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Numerical investigations on crack propagation and crack branching in brittle solids under dynamic loading using bond-particle model

机译:用粘合粒子模型在动态载荷下脆性固体裂纹传播和裂纹分支的数值研究

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In this article, the bond-particle methodology (BPM) is applied to investigate the crack propagation and crack branching, which is belong to dynamic fracture instabilities, in PMMA brittle solids under dynamic loading. The microscopic parameters in BPM are first calibrated using the comparison with the previous experimental results not only in the field of qualitative analysis, but also in the field of quantitative analysis. The calibrating process illustrates that the selected microscopic parameters in BPM are suitable to effectively and accurately simulate dynamic fracture process in PMMA brittle solids subjected to dynamic loads. Then, the typical dynamic fracture behaviors of solids under dynamic loading are reproduced by BPM. Compared with the previous experimental and numerical results, the present numerical results are in good agreement with the existing ones not only in the field of qualitative analysis, but also in the field of quantitative analysis. Finally, the effects of dynamic loading magnitude, offset distance of the initial crack and initial crack length on dynamic fracture behaviors, including dynamic fracture patterns and critical crack propagation speed in brittle solids under dynamic loading are numerically investigated.
机译:在本文中,应用键颗粒方法(BPM)来研究裂纹繁殖和裂纹分支,其属于动态负载下的PMMA脆性固体。首先使用与先前的实验结果的比较首先校准BPM中的微观参数,不仅在定性分析领域,而且在定量分析领域。校准过程说明BPM中所选择的微观参数适合于在受到动态载荷的PMMA脆性固体中有效和精确地模拟动态断裂过程。然后,通过BPM再现动态载荷下固体的典型动态断裂行为。与先前的实验性和数值结果相比,目前的数值结果与现有的数值不仅在定性分析领域以及定量分析领域良好。最后,在动态裂缝行为上的动态加载幅度,初始裂缝和初始裂缝长度的偏移距离的影响,包括在动态载荷下的脆性固体中的动态断裂模式和临界裂纹传播速度。

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