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Numerical Analysis of Fatigue Crack Growth Path and Life Predictions for Linear Elastic Material

机译:线性弹性材料疲劳裂纹生长路径和寿命预测的数值分析

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摘要

The main objective of this work was to present a numerical modelling of crack growth path in linear elastic materials under mixed-mode loadings, as well as to study the effect of presence of a hole on fatigue crack propagation and fatigue life in a modified compact tension specimen under constant amplitude loading condition. The ANSYS Mechanical APDL 19.2 is implemented for accurate prediction of the crack propagation paths and the associated fatigue life under constant amplitude loading conditions using a new feature in ANSYS which is the smart crack growth technique. The Paris law model has been employed for the evaluation of the mixed-mode fatigue life for the modified compact tension specimen (MCTS) with different configuration of MCTS under the linear elastic fracture mechanics (LEFM) assumption. The approach involves accurate evaluation of stress intensity factors (SIFs), path of crack growth and a fatigue life evaluation through an incremental crack extension analysis. Fatigue crack growth results indicate that the fatigue crack has always been attracted to the hole, so either it can only curve its path and propagate towards the hole, or it can only float from the hole and grow further once the hole has been lost. In terms of trajectories of crack propagation under mixed-mode load conditions, the results of this study are validated with several crack propagation experiments published in literature showing the similar observations. Accurate results of the predicted fatigue life were achieved compared to the two-dimensional data performed by other researchers.
机译:这项工作的主要目的是在混合模式载荷下呈现线性弹性材料的裂纹生长路径的数值模型,研究洞对改进的紧凑张力疲劳裂纹繁殖和疲劳寿命的影响在恒定幅度负载条件下标本。在使用作为智能裂纹增长技术的ANSYS中的新特征,实现了ANSYS机械APD119.2的精确预测恒定幅度负载条件下的恒定幅度负载条件。巴黎法律模型已用于评估用线性弹性断裂力学(LEFM)假设的MCT的不同构型进行改性紧凑张力标本(MCT)的混合模式疲劳寿命。该方法涉及通过增量裂缝延伸分析准确评估应力强度因子(SIFS),裂纹生长路径和疲劳寿命评估。疲劳裂纹增长结果表明,疲劳裂缝一直被孔所吸引,所以它只能弯曲其路径并朝向孔传播,或者它只能从孔中浮动并一旦孔丢失就会进一步生长。就混合模式负荷条件下裂纹繁殖的轨迹而言,该研究的结果验证了在文献中公布的若干裂纹繁殖实验,显示出类似的观察结果。与其他研究人员执行的二维数据相比,实现了预测疲劳寿命的准确结果。

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