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Indentation and tribological behavior of nickel titanium alloys and study of instrumented spherical indentation.

机译:镍钛合金的压痕和摩擦学行为以及仪器球形压痕的研究。

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摘要

In this work, microscopic shape memory (SME) and superelastic (SE) effects in martensitic and austenitic NiTi alloys were probed by instrumented indentation techniques. Both pyramidal and spherical indenters were used to study the mechanical response of the NiTi alloys. It was found that deformation due to indentation was recoverable by the shape memory or superelastic effect and that the magnitude of indent recovery can be rationalized using the concept of the representative strain and maximum strain. Instrumented indentation techniques, especially using spherical indenters, are shown to be useful in quantifying shape memory and superelastic effects at micron and nanometer length scales.; Novel tribological applications of superelastic NiTi thin films suggested by these results were also studied. A novel composite coating, with a superelastic NiTi interlayer between soft aluminum substrate and hard CrN coating, was studied using instrumented indentation, scratch, and pin-on-disk wear tests. It was found that a superelastic NiTi interlayer can dramatically improve hard-coating adhesion and wear resistance. The improved coating performance is attributed to the large elastic recovery ratio and strain tolerance of the superelastic NiTi interlayer.; It was demonstrated that spherical indentation is very useful in the characterization of the mechanical properties of NiTi shape memory alloys. To further understand the spherical indentation process, a general study of spherical indentation in elastic-plastic materials was carried out. Two previously unknown relationships between hardness, reduced modulus, indentation depth, indenter radius, and work of indentation were found. Based on these relationships a novel energy-based method for determining contact area, reduced modulus, and hardness of materials from instrumented spherical indentation measurements was proposed. This method also provides a new way of calibrating the effective radius of imperfectly shaped spherical indenters.
机译:在这项工作中,通过仪器压痕技术探究了马氏体和奥氏体NiTi合金的微观形状记忆(SME)和超弹性(SE)效应。锥形和球形压头均用于研究NiTi合金的机械响应。已经发现,由于压痕引起的变形可以通过形状记忆或超弹性效应来恢复,并且可以利用代表性应变和最大应变的概念使压痕恢复的幅度合理化。仪器化的压痕技术,特别是使用球形压头,被证明可用于量化微米和纳米长度尺度的形状记忆和超弹性效应。这些结果表明,超弹性NiTi薄膜在摩擦学中的新应用也得到了研究。研究了一种新型的复合涂层,在软质铝基材和硬质CrN涂层之间具有超弹性的NiTi中间层,并使用仪器的压痕,划痕和针盘磨损测试进行了研究。已经发现,超弹性NiTi中间层可以显着改善硬涂层的粘附性和耐磨性。涂层性能的提高归因于超弹性NiTi中间层的大的弹性回复率和应变容限。结果表明,球形压痕对于表征NiTi形状记忆合金的机械性能非常有用。为了进一步了解球形压痕过程,对弹塑性材料中的球形压痕进行了一般性研究。在硬度,降低的模量,压痕深度,压头半径和压痕功之间发现了两个以前未知的关系。基于这些关系,提出了一种新的基于能量的方法,该方法可通过仪器化的球形压痕测量来确定材料的接触面积,降低的模量和硬度。此方法还提供了一种校准形状不完整的球形压头的有效半径的新方法。

著录项

  • 作者

    Ni, Wangyang.;

  • 作者单位

    Michigan State University.;

  • 授予单位 Michigan State University.;
  • 学科 Engineering Materials Science.; Engineering Metallurgy.
  • 学位 Ph.D.
  • 年度 2004
  • 页码 176 p.
  • 总页数 176
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;冶金工业;
  • 关键词

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