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首页> 外文期刊>JSME International Journal. Series A >Molecular Dynamics Simulations of Atomic Scale Indentation and Cutting Process with Atomic Force Microscope
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Molecular Dynamics Simulations of Atomic Scale Indentation and Cutting Process with Atomic Force Microscope

机译:原子力显微镜对原子尺度压痕和切削过程的分子动力学模拟

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This paper describes the effect of the material used for a tool on atomic scale indentation and cutting mechanisms of metal workpieces, by means of molecular dynamics simulations. The interatomic force between the tool and workpiece is assumed to be a two-body interatomic potential using parameters based on the abinitio molecular orbital calculation for a (Cr, Ni)-(C, Si)_6H_9 atomic cluster. Molecular dynamics simulated the atomic scale indentation and cutting process of the chromium and nickel workpieces using the diamond, silicon and diamond-linke carbon (DLC) tools. The diamond and DLC tools formed the indentation mark. Young's modulus of the chromium and nickel in indentation simulations was larger than that in experiments. This was qualitatively explained by the effect of the surface energy for the workpiece on the elastic modulus. The machinability of the chromium and nickel with the diamond tool was better than that of the silicon tool in atomic scale cutting simulations. The depth of the cut for the workpieces in nano scale cutting experiments with AFM, was similar to that in atomic scale cutting by molecular dynamics simulations.
机译:本文通过分子动力学模拟描述了用于刀具的材料对金属工件的原子尺度压痕和切削机理的影响。使用基于(Cr,Ni)-(C,Si)_6H_9原子团簇的重排分子轨道计算的参数,假设工具和工件之间的原子间力为两体原子间势。分子动力学使用金刚石,硅和金刚石链碳(DLC)工具模拟了铬和镍工件的原子尺度压痕和切削过程。金刚石和DLC工具形成了凹痕。压痕模拟中铬和镍的杨氏模量大于实验中的杨氏模量。定性地通过工件的表面能对弹性模量的影响来解释。在原子尺度切割模拟中,金刚石工具的铬和镍的切削性优于硅工具。在通过AFM进行的纳米尺度切削实验中,工件的切削深度与通过分子动力学模拟进行的原子尺度切削中的切削深度相似。

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