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Dislocation creation and void nucleation in FCC ductile metals under tensile loading: A general microscopic picture

机译:拉伸载荷作用下FCC延性金属中的位错产生和空核化:一般的显微图片

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摘要

Numerous theoretical and experimental efforts have been paid to describe and understand the dislocation and void nucleation processes that are fundamental for dynamic fracture modeling of strained metals. To date an essential physical picture on the self-organized atomic collective motions during dislocation creation, as well as the essential mechanisms for the void nucleation obscured by the extreme diversity in structural configurations around the void nucleation core, is still severely lacking in literature. Here, we depict the origin of dislocation creation and void nucleation during uniaxial high strain rate tensile processes in face-centered-cubic (FCC) ductile metals. We find that the dislocations are created through three distinguished stages: (i) Flattened octahedral structures (FOSs) are randomly activated by thermal fluctuations; (ii) The double-layer defect clusters are formed by self-organized stacking of FOSs on the close-packed plane; (iii) The stacking faults are formed and the Shockley partial dislocations are created from the double-layer defect clusters. Whereas, the void nucleation is shown to follow a two-stage description. We demonstrate that our findings on the origin of dislocation creation and void nucleation are universal for a variety of FCC ductile metals with low stacking fault energies.
机译:为了描述和理解位错和空核成核过程,已经进行了大量的理论和实验工作,这是对应变金属进行动态断裂建模的基础。迄今为止,文献中仍然严重缺乏关于位错产生过程中自组织原子集体运动的基本物理图景,以及由于空核核心周围结构构型的极端多样性所掩盖的空核形成的基本机制。在这里,我们描述了面心立方(FCC)韧性金属在单轴高应变率拉伸过程中位错的产生和空核的起源。我们发现,位错是通过三个不同的阶段产生的:(i)平坦的八面体结构(FOS)由热涨落随机激活; (ii)双层缺陷簇是通过在密排平面上自组织堆叠FOS形成的; (iii)形成了层错,并从双层缺陷簇中形成了肖克利局部位错。而空洞形核显示为遵循两个阶段的描述。我们证明我们对位错产生和空核成因的发现对于具有低堆垛层错能的各种FCC延性金属是普遍的。

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