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首页> 外文期刊>Fatigue & fracture of engineering materials and structures >A computational strategy for damage-tolerant design of hollow shafts under mixed-mode loading condition
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A computational strategy for damage-tolerant design of hollow shafts under mixed-mode loading condition

机译:混合模式载荷条件下空心轴抗损伤设计的计算策略

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Three-dimensional numerical analyses, using the finite element method (FEM), have been adopted to simulate fatigue crack propagation in a hollow cylindrical specimen, under pure axial or combined axial-torsion loading conditions. Specimens, made of Al alloys B95AT and D16T, have been experimentally tested under pure axial load and combined in-phase constant amplitude axial and torsional loadings. The stress intensity factors (SIFs) have been calculated, according to the J-integral approach, along the front of a part through crack, initiated in correspondence of the outer surface of a hollow cylindrical specimen. The crack path is evaluated by using the maximum energy release rate (MERR) criterion, whereas the Paris law is used to calculate crack growth rates. A numerical and experimental comparison of the results is presented, showing a good agreement in terms of crack growth rates and paths.
机译:已采用有限元方法(FEM)进行了三维数值分析,以模拟在纯轴向或组合轴向扭转载荷条件下空心圆柱试样中的疲劳裂纹扩展。由铝合金B95AT和D16T制成的试样已在纯轴向载荷下进行了试验测试,并在同相恒定振幅轴向和扭转载荷下进行了测试。应力强度因子(SIF)已根据J积分方法沿零件的前部通过裂缝而计算,该裂缝是从空心圆柱试样的外表面开始的。裂纹路径通过最大能量释放率(MERR)准则进行评估,而巴黎定律则用于计算裂纹扩展率。给出了数值和实验结果的比较,显示了在裂纹扩展速率和路径方面的良好一致性。

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