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A hybrid phenomenological model for ferroelectroelastic ceramics. Part I: Single phased materials
Institution:1. Institute of Solid Mechanics, Technische Universität Dresden, 01062 Dresden, Germany;2. Fraunhofer Institute for Ceramic Technologies and Systems IKTS, Winterbergstraße 28, 01277 Dresden, Germany;1. State Key Laboratory of Electronic Thin Films and Integrated Devices, University of Electronic Science and Technology of China, Chengdu 610054, China;2. Institute of Electronic and Information Engineering, University of Electronic Science and Technology of China, Dongguan 518105, China;1. ENSTA-ParisTech, 828 Boulevard des Maréchaux, 91120 Palaiseau, France;2. Khalifa University of Science, Technology, and Research P.O. Box 127788, Abu Dhabi, United Arab Emirates;3. École Polytechnique-ParisTech 91128 Palaiseau Cedex, France;4. Northwestern Polytechnical University 127 Youyi West Rd, Xi?an, Shaanxi 710072, China
Abstract:In this part I of a two part series, a rate-independent hybrid phenomenological constitutive model applicable for single phased polycrystalline ferroelectroelastic ceramics is presented. The term “hybrid” refers to the fact that features from macroscopic phenomenological models and micro-electromechanical phenomenological models are combined. In particular, functional forms for a switching function and the Helmholtz free energy are assumed as in many macroscopic phenomenological models; and the volume fractions of domain variants are used to describe the internal material state, which is a key feature of micro-electromechanical phenomenological models. The approach described in this paper is an attempt to combine the advantages of macroscopic and micro-electromechanical material models. Its potential is demonstrated by comparison with experimental data for barium titanate. Finally, it is shown that the model for single phased materials cannot reproduce the material behavior of morphotropic PZT ceramics based on a realistic choice for the material parameters. This serves as a motivation for part II of the series, which deals with the modeling of morphotropic PZT ceramics taking into account the micro-structural specifics of these materials.
Keywords:Constitutive laws  Piezoelectricity  Ferroelectroelasticity
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