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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Effects of Pore Position in Depth on Stress/Strain Concentration and Fatigue Crack Initiation
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Effects of Pore Position in Depth on Stress/Strain Concentration and Fatigue Crack Initiation

机译:孔深位置对应力/应变集中和疲劳裂纹萌生的影响

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The stress field around a pore was analyzed as a function of the pore position in depth in the surface of a linear elastic solid using finite element modeling. It was found that the pore depth dominated the stress field around the pore on the surface and that the maximum stress was increased sharply when the pore intercepted with the surface at its top. Given the applied nominal stress, the magnitude of the maximum main stress only depended on the relative depth of the pore, while the pore size affected the stress distribution in the surface. An elastic-plastic model was also used to account for the yielding effect in the region where stress was over the yield strength. The results still indicated a significant maximum stress concentration when the pore was just buried underneath the surface, but with a lowered value than that of the linear elastic model. These results were consistent with the experimental observations that fatigue cracks were preferably initiated from pores and particles, which were just intercepted at their top with the sample surface or just buried beneath the surface.
机译:使用有限元建模,分析了孔隙周围的应力场,该应力场是线性弹性固体表面中孔隙深度的函数。发现孔深度主导了表面上孔周围的应力场,并且当孔以其顶部表面截取时,最大应力急剧增加。给定施加的标称应力,最大主应力的大小仅取决于孔的相对深度,而孔径影响表面的应力分布。弹塑性模型也用于说明应力超过屈服强度的区域中的屈服效果。结果仍然表明,当孔刚埋在表面下时,最大应力集中明显,但其值低于线性弹性模型。这些结果与实验观察结果一致,即疲劳裂纹最好从孔和颗粒开始,这些孔和颗粒刚好在其顶部被样品表面拦截或仅埋在表面之下。

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