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Laser shock peening induced residual stresses and the effect on crack propagation behavior

机译:激光冲击喷丸引起的残余应力及其对裂纹扩展行为的影响

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摘要

Laser shock peening (LSP), as a powerful surface engineering technique to improve the fatigue performance of metallic components, requires elaborately designed process pattern to maximize its benefits. In this study, a numerical method, combining finite element method (FEM) and residual stress intensity factor (SIF) analysis, was used to predict the effect of LSP pattern on the crack propagation behavior of the compact tension (CT) samples. The 3D FEM model was fully benchmarked using the mesh sensitivity study and time step calibration. The model was further validated using residual stresses data measured using the X-ray diffraction method. After that, the simulation of LSP of CT sample was conducted using five representative cases, and the corresponding residual stress fields were obtained. A mixed-mode SIF model was then applied to evaluate the effect of the residual stress field in resisting crack propagation. Based on the calculated residual SIFs from different LSP patterns, the best LSP patterns in terms slowing crack propagation speed were identified. To validate the simulation results, LSP experiments were conducted on CT samples using two identified LSP patterns and the crack growth rates were tested. The experiment results were consistent with the numerical prediction. This work demonstrates that FEM model combining residual SIF analysis can be applied to design appropriate LSP patterns on components with complex geometries.
机译:激光冲击喷丸(LSP)作为一种强大的表面工程技术,可以改善金属部件的疲劳性能,它需要精心设计的工艺模式才能最大限度地发挥其优势。在这项研究中,将有限元方法(FEM)和残余应力强度因子(SIF)分析相结合的数值方法用于预测LSP形态对紧凑拉伸(CT)样品的裂纹扩展行为的影响。 3D FEM模型使用网格灵敏度研究和时间步长校准进行了完全基准测试。使用通过X射线衍射法测量的残余应力数据进一步验证了该模型。此后,利用5个典型案例对CT样品的LSP进行了模拟,并获得了相应的残余应力场。然后,将混合模式SIF模型应用于评估残余应力场在抵抗裂纹扩展方面的作用。基于从不同LSP模式计算出的残余SIF,确定了减慢裂纹扩展速度的最佳LSP模式。为了验证模拟结果,使用两个确定的LSP模式对CT样品进行了LSP实验,并测试了裂纹扩展速率。实验结果与数值预测吻合。这项工作表明,结合剩余SIF分析的FEM模型可用于在具有复杂几何形状的组件上设计适当的LSP模式。

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