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Numerical simulations of crack deflection at a twist-misoriented grain boundary between two ideally brittle crystals

机译:两种理想脆性晶体之间扭曲取向错误的晶界处裂纹变形的数值模拟

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Finite-element simulations are used to model crack propagation across twist-misoriented grain boundaries, which are an important source of toughness in lamellar microstructures such as TiAl. We consider a twist grain boundary (GB) between two adjacent grains, and assume that each grain has a single cleavage orientation. The cleavage planes and GB are modeled as a set of cohesive surfaces, and the crack path and effective toughness of the system are simulated using a dynamic finite-element method (FEM). As the crack approaches the GB under remote mode I loading, it is allowed to either deflect along the GB and/or induce the nucleation of a periodic array of cracks in the adjacent grain. The simulations predict (ⅰ) a critical toughness ratio between the GB and the cleavage planes for the crack to propagate into the adjacent grain; (ⅱ) an array of cracks in the GB and the twisted grain; (ⅲ) the macroscopic mode I toughness of the solid as a function of a generalized measure of crack length; and (ⅳ) the influence of GB toughness and twist misorientation on the effective toughness of the solid.
机译:有限元模拟用于模拟裂纹向错位取向的晶界的扩展,这是层状微结构(例如TiAl)韧性的重要来源。我们考虑两个相邻晶粒之间的扭曲晶粒边界(GB),并假设每个晶粒都具有单个分裂方向。劈裂面和GB被建模为一组内聚表面,并且使用动态有限元方法(FEM)模拟了系统的裂纹路径和有效韧性。当裂纹在远程模式I载荷下接近GB时,允许裂纹沿GB偏转和/或在相邻晶粒中引起裂纹的周期性阵列成核。模拟预测(ⅰ)GB和劈裂面之间的临界韧性比,以使裂纹传播到相邻晶粒中; (ⅱ)国标和扭曲晶粒中的一系列裂纹; (ⅲ)固体的宏观模式I韧性与裂纹长度的广义量度的函数; (ⅳ)GB韧性和扭曲取向不良对固体有效韧性的影响。

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