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Microstructure-based study of the crack initiation mechanisms in pure copper under high cycle multiaxial fatigue loading conditions

机译:高循环多轴疲劳负载条件下纯铜裂纹引发机制的基于微观结构的研究

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This paper aims to contribute in understanding the fatigue crack initiation mechanisms in metallic materials under high cycle multiaxial fatigue loadings. It addresses proportional and non-proportional multiaxial loading conditions with the analysis and observation of the cyclic plasticity development (mainly persistent slip band) until crack initiation (especially short cracks) on a pure oxygen-free high conductivity (OFHC) polycristalline copper. Observation and analysis techniques are based mainly on optical microscopy and scanning electron microscopy (SEM). It has been observed that the plastic slip multiplicity in grains seems more important for multiaxial loadings at a stress level corresponding to the same median fatigue strength at 106 cycles of the material. A multiaxial loading induces an additional multiplicity of the plastic slip in grains compared to uniaxial loading condition. For all the loading conditions investigated, although most of the grains exhibits single slip activated, analysis of the preferential crack initiation sites and modes show a higher probability of intragranular microcrack initiation in the multiple slip grains (with more than two slip systems activated). Most multiple slip grains and higher probability of crack initiation in these grains were observed especially for non-proportional multiaxial loadings. Finally, the effects of the biaxiality ratio and the phase shift on the fatigue crack initiation was highlighted.
机译:本文旨在有助于在高循环多轴疲劳载荷下理解金属材料中的疲劳裂纹启动机制。它通过分析和观察循环可塑性发育(主要持续滑动带)直至纯无氧高导电性(OFHC)多夹层铜的裂纹引发(特别是短裂缝)进行比例和非比例多轴加载条件。观察和分析技术主要基于光学显微镜和扫描电子显微镜(SEM)。已经观察到,在对应于材料的106个循环的相同中值疲劳强度的应力水平下,晶粒中的塑料滑移多重似乎更重要。与单轴负载条件相比,多轴负载诱导晶粒中的塑料净化的额外多重性。对于研究的所有装载条件,尽管大多数晶粒发挥着单滑动激活,优先裂纹引发位点和​​模式的分析表明,多个滑动晶粒中的腔内微裂纹引发的概率较高(具有两个以上的滑动系统)。特别是对于非比例多轴载荷,观察到大多数多个滑动晶粒和这些晶粒中的裂纹引发概率。最后,突出了双轴性比率和相移对疲劳裂纹引发的影响。

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