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A Constitutive Relationship between Fatigue Limit and Microstructure in Nanostructured Bainitic Steels

机译:纳米贝氏体钢的疲劳极限与显微组织的本构关系

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摘要

The recently developed nanobainitic steels show high strength as well as high ductility. Although this combination seems to be promising for fatigue design, fatigue properties of nanostructured bainitic steels are often surprisingly low. To improve the fatigue behavior, an understanding of the correlation between the nanobainitic microstructure and the fatigue limit is fundamental. Therefore, our hypothesis to predict the fatigue limit was that the main function of the microstructure is not necessarily totally avoiding the initiation of a fatigue crack, but the microstructure has to increase the ability to decelerate or to stop a growing fatigue crack. Thus, the key to understanding the fatigue behavior of nanostructured bainite is to understand the role of the microstructural features that could act as barriers for growing fatigue cracks. To prove this hypothesis, we carried out fatigue tests, crack growth experiments, and correlated these results to the size of microstructural features gained from microstructural analysis by light optical microscope and EBSD-measurements. Finally, we were able to identify microstructural features that influence the fatigue crack growth and the fatigue limit of nanostructured bainitic steels.
机译:最近开发的纳米贝氏体钢显示出高强度和高延展性。尽管这种组合对于疲劳设计似乎是有希望的,但是纳米结构贝氏体钢的疲劳性能通常令人惊讶地低。为了改善疲劳行为,了解纳米贝氏体微观结构与疲劳极限之间的相关性至关重要。因此,我们预测疲劳极限的假设是,微观结构的主要功能并不一定完全避免疲劳裂纹的产生,而是微观结构必须提高减速或停止增长的疲劳裂纹的能力。因此,了解纳米贝氏体疲劳行为的关键是了解微结构特征的作用,这些微结构特征可作为增长疲劳裂纹的障碍。为了证明这一假设,我们进行了疲劳测试,裂纹扩展实验,并将这些结果与通过光学显微镜和EBSD测量从微结构分析获得的微结构特征的大小相关联。最后,我们能够识别出影响疲劳裂纹扩展和纳米贝氏体钢疲劳极限的微观结构特征。

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