کد مقاله | کد نشریه | سال انتشار | مقاله انگلیسی | نسخه تمام متن |
---|---|---|---|---|
802871 | 1467488 | 2012 | 18 صفحه PDF | دانلود رایگان |

This paper investigates the electromechanical properties of piezoelectric structural fiber (PSF) composites with the combined micromechanics analysis and finite element modeling. The active piezoelectric materials are widely used due to their high stiffness, voltage-dependent actuation capability, and broadband electro-mechanical interactions. However, the fragile nature of piezoceramics limits their sensing and actuating applications. In this study, the active PSF composites were made by deploying the longitudinally poled PSFs into a polymer matrix. The PSF itself consists a silicon carbide (SiC) or carbon core fiber as reinforcement to the fragile piezoceramic shell. To predict the electromechanical properties of PSF composites, the micromechanics analysis was firstly conducted with the dilute approximation model and the Mori–Tanaka approach. The extended Rule of Mixtures was also applied to accurately predict the transverse properties by considering the effects of microstructure including inclusion sizes and geometries. The piezoelectric finite element (FE) modeling was developed with the ABAQUS software to predict the detailed mechanical and electrical field distribution within a representative volume element (RVE) of PSF composites. The simulated energy or deformation under imposed specific boundary conditions was used to calculate each individual property with constitutive laws. The comparison between micromechanical analysis and finite element modeling indicates the combination of the dilute approximation model, the Mori–Tanaka approach and the extended Rule of Mixtures can favorably predict the electromechanical properties of three-phase PSF composites.
► Dilute approximation model with Mori–Tanaka approach combined models were formulated.
► Extended Rule of Mixture was used for transverse modulus.
► Electromechanical property of piezoelectric structural fiber composite was studied.
► Finite element analysis of property was conducted with specific boundary condition.
► Comparison study shows the accuracy of micromechanics and finite element analysis.
Journal: Mechanics of Materials - Volume 53, October 2012, Pages 29–46