首页> 外文学位 >Investigation on the mechanism of wear of single crystal diamond tool in nanometric cutting of iron using molecular dynamics (MD) and the development of generalized potential energy surfaces (GPES) based on ab initio calculations .
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Investigation on the mechanism of wear of single crystal diamond tool in nanometric cutting of iron using molecular dynamics (MD) and the development of generalized potential energy surfaces (GPES) based on ab initio calculations .

机译:基于从头算的分子动力学(MD)研究铁纳米加工中单晶金刚石刀具的磨损机理以及广义势能面(GPES)的发展。

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摘要

Scope and method of study. Diamond, the hardest of all materials known, undergoes severe wear in the machining of iron. This is because of the strong chemical affinity of iron towards carbon. However, the micro-mechanisms of wear are not well understood. A review of literature indicates graphitization of diamond as the leading cause of wear. Lack of direct evidence led us to investigate the wear mechanism of diamond in the machining of pure iron by MD simulations.;Findings and conclusions. In this investigation, the role of iron in the wear of diamond was established. MD simulations of nanometric cutting were conducted at 100 m s-1. It has been shown that diamond initially graphitizes and subsequently reacts with iron to form iron carbide, thus confirming the plausible mechanism proposed some 30 years ago. Central to atomistic simulations is the potential energy surfaces (PES). In this investigation, we have advanced two methods for the development of PES. The first involves modification of the parameters in the existing analytical functional forms, such as Tersoff potential, and the second method involves the development of generalized PES independent of any specific functional form using ab initio calculations, many body expansion, and neural networks. These methods were developed so that PES for different materials can be obtained.
机译:研究范围和方法。金刚石是所有已知材料中最坚硬的,在铁加工中会遭受严重磨损。这是因为铁对碳具有很强的化学亲和力。但是,人们对磨损的微观机制还没有很好的了解。文献综述表明金刚石的石墨化是磨损的主要原因。缺乏直接的证据使我们通过MD模拟研究了纯铁加工中金刚石的磨损机理。结果和结论。在这项调查中,确定了铁在钻石磨损中的作用。纳米切割的MD模拟是在100 m s-1下进行的。已经显示出钻石最初会石墨化,然后与铁反应形成碳化铁,从而证实了大约30年前提出的合理机制。原子模拟的中心是势能面(PES)。在这项调查中,我们提出了两种开发PES的方法。第一种方法涉及修改现有分析功能形式(例如Tersoff势)中的参数,第二种方法涉及使用从头算算,许多身体扩展和神经网络开发与任何特定功能形式无关的广义PES。开发这些方法是为了获得用于不同材料的PES。

著录项

  • 作者

    Narulkar, Rutuparna.;

  • 作者单位

    Oklahoma State University.;

  • 授予单位 Oklahoma State University.;
  • 学科 Engineering Mechanical.;Engineering Materials Science.;Nanoscience.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 213 p.
  • 总页数 213
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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