首页> 外文期刊>International journal of computational methods >ATOMISTIC SIMULATION OF TORSIONAL VIBRATION AND PLASTIC DEFORMATION OF FIVE-FOLD TWINNED COPPER NANOWIRES
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ATOMISTIC SIMULATION OF TORSIONAL VIBRATION AND PLASTIC DEFORMATION OF FIVE-FOLD TWINNED COPPER NANOWIRES

机译:五重双绞铜纳米线扭转振动和塑性变形的原子模拟

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摘要

In this paper, atomistic simulations have been conducted to investigate the torsional mechanical behaviors of five-fold twinned nanowires (FTNs), including the torsional vibration properties, elasto-plastic deformation behaviors and activation process of the first partial dislocation nucleation. Simulation results show that the fundamental torsional vibration frequency is inversely proportional to the wire length and is independent of the wire radius. Provided that an effective shear modulus of FTNs is used, the classic elastic torsional theory may be applicable to nanoscale. Furthermore, it is found that the plastic deformation of FTNs is dominated by partial dislocation activities. The normalized critical torsional angle corresponding to the onset of plastic deformation increases with the decrease of the wire radius and temperature, while it is almost independent of the wire length and loading rate. In addition, the activation energy of the first partial dislocation nucleation is about several electric voltages and decreases with the increase of the wire radius and applied torsional load.
机译:在本文中,已经进行了原子模拟,以研究五重孪晶纳米线(FTNs)的扭转力学行为,包括扭转振动特性,弹塑性变形行为和第一部分位错成核的活化过程。仿真结果表明,基本扭转振动频率与导线长度成反比,与导线半径无关。如果使用FTN的有效剪切模量,则经典的弹性扭转理论可能适用于纳米级。此外,发现FTN的塑性变形主要由部分位错活动决定。对应于塑性变形开始的归一化临界扭转角随导线半径和温度的降低而增加,而几乎与导线长度和加载速率无关。另外,第一部分位错成核的活化能约为几个电压,并且随着线径和施加的扭转载荷的增加而降低。

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