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Strain rate effects on the mechanical response in multi- and single-crystalline Cu micropillars: Grain boundary effects

机译:应变速率对多晶和单晶铜微柱力学响应的影响:晶界效应

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摘要

Homogeneous interfaces like grain boundaries (GBs) play an important role in crystalline plasticity as they often serve as obstacles for dislocation motion, as well as dislocation sources/sinks. In the present work, microcompression experiments were carefully performed to uncover the effects of GBs on mechanical response of submicron-sized Cu multi-crystalline (MC) micropillars (containing several grains) by comparing with the single-crystalline (SC) samples at different strain rates. It is clearly demonstrated that, while the SC pillars suffer from intermittent and stochastic strain bursts, introducing GBs appropriately into the SC pillars can dramatically improve the smoothness of their plastic flow and enhance their strength and strain rate sensitivity (SRS), especially at greater strain rates. The presence of GBs can significantly suppress the strain bursts observed in the MC/SC Cu micropillars, which is simply quantified by considering the size and strain rate related-capacity of dislocation absorption by the GBs. These findings provide deep insights into the controllability of plastic deformation of small volume materials. The possible transition of strengthening mechanisms with plastic strain is also highlighted.
机译:诸如晶界(GBs)之类的均质界面在晶体可塑性中起重要作用,因为它们经常成为位错运动以及位错源/沉的障碍。在当前工作中,通过与不同应变下的单晶(SC)样品进行比较,精心进行了微压缩实验,以揭示GBs对亚微米级Cu多晶(MC)微柱(包含多个晶粒)的机械响应的影响。费率。可以清楚地证明,尽管SC支柱遭受间歇性的和随机的应变破裂,但将GB适当地引入SC支柱中可以极大地改善其塑性流动的平滑度,并提高其强度和应变率敏感性(SRS),尤其是在更大的应变下费率。 GB的存在可以显着抑制在MC / SC Cu微型桩中观察到的应变爆发,这可以通过考虑GB的位错吸收的大小和应变速率相关的容量来简单地量化。这些发现为小体积材料塑性变形的可控制性提供了深刻的见解。还强调了塑性应变可能会增强机制。

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