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Multi-phase-field modeling of anisotropic crack propagation for polycrystalline materials

机译:多晶材料各向异性裂纹繁殖的多相场建模

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摘要

A new multi-phase-field method is developed for modeling the fracture of polycrystals at the microstructural level. Inter and transgranular cracking, as well as anisotropic effects of both elasticity and preferential cleavage directions within each randomly oriented crystal are taken into account. For this purpose, the proposed phase field formulation includes: (a) a smeared description of grain boundaries as cohesive zones avoiding defining an additional phase for grains; (b) an anisotropic phase field model; (c) a multi-phase field formulation where each preferential cleavage direction is associated with a damage (phase field) variable. The obtained framework allows modeling interactions and competition between grains and grain boundary cracks, as well as their effects on the effective response of the material. The proposed model is illustrated through several numerical examples involving a full description of complex crack initiation and propagation within 2D and 3D models of polycrystals.
机译:开发了一种新的多相现场方法,用于在微观结构水平下对多晶的裂缝进行建模。考虑到帧间和晶状体裂缝以及弹性和优先切割方向的各向异性效应。为此目的,所提出的相现场制剂包括:(a)晶界的涂抹描述,作为粘性区域避免定义晶粒的另外的相; (b)各向异性相场模型; (c)一种多相现场制剂,其中每个优先裂解方向与损坏(相场)变量相关联。所获得的框架允许建模相互作用和谷物之间的竞争,以及它们对材料有效响应的影响。所提出的模型通过若干数值示例来说明,涉及在多晶体的2D和3D模型内的复杂裂纹启动和传播的完整描述。

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