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New intrinsic mechanism on gum-like superelasticity of multifunctional alloys

机译:多功能合金胶状超弹性的新内在机理

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Ti-Nb-based Gum Metals exhibit extraordinary superelasticity with ultralow elastic modulus, superior strength and ductility, and a peculiar dislocation-free deformation behavior, most of which challenge existing theories of crystal strength. Additionally, this kind of alloys actually displays even more anomalous mechanical properties, such as the non-linear superelastic behavior, accompanied by a pronounced tension-to-compression asymmetry, and large ductility with a low Poisson's ratio. Two main contradictory arguments exist concerning the deformation mechanisms of those alloys, i.e., formation of reversible nanodisturbance and reversible martensitic transformation. Herein we used the in-situ synchrotron high-energy X-ray scattering technique to reveal the novel intrinsic physical origin of all anomalous mechanical properties of the Ti-24Nb-4Zr-8Sn-0.10O alloy, a typical gum-like metal. Our experiments provide direct evidence on two different kinds of interesting, stress-induced, reversible nanoscale martensitic transitions, i.e., the austenitic regions with B2 structure transform to α″ martensite and those with BCC structure transform to δ martensite.
机译:基于Ti-Nb的口香糖金属具有超低的弹性模量,超强的强度和延展性以及独特的无位错变形行为,这些都对现有的晶体强度理论提出了挑战。此外,这种合金实际上表现出甚至更高的异常机械性能,例如非线性超弹性行为,伴随着明显的拉伸-压缩不对称性,以及具有低泊松比的大延展性。关于这些合金的变形机理存在两个主要矛盾的论点,即可逆纳米扰动的形成和可逆马氏体相变。在这里,我们使用原位同步加速器高能X射线散射技术揭示了Ti-24Nb-4Zr-8Sn-0.10O合金(一种典型的胶状金属)的所有异常机械性能的新颖内在物理起源。我们的实验提供了两种有趣的,应力诱发的,可逆的纳米级马氏体转变的直接证据,即,具有B2结构的奥氏体区域转变为α''马氏体,具有BCC结构的奥氏体区域转变为δ马氏体。

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