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Predicting the influence of overload and loading mode on fatigue crack growth: A numerical approach using irreversible cohesive elements

机译:预测过载和加载方式对疲劳裂纹扩展的影响:使用不可逆粘性元素的数值方法

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This paper describes an irreversible cohesive zone model to simulate fatigue crack growth. The model includes a three-dimensional (3-D) cohesive law that follows a distinct loading/unloading path and a damage evolution mechanism that reflects a gradual degradation of cohesive properties of the material under the influence of cyclic loading. To overcome convergence difficulties arising from nonlinearity of the cohesive zone model, the stabilization technique and the viscous regularization of the constitutive law are employed. For high-cycle fatigue applications, a damage extrapolation scheme is adopted to reduce computational cost. The irreversible cohesive zone model is implemented in the finite element software ABAQUS through a user defined subroutine and is used to predict fatigue crack growth in a compact-tension-shear (CTS) specimen with an emphasis on the extrinsic influence of overload for different loading modes. The numerical results show good agreement with experimental records documented in the open literature and capture the essential features of fatigue crack growth for various loading conditions. This indicates that the irreversible cohesive zone model can serve both as an accurate and efficient tool for the prediction of fatigue crack growth.
机译:本文描述了一个不可逆的内聚区模型来模拟疲劳裂纹扩展。该模型包括遵循独特的加载/卸载路径的三维(3-D)内聚规律和反映循环加载影响下材料内聚特性逐渐降低的损伤演化机制。为了克服由于内聚区模型的非线性而引起的收敛困难,采用了稳定技术和本构律的粘性正则化方法。对于高周疲劳应用,采用损伤外推方案以降低计算成本。通过用户定义的子例程在有限元软件ABAQUS中实现了不可逆的内聚区模型,该模型用于预测紧凑拉伸剪切(CTS)试样中的疲劳裂纹扩展,并着重强调了过载对不同加载方式的外在影响。数值结果表明与公开文献中记录的实验记录吻合良好,并捕获了各种载荷条件下疲劳裂纹扩展的基本特征。这表明不可逆内聚区模型可以作为预测疲劳裂纹扩展的准确有效工具。

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