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Revealing the role of microstructure architecture on strength and ductility of Ni microwires by in-situ synchrotron X-ray diffraction

机译:通过原位同步加速器X射线衍射揭示微观结构对镍微丝强度和延展性的作用

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摘要

Deformation mechanisms of cold drawn and electropolished nickel microwires are studied by performing in-situ monotonous and cyclic tensile tests under synchrotron radiation. X-ray diffraction tests allow probing elastic strains in the different grain families and establishing a link with the deformation mechanisms taking place within the microwires. The measurements were carried out on several microwires with diameters ranging from as-drawn 100 µm down to 40 µm thinned down by electropolishing. The as-drawn wires exhibit a core-shell microstructure with <111> fiber texture dominant in core and heterogeneous dual fiber texture <111> and <100> in the shell. Reduction of specimen size by electropolishing results in a higher yield stress and tensile strength along with reduced ductility. In-situ XRD analysis revealed that these differences are linked to the global variation in microstructure induced by shell removal with electropolishing, which in turn affects the load sharing abilities of grain families. This study thus proposes a new way to increase ductility and retain strength in nickel microwires across different diameters by tuning the microstructure architecture.
机译:通过在同步加速器辐射下进行原位单调和循环拉伸试验,研究了冷拔和电抛光镍微丝的变形机理。 X射线衍射测试允许探测不同晶粒家族中的弹性应变,并与微丝内部发生的变形机制建立联系。测量是在几根微丝上进行的,直径范围从拉制的100µm到通过电抛光变薄的40µm。拉伸后的线材表现出核-壳微观结构,其中<111>纤维质地占主导地位,而异质双纤维质地<111>和<100>处于壳中。通过电抛光减小样品尺寸会导致较高的屈服应力和拉伸强度,并降低延展性。原位X射线衍射分析表明,这些差异与通过电抛光去除壳引起的微观结构的整体变化有关,进而影响了晶粒家族的负荷分担能力。因此,这项研究提出了一种通过调整微结构结构来增加镍微线在不同直径下的延展性并保持强度的新方法。

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