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钛合金中的巨热膨胀和α 析出途径。

Giant thermal expansion and α-precipitation pathways in Ti-alloys.

机构信息

IFW Dresden, Institute for Complex Materials, Helmholtzstraße 20, D-01069, Dresden, Germany.

Institute of Structural Physics, Technische Universität Dresden, Haeckelstraße 3, D-01062, Dresden, Germany.

出版信息

Nat Commun. 2017 Nov 10;8(1):1429. doi: 10.1038/s41467-017-01578-1.

Abstract

Ti-alloys represent the principal structural materials in both aerospace development and metallic biomaterials. Key to optimizing their mechanical and functional behaviour is in-depth know-how of their phases and the complex interplay of diffusive vs. displacive phase transformations to permit the tailoring of intricate microstructures across a wide spectrum of configurations. Here, we report on structural changes and phase transformations of Ti-Nb alloys during heating by in situ synchrotron diffraction. These materials exhibit anisotropic thermal expansion yielding some of the largest linear expansion coefficients (+ 163.9×10 to -95.1×10 °C) ever reported. Moreover, we describe two pathways leading to the precipitation of the α-phase mediated by diffusion-based orthorhombic structures, α″ and α″. Via coupling the lattice parameters to composition both phases evolve into α through rejection of Nb. These findings have the potential to promote new microstructural design approaches for Ti-Nb alloys and β-stabilized Ti-alloys in general.

摘要

钛合金是航空航天发展和金属生物材料中主要的结构材料。优化其机械和功能行为的关键在于深入了解其相和扩散与位移相转变的复杂相互作用,以允许在广泛的配置范围内对复杂的微观结构进行定制。在这里,我们通过原位同步辐射衍射报告了 Ti-Nb 合金在加热过程中的结构变化和相变。这些材料表现出各向异性热膨胀,产生了一些有史以来报道过的最大线性膨胀系数(+163.9×10 至-95.1×10°C)。此外,我们描述了两种通过扩散基正交结构 α″和 α″导致α 相析出的途径。通过将晶格参数与组成耦合,两种相都通过排斥 Nb 转化为α。这些发现有可能为 Ti-Nb 合金和一般的β稳定 Ti 合金促进新的微观结构设计方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ea92/5681671/d3e72c34dc6c/41467_2017_1578_Fig1_HTML.jpg

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