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Multi-Inclusion modeling of multiphase piezoelectric composites
Affiliation:1. MS2Discovery Interdisciplinary Research Institute, Wilfrid Laurier University,75 University Ave W, Waterloo, Ontario, Canada N2L 3C5;2. Department of Mechanical Engineering and Manufacturing, Universidad de Sevilla,Camino de los Descubrimientos s/n, Seville E-41092, Spain;3. Department of Civil and Environmental Engineering, University of Perugia,Via G Duranti 93, Perugia 06125, Italy;4. Department of Continuum Mechanics and Structural Analysis, Universidad de Sevilla,Camino de los Descubrimientos s/n, Seville E-41092, Spain
Abstract:Recent work on multifunctional materials has shown that a functionally graded interface between the fiber and matrix of a composite material can lead to improved strength and stiffness while simultaneously affording piezoelectric properties to the composite. However the modeling of this functional gradient is difficult through micromechanics models without discretizing the gradient into numerous layers of varying properties. In order to facilitate the design of these multiphase piezoelectric composites, accurate models are required. In this work, Multi-Inclusion models are extended to predict the effective electroelastic properties of multiphase piezoelectric composites. To evaluate the micromechanics modeling results, a three dimensional finite element model of a four-phase piezoelectric composite was created in the commercial finite element software ABAQUS with different volume fractions and aspect ratios. The simulations showed excellent agreement for multiphase piezoelectric composites, and thus the modeling approach has been applied to study the overall electroelastic properties of a composite with zinc oxide nanowires grown on carbon fibers embedded in the polymer. The results of this case study demonstrate the importance of the approach and show the system cannot be accurately modeled with a homogenized interphase.
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