首页> 外文期刊>Fatigue & Fracture of Engineering Materials & Structures >Non-planar mixed-mode growth of initially straight-fronted surface cracks, in cylindrical bars under tension, torsion and bending, using the symmetric Galerkin boundary element method-finite element method alternating method
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Non-planar mixed-mode growth of initially straight-fronted surface cracks, in cylindrical bars under tension, torsion and bending, using the symmetric Galerkin boundary element method-finite element method alternating method

机译:使用对称Galerkin边界元法-有限元法交替法,对受拉,扭转和弯曲的圆柱体中初始直前表面裂纹进行非平面混合模式扩展

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In this paper, the stress intensity factor (SIF) variations along an arbitrarily developing crack front, the non-planar fatigue-crack growth patterns, and the fatigue life of a round bar with an initially straight-fronted surface crack, are studied by employing the 3D symmetric Galerkin boundary element method-finite element method (SGBEM-FEM) alternating method. Different loading cases, involving tension, bending and torsion of the bar, with different initial crack depths and different stress ratios in fatigue, are considered. By using the SGBEM-FEM alternating method, the SIF variations along the evolving crack front are computed; the fatigue growth rates and directions of the non-planar growths of the crack surface are predicted; the evolving fatigue-crack growth patterns are simulated, and thus, the fatigue life estimations of the cracked round bar are made. The accuracy and reliability of the SGBEM-FEM alternating method are verified by comparing the presently computed results to the empirical solutions of SIFs, as well as experimental data of fatigue crack growth, available in the open literature. It is shown that the current approach gives very accurate solutions of SIFs and simulations of fatigue crack growth during the entire crack propagation, with very little computational burden and human-labour cost. The characteristics of fatigue growth patterns of initially simple-shaped cracks in the cylindrical bar under different Modes Ⅰ, Ⅲ and mixed-mode types of loads are also discussed in detail.
机译:本文研究了沿任意发展的裂纹前沿的应力强度因子(SIF)的变化,非平面疲劳裂纹扩展模式以及具有初始笔直表面裂纹的圆棒的疲劳寿命,方法是: 3D对称Galerkin边界元法-有限元法(SGBEM-FEM)交替法。考虑了不同的载荷情况,包括杆的拉力,弯曲和扭转,初始裂纹深度和疲劳应力比不同。通过使用SGBEM-FEM交替方法,可以计算出沿裂纹扩展前沿的SIF变化。预测了裂纹表面的疲劳增长速度和非平面增长的方向;通过模拟疲劳裂纹扩展的发展规律,对裂纹圆棒的疲劳寿命进行了估算。通过将当前计算的结果与SIF的经验解以及疲劳裂纹扩展的实验数据进行比较,可以验证SGBEM-FEM交替方法的准确性和可靠性,这些文献可从公开文献中获得。结果表明,目前的方法给出了SIF的非常精确的解决方案,并且在整个裂纹扩展过程中模拟了疲劳裂纹扩展,而计算负担和人工成本却很少。还详细讨论了在不同Ⅰ,Ⅲ型和混合模式载荷作用下圆柱棒中初始简单形裂纹的疲劳增长规律。

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