首页> 外文期刊>Journal of Physics, D. Applied Physics: A Europhysics Journal >Effects of temperature, loading rate and nanowire length on torsional deformation and mechanical properties of aluminium nanowires investigated using molecular dynamics simulation
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Effects of temperature, loading rate and nanowire length on torsional deformation and mechanical properties of aluminium nanowires investigated using molecular dynamics simulation

机译:用分子动力学模拟研究温度,加载速率和纳米线长度对铝纳米线扭转变形和力学性能的影响

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Single-crystal aluminium nanowires under torsion are studied using molecular dynamics simulations based on the many-body tight-binding potential. The effects of temperature, loading rate and nanowire length are evaluated in terms of atomic trajectories, potential energy, von Mises stress, a centrosymmetry parameter, torque, shear modulus and radial distribution function. Simulation results clearly show that torsional deformation begins at the surface, extends close to the two ends and finally diffuses to the middle part. The critical torsional angle which represents the beginning of plastic deformation varies with different conditions. Before the critical torsional angle is reached, the potential energy and the torque required for the deformation of a nanowire significantly increase with the torsional angle. The critical torsional angle increases with increasing nanowire length and loading rate and decreasing temperature. The torque required for the deformation decreases and the shear modulus increases with increasing nanowire length. For higher temperatures and higher loading rates, torsional buckling more easily occurs at the two ends of a nanowire, whereas it occurs towards the middle part at or below room temperature with lower loading rates. Geometry instability occurs before material instability (buckling) for a long nanowire.
机译:使用基于多体紧密结合电位的分子动力学模拟研究了扭转下的单晶铝纳米线。根据原子轨迹,势能,冯·米塞斯应力,中心对称参数,扭矩,剪切模量和径向分布函数评估温度,加载速率和纳米线长度的影响。仿真结果清楚地表明,扭转变形从表面开始,延伸到两端附近,最后扩散到中间部分。代表塑性变形开始的临界扭转角随不同条件而变化。在达到临界扭转角之前,纳米线变形所需的势能和扭矩会随着扭转角显着增加。临界扭转角随着纳米线长度和负载速率的增加以及温度的降低而增加。随着纳米线长度的增加,变形所需的扭矩减小,剪切模量增加。对于较高的温度和较高的加载速率,扭转屈曲更容易在纳米线的两端发生,而在室温或低于室温的情况下,在较低加载速率下朝中部发生扭转屈曲。对于长纳米线,几何不稳定性发生在材料不稳定性(屈曲)之前。

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