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An atomistic investigation on the mechanism of machining nanostructures when using single tip and multi-tip diamond tools

机译:使用单刀头和多刀头金刚石工具加工纳米结构的机理的原子学研究

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摘要

In our previous work, a scale-up fabrication approach to cost effectively manufacturing nano-gratings over large area has been developed through diamond turning by using a multi-tip diamond tool fabricated by Focused Ion Beam. The objective of this study is to gain an in-depth understanding of the mechanism of machining nanostructures on single crystal copper through diamond turning when using a single tip and a multi-tip nanoscale diamond tool. For this purpose atomistic models of a single tip tool for multi-pass cutting and a multi-tip tool for single-pass cutting were built, respectively. The nature of the cutting chip formation, dislocation nucleation and propagation, cutting forces, and temperature distribution during nanometric cutting processes were studied through molecular dynamics (MD) simulations. Results show that nanostructure generation process at steady cutting stage was governed by a strong localization of the dislocation movement and the dynamic equilibrium of chip-tool contact area. Except the apparent improvement of machining efficiency that proportional to the tool tip numbers, the nano-grooves generated by multi-tip tool also have higher center symmetry than those machined by single tip tool. While the average tangential cutting force per tip were calculated all around 33.3 nN, a larger normal cutting force per tip being 54.1 nN was observed when using a multi-tip tool. A concept of atomistic equivalent temperature was proposed and used to analysis the important features of temperature distribution during the machining process. The advantage, disadvantage and applicability of diamond turning using multi-tip tool were discussed in comparison with those of using single-tip tool. The findings suggest that diamond turning using multi-tip tool might be more applicable than using single tip tool when apply to scale-up fabrication of periodic nanostructures.
机译:在我们之前的工作中,通过使用聚焦离子束制造的多尖端金刚石工具,通过金刚石车削,开发了一种规模化制造方法,可以经济有效地在大面积上制造纳米级光栅。这项研究的目的是深入了解使用单尖端和多尖端纳米级金刚石工具通过金刚石车削在单晶铜上加工纳米结构的机理。为此,分别建立了用于多道次切削的单刀尖刀具和用于单道次切削的多刀尖刀具的原子模型。通过分子动力学(MD)模拟研究了纳米切削过程中切削屑的形成,位错成核和传播,切削力以及温度分布的性质。结果表明,在稳定切削阶段,纳米结构的产生过程受位错运动的强烈局限性和切屑工具接触面积的动态平衡的支配。除了与刀尖数成正比的加工效率明显提高外,多刀尖刀具产生的纳米槽还比单刀尖刀具加工的纳米槽具有更高的中心对称性。虽然计算出的每个刀尖的平均切向切削力均为33.3 nN,但使用多刀头工具时,观察到的每个刀尖的法向切削力更大,为54.1 nN。提出了原子当量温度的概念,并用于分析加工过程中温度分布的重要特征。与单刃工具相比,讨论了使用多刃工具进行金刚石车削的优缺点和适用性。研究结果表明,当用于周期性纳米结构的按比例放大制造时,使用多尖端工具进行车削可能比使用单尖端工具进行车削更适用。

著录项

  • 来源
    《Applied Surface Science》 |2014年第30期|458-465|共8页
  • 作者单位

    Department of Design, Manufacture & Engineering Management, University of Strathclyde, Glasgow G1 1XQ, UK,Centre for Precision Technologies, University of Huddersfield, Huddersfield HD1 3DH, UK,Center for Precision Engineering, Harbin Institute of Technology, Harbin 150001, China;

    Center for Precision Engineering, Harbin Institute of Technology, Harbin 150001, China;

    Centre for Precision Technologies, University of Huddersfield, Huddersfield HD1 3DH, UK;

    Department of Design, Manufacture & Engineering Management, University of Strathclyde, Glasgow G1 1XQ, UK,Centre for Precision Technologies, University of Huddersfield, Huddersfield HD1 3DH, UK;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Molecular dynamics; Nanometric cutting; Multi-tip tool; Nanostructure; Machining mechanism;

    机译:分子动力学;纳米切割多尖工具;纳米结构加工机制;

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