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首页> 外文期刊>Materials Science and Engineering. A, Structural Materials >Crack initiation in fatigue: experiments and three-dimensional dislocation simulations
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Crack initiation in fatigue: experiments and three-dimensional dislocation simulations

机译:疲劳中的裂纹萌生:实验和三维位错模拟

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摘要

In an attempt to better understand damage accumulation mechanisms in high cycle fatigue, a three-dimensional discrete dislocation simulation has been used both to simulate the dynamic evolution of the dislocation microstructure and the topography of the free surface where the plastic deformation is localised. The numerical tool is validated by comparing the dislocation structure obtained in double slip configuration to transmission electronic microscopy observation performed in 316L austenitic stainless steel. In the case of single slip loading conditions, the stress level obtained by the dislocation simulations are found to be consistent with results from the literature. After this validation stage, results of the dislocation simulations are analysed and a mechanism for the formation of intense slip bands is deduced. Finally, the computation of the relief of the free surface shows that extrusions and intrusions develop inside the bands, which demonstrates that plastic shear alone can give raise to crack initiation.
机译:为了更好地理解高循环疲劳中的损伤累积机理,已使用三维离散位错模拟来模拟位错微观结构的动态演变和塑性变形局部化的自由表面的形貌。通过将在双滑动结构中获得的位错结构与在316L奥氏体不锈钢中进行的透射电子显微镜观察进行比较,验证了数值工具的有效性。在单次滑移荷载条件下,通过位错模拟获得的应力水平与文献结果一致。在此验证阶段之后,对位错模拟的结果进行了分析,并推导了形成强烈滑移带的机制。最后,对自由表面起伏的计算表明,在条带内部出现了挤压和侵入,这表明单独的塑性剪切作用会引起裂纹萌生。

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