单晶和纳米晶镍微柱在高应变速率下的变形和绝热加热

IF 4.3 3区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Nidhin George Mathews , Matti Lindroos , Johann Michler , Gaurav Mohanty
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引用次数: 0

摘要

采用原位微柱压缩实验研究了单晶和纳米晶镍的变形行为,从准静态到高达103 s−1的高应变速率。在单晶镍中,变形是由位错滑移活动引起的,而在纳米晶镍中,观察到广泛的晶界滑动,并向更不均匀的局部变形转变,在1 s−1以上。在较高应变速率下,单晶和纳米晶镍的应变速率敏感性指数均发生变化,而两者的整体应变速率敏感性值相同。随着高应变率微柱压缩试验的报道越来越多,微柱的绝热问题变得越来越重要。我们报告了基于晶体塑性的有限元建模,以估计在最高测试应变率下微柱内空间分解的绝热加热。模拟预测,由于应变局部化,纳米晶镍在晶界处的温度升高可达200 K,单晶镍的温度升高可达20 K。透射-菊池衍射分析表明,在103 s−1的压缩下,纳米晶镍微柱没有出现晶粒生长。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Deformation and adiabatic heating of single crystalline and nanocrystalline Ni micropillars at high strain rates
The deformation behavior of single crystal and nanocrystalline nickel were studied using in situ micropillar compression experiments from quasi-static to high strain rates up to 103 s−1. Deformation occurred by dislocation slip activity in single crystal nickel whereas extensive grain boundary sliding was observed in nanocrystalline nickel with a shift towards more inhomogeneous, localized deformation above 1 s−1. The strain rate sensitivity exponent was found to change at higher strain rates for both single crystal and nanocrystalline nickel, while the overall strain rate sensitivity was observed to be of the same value for both. With increasing high strain rate micropillar compression tests being reported, the issue of adiabatic heating in micropillars becomes important. We report crystal plasticity based finite element modeling to estimate the adiabatic heating, spatially resolved within the micropillar, at the highest tested strain rates. The simulations predicted a significant temperature rise of up to 200 K in nanocrystalline nickel at the grain boundaries, and 20 K in single crystalline nickel due to strain localization. Transmission Kikuchi Diffraction analysis of nanocrystalline nickel micropillar post compression at 103 s−1 did not show any grain growth.
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来源期刊
Extreme Mechanics Letters
Extreme Mechanics Letters Engineering-Mechanics of Materials
CiteScore
9.20
自引率
4.30%
发文量
179
审稿时长
45 days
期刊介绍: Extreme Mechanics Letters (EML) enables rapid communication of research that highlights the role of mechanics in multi-disciplinary areas across materials science, physics, chemistry, biology, medicine and engineering. Emphasis is on the impact, depth and originality of new concepts, methods and observations at the forefront of applied sciences.
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