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Fast crack propagation correlated with crack tip stress in 2D hexagonal atomic lattices

机译:快速裂纹传播与2D六边形原子晶格中的裂纹尖端应力相关

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We construct strip finite element models of 2D hexagonal atomic lattices with initial cracks to simulate dynamic crack propagation under mode displacement loading, in which the atomic bonds of 2D lattices are represented by Timoshenko beam elements. Series of 2D lattices, including graphene, hexagonal boron nitride and virtual graphene-like materials, are modeled by varying the nonlinear constitutive relations of beam elements. Branching and oscillation phenomena inevitably occur in fast-propagating crack when the crack speed reaches a critical value, which is closely related to the stress field near the crack tip. Our results reveal that the size of nominal plastic zone around crack front varies with different 2D lattices at both crack initiation and branching. The critical branching speeds change with material properties, and is correlated with the local stresses around the crack front. Further, we find that increases with the increment of conditional yield stresses of 2D lattices, but decreases with the increment of monotonously and linearly at crack branching. Therefore, nonlinear zone, formed by redistributed singular stresses at crack tip, dominates crack kinking or branching during fast crack propagation.
机译:我们用初始裂缝构造2D六角形原子格子的条带有限元模型,以模拟模式位移负载下的动态裂纹传播,其中2D格子的原子键由Timoshenko梁元件表示。通过改变梁元件的非线性本构关系,建模2D格子系列,包括石墨烯,六边形氮化硼和虚拟石墨烯样材料。当裂缝速度达到临界值时,分支和振荡现象在快速传播的裂缝中不可避免地发生,这与裂缝尖端附近的应力场密切相关。我们的研究结果表明,裂缝前沿的标称塑料区的大小在裂纹启动和分支中具有不同的2D格子。临界分支速度随材料特性而变化,并且与裂缝前沿周围的局部应力相关​​。此外,我们发现,随着2D格子的条件屈服应力的增量而增加,但随着在裂纹分支下单调和线性的递增而降低。因此,在裂纹尖端的重新分布奇异应力形成的非线性区域,在快速裂纹繁殖期间主导裂纹扭结或分支。

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