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Atomic Study on Tension Behaviors of Sub-10 nm NanoPolycrystalline Cu–Ta Alloy

机译:亚10 nm纳米多晶Cu-Ta合金拉伸行为的原子研究

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摘要

Atomic simulations give a good explanation of the changes in the physical properties of a material. In this work, the tension behaviors of nanopolycrystalline Cu–Ta alloys are investigated through molecular dynamics (MD) simulations, and the influences of several important factors on the mechanical properties of the materials are studied. Firstly, nanopolycrystalline Cu–Ta (10 at %) alloy models with sub-10 nm grains are established by using the method of replacing the grain boundary atoms. Then, the effects of temperature, pressure, and strain rate on the mechanical properties of nanopolycrystalline Cu–Ta alloy are studied, and the elastic modulus and flow strength are obtained. The observations from the simulation results show that the elastic modulus and flow strength increase with the increasing of grain size for sub-10 nm nanopolycrystalline Cu–Ta alloys, and the elastic modulus increases firstly and then stabilizes as the strain rate increases. Finally, according to the evolution of dislocations and twin crystals, the plastic deformation mechanism of nanopolycrystalline Cu–Ta alloy during the stretching process is discussed in depth.
机译:原子模拟很好地解释了材料物理性质的变化。在这项工作中,通过分子动力学(MD)模拟研究了纳米多晶Cu-Ta合金的拉伸行为,并研究了几个重要因素对材料力学性能的影响。首先,通过使用替代晶界原子的方法,建立了具有低于10 nm晶粒的纳米多晶Cu-Ta(10 at%)合金模型。然后,研究了温度,压力和应变速率对纳米多晶Cu-Ta合金力学性能的影响,并获得了弹性模量和流动强度。模拟结果的观察结果表明,亚10 nm纳米多晶Cu-Ta合金的弹性模量和流动强度随着晶粒尺寸的增加而增加,并且弹性模量先增加,然后随着应变率的增加而稳定。最后,根据位错和双晶的演化,深入讨论了纳米多晶Cu-Ta合金在拉伸过程中的塑性变形机理。

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