论文标题

通过原位HR-EBSD分析和脱位密度模拟研究的压缩微柱的微观结构演变

Microstructure evolution of compressed micropillars investigated by in situ HR-EBSD analysis and dislocation density simulations

论文作者

Zoller, Kolja, Kalácska, Szilvia, Ispánovity, Péter Dusán, Schulz, Katrin

论文摘要

随着系统尺寸的减小,金属的机械性能和主要变形机制发生变化。对于较大的尺度,观察到散装行为的特征是保存和变形过程中的位错含量显着增加,而在亚微米尺度上,观察到非常局部的错位活性以及脱位饥饿。在过渡制度中,尚不清楚如何构建错位内容。这种位错存储状态及其基本的物理机制仍然是一个开放的研究领域。在本文中,具有$ \ langle1 \,1 \,0 \ rangle $ crystal Arientationation和$ 1 $ 1 $至$ 10 \,μ\ mathrm {m Mathrm {m} $的微晶铜微柱的微观结构演变在压缩载荷下分析。提出了实验原位HR-EBSD测量以及3D连续脱位动力学模拟。实验结果提供了对连续载荷过程中位错结构的材料变形和演变的见解。考虑到位错密度进化的模拟,考虑到脱位动力学,相互作用和反应,可以直接访问这些数量的位错密度进化。结果表明,表明材料的塑性变形是如何发生的,以及如何涉及不同的滑动系统。一个核心发现是,在加载过程中,越来越多的GND密度存储在系统中,该密度主要位于不主要负责塑料滑动的滑移系统上。这可能是所考虑的尺寸制度的一个特征,它对进一步的位错网络形成和对塑料硬化的相应贡献有直接影响。

With decreasing system sizes, the mechanical properties and dominant deformation mechanisms of metals change. For larger scales, bulk behavior is observed that is characterized by a preservation and significant increase of dislocation content during deformation whereas at the submicron scale very localized dislocation activity as well as dislocation starvation is observed. In the transition regime it is not clear how the dislocation content is built up. This dislocation storage regime and its underlying physical mechanisms are still an open field of research. In this paper, the microstructure evolution of single crystalline copper micropillars with a $\langle1\,1\,0\rangle$ crystal orientation and varying sizes between $1$ to $10\,μ\mathrm{m}$ is analysed under compression loading. Experimental in situ HR-EBSD measurements as well as 3d continuum dislocation dynamics simulations are presented. The experimental results provide insights into the material deformation and evolution of dislocation structures during continuous loading. This is complemented by the simulation of the dislocation density evolution considering dislocation dynamics, interactions, and reactions of the individual slip systems providing direct access to these quantities. Results are presented that show, how the plastic deformation of the material takes place and how the different slip systems are involved. A central finding is, that an increasing amount of GND density is stored in the system during loading that is located dominantly on the slip systems that are not mainly responsible for the production of plastic slip. This might be a characteristic feature of the considered size regime that has direct impact on further dislocation network formation and the corresponding contribution to plastic hardening.

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