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A Peridynamics-Based Micromechanical Modeling Approach for Random Heterogeneous Structural Materials

机译:基于随机动力学的异质结构材料的微力学建模方法

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摘要

This paper presents a peridynamics-based micromechanical analysis framework that can efficiently handle material failure for random heterogeneous structural materials. In contrast to conventional continuum-based approaches, this method can handle discontinuities such as fracture without requiring supplemental mathematical relations. The framework presented here generates representative unit cells based on microstructural information on the material and assigns distinct material behavior to the constituent phases in the random heterogenous microstructures. The framework incorporates spontaneous failure initiation/propagation based on the critical stretch criterion in peridynamics and predicts effective constitutive response of the material. The current framework is applied to a metallic particulate-reinforced cementitious composite. The simulated mechanical responses show excellent match with experimental observations signifying efficacy of the peridynamics-based micromechanical framework for heterogenous composites. Thus, the multiscale peridynamics-based framework can efficiently facilitate microstructure guided material design for a large class of inclusion-modified random heterogenous materials.
机译:本文提出了一种基于围动力学的微力学分析框架,可以有效地处理随机异质结构材料的材料破坏。与传统的基于连续谱的方法相比,此方法无需附加的数学关系即可处理不连续性,例如破裂。本文介绍的框架基于材料的微观结构信息生成代表性的晶胞,并将不同的材料行为分配给随机异质微观结构中的组成相。该框架基于周向动力学中的关键拉伸准则,结合了自发失效的开始/传播,并预测了材料的有效本构响应。当前的框架被应用于金属颗粒增强的水泥基复合材料。模拟的机械响应显示出与实验观察结果的极佳匹配,表明基于周动力学的微机械框架对于异质复合材料的功效。因此,基于多尺度绕动力学的框架可以有效地促进针对一大类包含物修饰的随机异质材料的微结构引导材料设计。

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