The estimated disturbances are fed back to the controller like measured signals.•Both free and forced vibrations are successfully suppressed by the present method.
ISSN:0022-460X
1095-8568
DOI:10.1016/j.jsv.2013.10.024