Ma. Trindade et al., Parametric analysis of the vibration control of sandwich beams through shear-based piezoelectric actuation, J IN MAT SY, 10(5), 1999, pp. 377-385
Citations number
19
Categorie Soggetti
Material Science & Engineering
Journal title
JOURNAL OF INTELLIGENT MATERIAL SYSTEMS AND STRUCTURES
This paper presents a comparative numerical analysis of shear and extension
actuation mechanisms for the bending vibrations control of sandwich beams.
The extension actuation mechanism denotes the use of through-thickness pol
ed piezoelectric actuators bonded on the surfaces of the structure such tha
t, when submitted to a through-thickness applied electric potential, these
actuators produce axial stresses or strains. The shear actuation mechanism,
in the contrary, is obtained through an embedded longitudinally poled piez
oelectric actuator that, subjected to the same electric potential, produces
shear stresses or strains. Theoretical and finite element models of a sand
wich beam, capable of dealing with both mechanisms, are presented. The mode
ls are based on Bernoulli-Euler assumptions for the surface layers and Timo
shenko ones for the core. An optimal state feedback control Law is used to
maximize the damping of the first four natural modes of the sandwich beam.
The influence of important parameters variation, such as: actuator thicknes
s and structure/actuator modulus ratio, on the performance of the control s
ystem is analyzed under limited input voltage and induced beam tip transver
se deflection. Results suggest that shear actuators can be more effective t
han extension ones for the control of bending vibrations.