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Obstacles and sources in dislocation dynamics: Strengthening and statistics of abrupt plastic events in nanopillar compression

机译:位错动力学中的障碍和来源:纳米柱压缩中突然塑性事件的增强和统计

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摘要

Mechanical deformation of nanopillars displays features that are distinctly different from the bulk behavior of single crystals: Yield strength increases with decreasing size and plas- tic deformation comes together with strain bursts or/and stress drops (depending on load- ing conditions) with a very strong sensitivity of the stochasticity character on material preparation and conditions. The character of the phenomenon is standing as a paradox: While these bursts resemble the universal, widely independent of material conditions, noise heard in bulk crystals using acoustic emission techniques, they emerge primarily with decreasing size and increasing strength in nanopillars. In this paper, we present a re- alistic but minimal discrete dislocation plasticity model for the elasto-plastic deformation of nanopillars that is consistent with the main experimental observations of nano pillar compression experiments and provides a clear insight to this paradox. With increasing sample size, the model naturally transitions between the typical progressive behavior of nanopillars to a behavior that resembles evidence for bulk mesoscale plasticity. The com- bination of consistent strengthening, large flow stress fluctuations and critical avalanches is only observed in the depinning regime where obstacles are much stronger than disloca- tion sources; in contrast, when dislocation source strength becomes comparable to obsta- cle barriers, then yield strength size effects are absent but plasticity avalanche dynamics is strongly universal, across sample width and aspect-ratio scales. Finally, we elucidate the mechanism that leads to the connection between depinning and size effects in our model dislocation dynamics. In this way, our model builds a way towards unifying statistical as- pects of mechanical deformation across scales.
机译:纳米柱的机械变形表现出的特性与单晶的整体行为有明显不同:屈服强度随尺寸的减小而增加,塑性变形与应变破裂或/和应力下降(取决于载荷条件)一起出现,非常大。随机性对材料制备和条件的敏感度很高。这种现象的特点是自相矛盾:虽然这些脉冲类似于普遍的,与材料条件无关的,使用声发射技术在块状晶体中听到的噪声,但它们的出现主要是随着纳米柱尺寸的减小和强度的增加。在本文中,我们为纳米柱的弹塑性变形提供了一个真实的但最小的离散位错可塑性模型,该模型与纳米柱压缩实验的主要实验观察结果一致,并为这种悖论提供了清晰的见识。随着样本数量的增加,该模型自然会在纳米柱的典型渐进行为与类似于本体中尺度可塑性证据之间的行为之间过渡。持续的强化,较大的流动应力波动和严重的雪崩的结合仅在钉扎状态下才能观察到,在钉扎状态下障碍物比位错源要坚固得多。相反,当位错源的强度变得与障碍物相当时,则不存在屈服强度大小的影响,但可塑性雪崩动力学在整个样品宽度和纵横比范围内都非常普遍。最后,我们在模型位错动力学中阐明了导致固定和尺寸效应之间联系的机制。通过这种方式,我们的模型为统一跨尺度机械变形的统计方面奠定了基础。

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