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Anisotropic Micromechanical Creep Damage Model for Composite Materials: A Reduced-Order Approach

机译:复合材料的各向异性微机械蠕变损伤模型:降阶方法

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An anisotropic micromechanical model aimed at characterizing the response of composite material to creep is presented. The constitutive model of microconstituents is based on the Kachanov-Robotnov creep damage model for isotropic materials. An anisotropy of the model is introduced through homogenization, which derives macroscopic properties from micromechanical properties of microconstituents. A reduced-order micromechanical model is formulated to substantially reduce (up to several orders of magnitude) the number of unknowns in the microscopic problem compared to the direct homogenization approach. The reduced-order model is based on the reduced-order homogenization with eigen-strains, which describes the inelastic part of the microscopic displacement field by means of eigen-deformations. An adaptive algorithm has been devised to evaluate the time step needed to ensure solution accuracy. Numerical studies are presented to demonstrate the efficiency of the model.
机译:提出了各向异性微力学模型,旨在表征复合材料对蠕变的响应。微成分的本构模型基于各向同性材料的Kachanov-Robotnov蠕变损伤模型。通过均质化引入模型的各向异性,该均质性从微成分的微机械特性中获得宏观特性。制定了降阶微机械模型,与直接均质化方法相比,可以显着减少(最多几个数量级)微观问题中的未知数。降阶模型基于本征应变的降阶均化,该模型通过特征变形描述微观位移场的非弹性部分。已经设计了一种自适应算法来评估确保求解精度所需的时间步长。数值研究表明了该模型的有效性。

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