DocumentCode
873514
Title
Hybrid damping of smart, functionally graded plates using piezoelectric, fiber-reinforced composites
Author
Ray, Manas C.
Author_Institution
Dept. of Mech. Eng., Indian Inst. of Technol., Kharagpur
Volume
53
Issue
11
fYear
2006
fDate
11/1/2006 12:00:00 AM
Firstpage
2152
Lastpage
2165
Abstract
This paper deals with the investigation of active, constrained layer damping (ACLD) of smart, functionally graded (FG) plates. The constraining layer of the ACLD treatment is considered to be made of a piezoelectric, fiber-reinforced composite (PFRC) material with enhanced effective piezoelectric coefficient that quantifies the in-plane actuating force due to the electric field applied across the thickness of the layer. The Young´s modulus and the mass density of the FG plates are assumed to vary exponentially along the thickness of the plate, and the Poisson´s ratio is assumed to be constant over the domain of the plate. A finite-element model has been developed to model the open-loop and closed-loop dynamics of the FG plates integrated with two patches of ACLD treatment. The frequency response of the plates revealed that the active patches of ACLD treatment significantly improve the damping characteristics of the FG plates over the passive damping. Emphasis has been placed on investigating the effect of variation of piezoelectric fiber angle in the constraining layer of the ACLD treatment on the attenuating capability of the patches. The analysis also revealed that the activated patches of the ACLD treatment are more effective in controlling the vibrations of FG plates when the patches are attached to the surface of the FG plates with minimum stiffness than when they are attached to the surface of the same with maximum stiffness
Keywords
Poisson ratio; Young´s modulus; damping; fibre reinforced composites; finite element analysis; functionally graded materials; intelligent materials; piezoelectric materials; piezoelectricity; plates (structures); Poisson´s ratio; Young´s modulus; active constrained layer damping; closed-loop dynamics; electric field; finite-element model; hybrid damping; mass density; open-loop dynamics; piezoelectric coefficient; piezoelectric fiber angle; piezoelectric fiber-reinforced composites; smart functionally graded plates; vibrations; Composite materials; Damping; Delamination; Flexible structures; Intelligent sensors; Intelligent structures; Piezoelectric actuators; Piezoelectric materials; Surface treatment; Vibration control;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2006.155
Filename
4037223
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