Abstract

AbstractUnderstanding of micromechanical mechanisms in functional materials with electro‐mechanical coupling is a highly demanding area of simulation technology and increasing interest has been shown in the last decades. Smart materials are characterized by microstructural properties, which can be changed by external stress and electric field stimuli, and hence find use as the active components in sensors and actuators. In this context, a key challenge is to combine models for microscopic electric domain evolution with variational principles of homogenization. We outline a variational‐based micro‐electro‐elastic model for the micro‐structural evolution of electric domains in ferroelectric ceramics. The micro‐to‐macro transition is performed on the basis of variational principles, extending purely mechanical formulations to coupled electro‐mechanics. We focus on an electro‐mechanical Boltzmann continuum on the macro‐scale with mechanical displacement and electric potential as primary variables. The material model on the micro‐scale is described by a gradient‐extended continuum formulation taking into account the polarization vector field and its gradient, see Landis [1] and Schrade et al. [2] for conceptually similar approaches. A crucial aspect of the proposed homogenization analysis is the derivation of appropriate boundary conditions on the surface of the representative volume element. In this work we derive stiff Dirichlet‐type, soft Neumann‐type, and periodic boundary constraints starting from a generalized Hill‐Mandel macrohomogeneity condition. Furthermore, we propose techniques to incorporate these boundary conditions in the variational principles of homogenization by means of Lagrange multiplier methods. (© 2012 Wiley‐VCH Verlag GmbH & Co. KGaA, Weinheim)

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