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The deformation of gum metal under nanoindentation and sub-micron pillar compression.

机译:纳米压痕和亚微米柱压缩下口香糖金属的变形。

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摘要

Reaching ideal strength has proven to be difficult in most materials. Dislocation slip, phase transformations, twinning, and fracture all tend to occur at stresses well below the ideal strength of a material. Only on very small scales has it been possible to approach ideal strength. Thus, it was of great interest when a set of beta-Ti alloys, Gum Metal, were found to have a bulk yield strength close to half of its ideal strength. However, some recent studies have questioned the reliability of this claim. Several studies have suggested Gum Metal deforms by dislocation slip. Others have suggested the possibility of transformation-induced plasticity. The present study was undertaken in order to help clarify if and how Gum Metal can reach ideal strength.;Two different experiments, ex situ nanoindentation and quantitative in situ nanopillar compression in a transmission electron microscope to correlate real-time deformation behavior, were performed on a single composition of Gum Metal, Ti-23Nb-0.7Ta-2Zr-1.20 at. %, obtained from Toyota Central R&D Laboratories. Nanoindented specimens were thinned from the bottom surface until the pits of multiple indentations became electron-transparent allowing for qualitative analysis of the deformation microstructure in both fully cold-worked and solution-treated specimens. Real-time load-displacement behavior from the nanopillar compression tests was correlated with real-time video recorded during each compression to determine both the compressive strength of each pillar and the timing and strengths of different deformation behaviors observed.;Combining the results from both experiments provided several important conclusions. First, Gum Metal approaches and can attain ideal strength in nanopillars regardless of processing condition. While dislocations exist in Gum Metal, they can be tightly pinned by obstacles with spacing less than ∼20 nm, which should inhibit their motion at strengths below the ideal shear strength. The plastic deformation of Gum Metal is not controlled by giant faults or by stress-induced phase transformations. Both of these phenomena, while active, are not the source of plasticity in Gum Metal.
机译:在大多数材料中,要达到理想的强度是困难的。位错滑移,相变,孪晶和断裂都倾向于在远低于材料理想强度的应力下发生。只有在很小的范围内,才有可能达到理想的强度。因此,当发现一组β-Ti合金Gum Metal的整体屈服强度接近其理想强度的一半时,就引起了极大的兴趣。但是,最近的一些研究对这一说法的可靠性提出了质疑。多项研究表明,口香糖会因位错滑移而变形。其他人则提出了转化诱导可塑性的可能性。进行本研究是为了帮助弄清口香糖金属是否以及如何达到理想的强度。;在透射电子显微镜中进行了两个不同的实验,异位纳米压痕和定量原位纳米柱压缩,以关联实时变形行为。单一成分的口香糖金属Ti-23Nb-0.7Ta-2Zr-1.20 at。 %,从Toyota Central R&D Laboratories获得。纳米压痕样品从底面开始变薄,直到多个压痕的凹坑变得电子透明,从而可以对完全冷加工和固溶处理的样品中的变形微观结构进行定性分析。将纳米柱压缩测试中的实时荷载位移行为与每次压缩过程中记录的实时视频相关联,以确定每个支柱的抗压强度以及观察到的不同变形行为的时间和强度。提供了几个重要的结论。首先,无论加工条件如何,口香糖金属都可以接近并可以在纳米柱中获得理想的强度。尽管口香糖中存在位错,但它们可以被间距小于约20 nm的障碍物紧密固定,这将在低于理想剪切强度的强度下抑制其运动。口香糖金属的塑性变形不受大型断层或应力诱发的相变的控制。这两种现象虽然活跃,但并不是胶金属的可塑性来源。

著录项

  • 作者

    Withey, Elizabeth Ann.;

  • 作者单位

    University of California, Berkeley.;

  • 授予单位 University of California, Berkeley.;
  • 学科 Engineering Materials Science.
  • 学位 Ph.D.
  • 年度 2009
  • 页码 144 p.
  • 总页数 144
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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