Numerical simulations of dynamic fracture growth based on a cohesive zone model with microcracks

Liqiang Lin, R. Dhanawade, Xiaowei Zeng
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引用次数: 8

Abstract

AbstractA cohesive finite element model is employed to study the dynamic crack growth mechanisms in different materials. Dynamic crack propagation is analyzed numerically for a 2D square specimen with prescribed initial microcracks subjected to tensile loading conditions. In the cohesive zone model, the initial microcracks or defects are set up as traction-free interfacial surfaces in the specimen plane. The phenomena of microcrack initiation, nucleation, growth, coalescence, and propagation are captured from the simulation. The numerical simulation results have shown that the initially prescribed mircocrack or defect direction will result in a different macrocrack propagation path and crack branching path.
基于微裂纹内聚区模型的动态断裂扩展数值模拟
摘要采用内聚有限元模型研究了不同材料的动态裂纹扩展机制。对具有规定初始微裂纹的二维方形试样在拉伸加载条件下的动态裂纹扩展进行了数值分析。在黏聚区模型中,初始微裂纹或缺陷在试样平面上以无牵引力界面形式存在。模拟得到了微裂纹的萌生、成核、扩展、合并和扩展等过程。数值模拟结果表明,初始规定的微裂纹或缺陷方向将导致不同的宏观裂纹扩展路径和裂纹分支路径。
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