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首页> 外文期刊>International Journal of Fracture >Computational modeling of mixed-mode fatigue crack growth using extended finite element methods
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Computational modeling of mixed-mode fatigue crack growth using extended finite element methods

机译:扩展有限元方法的混合模式疲劳裂纹扩展计算模型

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摘要

The extended finite element method (XFEM) combined with a cyclic cohesive zone model (CCZM) is discussed and implemented for analysis of fatigue crack propagation under mixed-mode loading conditions. Fatigue damage in elastic-plastic materials is described by a damage evolution equation in the cohesive zone model. Both the computational implementation and the CCZM are investigated based on the modified boundary layer formulation under mixed-mode loading conditions. Computational results confirm that the maximum principal stress criterion gives accurate predictions of crack direction in comparison with known experiments. Further popular multi-axial fatigue criteria are compared and discussed. Computations show that the Findley criterion agrees with tensile stress dominant failure and deviates from experiments for shear failure. Furthermore, the crack propagation rate under mixed mode loading has been investigated systematically. It is confirmed that the CCZM can agree with experiments.
机译:讨论并实现了扩展有限元方法(XFEM)与循环内聚力区域模型(CCZM)的组合,并用于分析混合模式载荷条件下的疲劳裂纹扩展。弹塑性材料中的疲劳损伤由内聚区模型中的损伤演化方程描述。在混合模式载荷条件下,基于改进的边界层公式,研究了计算实现和CCZM。计算结果证实,与已知实验相比,最大主应力准则给出了裂纹方向的准确预测。比较并讨论了其他流行的多轴疲劳准则。计算表明,Findley准则与拉伸应力主导破坏一致,并且与剪切破坏实验背道而驰。此外,系统地研究了混合模式载荷下的裂纹扩展速率。可以肯定的是CCZM可以与实验相吻合。

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