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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Omega transitional structure associated with {112} 111 deformation twinning in a metastable beta Ti-Nb alloy, revealed by atomic resolution high-angle annular dark-field scanning transmission electron microscopy
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Omega transitional structure associated with {112} 111 deformation twinning in a metastable beta Ti-Nb alloy, revealed by atomic resolution high-angle annular dark-field scanning transmission electron microscopy

机译:ω过渡结构与{112}}相关联的结构& 111& 亚稳态βTi-Nb合金中的变形孪生,由原子分辨率高角度环形暗场扫描透射电子显微镜透露

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The omega structure associated with the {112} 111 deformation twinning in a deformed Ti-50Nb alloy have been examined by high-angle annular dark-field scanning transmission electron microscopy (HAADF-STEM). Atomic resolution HAADF-STEM observations reveal that, instead of the ideal omega structure, a kind of omega transitional structure characterized by gradual collapse of {111} atom planes of beta phase can be formed in the twin growth frontier region to accommodate high stress concentration occurring there, while layered omega transitional structure, which can be so thin to have just one-unitcell layer in thickness, can be formed along the longitudinal twin boundaries to relax relatively weak interfacial stress. Also, we have made it clear that the omega transition induced by compressive stress concentration at the twin growth frontier is accomplished by displacements of atoms in not only the beta matrix but the twinned beta structures as well. These observations offer a conclusive evidence to understand that the {112} 111 twinning shear is critical in assisting the beta-to-omega structural transition locally. On the basis of these results, the formation process of the omega transitional structure associated with the {112} 111 twinning is discussed. (C) 2018 Elsevier B.V. All rights reserved.
机译:与{112}相关的omega结构}& 111&通过大角度环形暗场扫描透射电子显微镜(Haadf-Stem)检查了变形Ti-50NB合金中的变形孪晶。原子分辨率HAADF-STEM观察结果表明,代替理想的ω结构,其特征在于β相的逐渐塌陷的ω过渡结构,其特征在于β相的{111}原子平面,可以形成在双生长前沿区域以适应高应力浓度发生在那里,虽然可以如此薄于厚度的单调型层的层状ω过渡结构,可以沿着纵向双界形成,以放宽相对较弱的界面应力。此外,我们已经明确说,通过仅β基质的原子的位移而不是β基质,而不是ββ结构,所以通过在双生长前沿的压缩应力浓度引起的ω转变的ω转变也是如此。这些观察结果提供了确凿的证据,以了解{112}& 111& Twinning Shear对于辅助本地β-欧米茄结构过渡至关重要。在这些结果的基础上,与{112}相关的ω过渡结构的形成过程& 111&讨论了Twinning。 (c)2018年elestvier b.v.保留所有权利。

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