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微米尺度变形:应变突发与声发射的耦合原位研究

Micron-Scale Deformation: A Coupled In Situ Study of Strain Bursts and Acoustic Emission.

作者信息

Hegyi Ádám István, Ispánovity Péter Dusán, Knapek Michal, Tüzes Dániel, Máthis Kristián, Chmelík František, Dankházi Zoltán, Varga Gábor, Groma István

机构信息

1Department of Materials Physics,Eötvös Loránd University,Pázmány Péter sétány 1/a,H-1117 Budapest,Hungary.

2Faculty of Mathematics and Physics,Department of Physics of Materials,Charles University in Prague,Ke Karlovu 5,121 16 Prague 2,Czech Republic.

出版信息

Microsc Microanal. 2017 Dec;23(6):1076-1081. doi: 10.1017/S1431927617012594. Epub 2017 Oct 17.

DOI:10.1017/S1431927617012594
PMID:29037270
Abstract

Plastic deformation of micron-scale crystalline materials differs considerably from bulk samples as it is characterized by stochastic strain bursts. To obtain a detailed picture of the intermittent deformation phenomena, numerous micron-sized specimens must be fabricated and tested. An improved focused ion beam fabrication method is proposed to prepare non-tapered micropillars with excellent control over their shape. Moreover, the fabrication time is less compared with other methods. The in situ compression device developed in our laboratory allows high-accuracy sample positioning and force/displacement measurements with high data sampling rates. The collective avalanche-like motion of the dislocations is observed as stress decreases on the stress-strain curves. An acoustic emission (AE) technique was employed for the first time to study the deformation behavior of micropillars. The AE technique provides important additional in situ information about the underlying processes during plastic deformation and is especially sensitive to the collective avalanche-like motion of the dislocations observed as the stress decreases on the deformation curves.

摘要

微米级晶体材料的塑性变形与块状样品有很大不同,其特征是随机应变突发。为了详细了解间歇性变形现象,必须制备并测试大量微米尺寸的试样。提出了一种改进的聚焦离子束制造方法,以制备形状可控性极佳的无锥度微柱。此外,与其他方法相比,制造时间更短。我们实验室开发的原位压缩装置能够实现高精度的样品定位以及高数据采样率的力/位移测量。当应力-应变曲线上的应力降低时,可以观察到位错的集体雪崩式运动。首次采用声发射(AE)技术研究微柱的变形行为。AE技术提供了有关塑性变形过程中潜在过程的重要额外原位信息,并且对变形曲线上应力降低时观察到的位错集体雪崩式运动特别敏感。

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Dislocation avalanches are like earthquakes on the micron scale.位错雪崩类似于微米尺度上的地震。
Nat Commun. 2022 Apr 13;13(1):1975. doi: 10.1038/s41467-022-29044-7.