Optimal dynamic control of laminated adaptive structures using a higher order model and a genetic algorithm


Autoria(s): Moita, José Mateus Simões; Martins, Pedro G.; Soares, Cristovão M. Mota; Soares, Carlos A. Mota
Data(s)

13/02/2009

13/02/2009

2005

Formato

application/pdf

Identificador

2º. ECCOMAS Thematic Conference on Smart Structures and Materials. - Lisbon, 18-21 July 2005. - 17 p

http://hdl.handle.net/10400.1/114

Idioma(s)

eng

Publicador

Lisbon

Relação

http://www.bib.ualg.pt/artigos/DocentesEST/MOIOptimal.pdf

Direitos

openAccess

Palavras-Chave #Sensores #Elementos finitos #Actuadores #620 #Active control #Sensors and actuators #Adaptive structures #Optimization
Tipo

article

Resumo

This paper deals with a finite element formulation based on the classical laminated plate theory, for active control of thin plate laminated structures with integrated piezoelectric layers, acting as sensors and actuators. The control is initialized through a previous optimization of the core of the laminated structure, in order to minimize the vibration amplitude. Also the optimization of the patches position is performed to maximize the piezoelectric actuator efficiency. The genetic algorithm is used for these purposes. The finite element model is a single layer triangular plate/shell element with 24 degrees of freedom for the generalized displacements, and one electrical potential degree of freedom for each piezoelectric element layer, which can be surface bonded or embedded on the laminate. To achieve a mechanism of active control of the structure dynamic response, a feedback control algorithm is used, coupling the sensor and active piezoelectric layers. To calculate the dynamic response of the laminated structures the Newmark method is considered. The model is applied in the solution of an illustrative case and the results are presented and discussed.