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Strains on the nano- and microscale in nickel-titanium: An advanced TEM study.

机译:镍钛合金中纳米级和微米级的应变:先进的TEM研究。

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摘要

A general introduction to shape memory behavior and the martensitic transformation is given in chapter 1, with speck information concerning the NiTi material. The technique used to study the material is transmission electron microscopy (TEM) of which the basics are explained in chapter 2 as well as information concerning the NiTi material.; The main goal was to apply more advanced TEM techniques in order to measure some aspects in a quantitative way rather than qualitative, which is mostly the case in conventional TEM. (1) Quantitative electron diffraction was used to refine the structure of Ni4Ti3 precipitates, this was done by using the MSLS method in combination with density functional theory (DFT) calculations. (2) These Ni4Ti3 precipitates are (semi-)coherent which results in a strain field in the matrix close to the precipitate. High resolution TEM (HRTEM) in combination with image processing techniques was used to measure these strain fields. The obtained results are compared to the Eshelby model for elliptical inclusions, and major difference is an underestimation of the strain magnitude by the model. One of the algorithms used to extract strain information from HRTEM images is the geometric phase method. (3) The Ni4Ti3-Ni4Ti3 and Ni4Ti3-precipitate interface was investigated with HRTEM showing that the Ni4Ti3-precipitate interface might be diffuse over a range of 3nm. (4) In-situ straining experiments were performed on single crystalline and superelastic polycrystalline NiTi samples. It seems that the strain induced martensite planes in the polycrystalline sample show no sign of twinning. This is in contradiction to what is expected and is discussed in the view of the crystallographic theory of martensite, in addition a first model explaining this behavior is proposed.; In this dissertation the main attention is divided over the material aspects of NiTi and on how to apply these more advanced TEM techniques.
机译:第1章对形状记忆行为和马氏体相变作了一般性介绍,并提供了有关NiTi材料的斑点信息。用于研究该材料的技术是透射电子显微镜(TEM),其基本知识在第二章中进行了说明,以及有关NiTi材料的信息。主要目标是应用更先进的TEM技术,以便定量而不是定性地测量某些方面,这在常规TEM中通常是这种情况。 (1)定量电子衍射用于细化Ni4Ti3沉淀物的结构,这是通过MSLS方法结合密度泛函理论(DFT)计算来完成的。 (2)这些Ni4Ti3沉淀物是(半)相干的,这导致在靠近沉淀物的基体中产生应变场。高分辨率TEM(HRTEM)与图像处理技术结合使用来测量这些应变场。将获得的结果与Eshelby模型的椭圆形夹杂物进行比较,主要区别是该模型对应变幅度的低估。从HRTEM图像中提取应变信息的算法之一是几何相位方法。 (3)用HRTEM对Ni4Ti3-Ni4Ti3和Ni4Ti3-沉淀物界面进行了研究,结果表明Ni4Ti3-沉淀物界面可能在3nm的范围内扩散。 (4)在单晶和超弹性多晶NiTi样品上进行了原位应变实验。似乎在多晶样品中应变诱导的马氏体平面没有显示孪晶迹象。这与预期的相矛盾,并且从马氏体的晶体学理论出发对其进行了讨论,此外,提出了解释该行为的第一个模型。本文主要关注的是NiTi的材料方面以及如何应用这些更先进的TEM技术。

著录项

  • 作者

    Tirry, Wim.;

  • 作者单位

    Universiteit Antwerpen (Belgium).;

  • 授予单位 Universiteit Antwerpen (Belgium).;
  • 学科 Physics Condensed Matter.; Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 148 p.
  • 总页数 148
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 工程材料学;
  • 关键词

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