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Phase-field modeling and simulation of fracture in brittle materials with strongly anisotropic surface energy

机译:具有强各向异性表面能的脆性材料的相场建模与模拟

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摘要

Crack propagation in brittle materials with anisotropic surface energy is important in applications involving single crystals, extruded polymers, or geological and organic materials. Furthermore, when this anisotropy is strong, the phenomenology of crack propagation becomes very rich, with forbidden crack propagation directions or complex sawtooth crack patterns. This problem interrogates fundamental issues in fracture mechanics, including the principles behind the selection of crack direction. Here, we propose a variational phase-field model for strongly anisotropic fracture, which resorts to the extended Cahn-Hilliard framework proposed in the context of crystal growth. Previous phase-field models for anisotropic fracture were formulated in a framework only allowing for weak anisotropy. We implement numerically our higher-order phase-field model with smooth local maximum entropy approximants in a direct Galerkin method. The numerical results exhibit all the features of strongly anisotropic fracture and reproduce strikingly well recent experimental observations.
机译:具有各向异性表面能的脆性材料中的裂纹扩展在涉及单晶,挤出聚合物或地质和有机材料的应用中很重要。此外,当该各向异性强时,裂纹扩展的现象变得非常丰富,具有禁止的裂纹扩展方向或复杂的锯齿形裂纹模式。这个问题询问了断裂力学中的基本问题,包括选择裂纹方向的原理。在这里,我们提出了一种强各向异性各向异性的变分相场模型,该模型采用了晶体生长过程中提出的扩展的Cahn-Hilliard框架。各向异性裂缝的先前相场模型仅在允许弱各向异性的框架内制定。我们在直接Galerkin方法中用光滑的局部最大熵近似值在数值上实现我们的高阶相场模型。数值结果显示出强各向异性裂缝的所有特征,并再现了最近的实验观察结果。

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