晶粒尺寸对不同温度和应变速率下多晶纳米铜单轴拉伸行为的响应

IF 1.7 4区 材料科学 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Rajat Kumar, M. K. Gupta, S. Rai, Vinay Panwar
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引用次数: 0

摘要

目的探讨多晶纳米铜晶格的拉伸行为随温度、平均晶粒尺寸和应变速率的变化规律。我们还观察到临界AGS的存在,这表明Hall-Petch关系是相反的。本研究利用嵌入原子法(EAM)电位完成了多晶纳米铜的纳米级变形。采用Voronoi构造方法制备了四种不同尺寸的纳米铜多晶。用统计分析来检验观察结果,重点是多晶尺寸对熔点温度的影响。研究发现,关键应力值(即弹性模量、屈服应力和极限拉应力)受到所考虑参数的显著影响。应变速率的增加对力学性能的影响越来越大,而温度的升高使力学性能下降。深入分析了变形机理,实现了晶界运动的实时可视化。独创性/价值本研究提供了连续可能的力学性能变化所需的晶粒尺寸变化之间的关系,并可能有助于减少基于不同温度和应变速率合成多晶铜的试验过程。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Grain size responsive uniaxial tensile behavior of polycrystalline nanocopper under different temperatures and strain rates
PurposeThe changes in tensile behavior of polycrystalline nanocopper lattice with changes in temperature, average grain size (AGS) and strain rate, have been explored. The existence of a critical AGS has also been observed which shows that the Hall–Petch relationship behaves inversely.Design/methodology/approachNanoscale deformation of polycrystalline nanocopper has been done in this study with the help of an embedded atom method (EAM) potential. Voronoi construction method has been employed for creating four polycrystals of nanocopper with different sizes. Statistical analysis has been used to examine the observations with emphasis on the polycrystal size effect on melting point temperature.FindingsThe study has found that the key stress values (i.e. elastic modulus, yield stress and ultimate tensile stress) are significantly influenced by the considered parameters. The increase in strain rate is observed to have an increasing impact on mechanical properties, whereas the increase in temperature degrades the mechanical properties. In-depth analysis of the deformation mechanism has been studied to deliver real-time visualization of grain boundary motion.Originality/valueThis study provides the relationship between required grain size variations for consecutive possible variations in mechanical properties and may help to reduce the trial processes in the synthesis of polycrystalline copper based on different temperatures and strain rates.
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来源期刊
CiteScore
3.70
自引率
5.00%
发文量
60
期刊介绍: Multidiscipline Modeling in Materials and Structures is published by Emerald Group Publishing Limited from 2010
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