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Transition from poor ductility to room-temperature superplasticity in a nanostructured aluminum alloy

机译:纳米结构铝合金从不良延展性转变为室温超塑性

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摘要

Recent developments of nanostructured materials with grain sizes in the nanometer to submicrometer range have provided ground for numerous functional properties and new applications. However, in terms of mechanical properties, bulk nanostructured materials typically show poor ductility despite their high strength, which limits their use for structural applications. The present article shows that the poor ductility of nanostructured alloys can be changed to room-temperature superplastisity by a transition in the deformation mechanism from dislocation activity to grain-boundary sliding. We report the first observation of room-temperature superplasticity (over 400% tensile elongations) in a nanostructured Al alloy by enhanced grain-boundary sliding. The room-temperature grain-boundary sliding and superplasticity was realized by engineering the Zn segregation along the Al/Al boundaries through severe plastic deformation. This work introduces a new boundary-based strategy to improve the mechanical properties of nanostructured materials for structural applications, where high deformability is a requirement.
机译:晶粒尺寸在纳米至亚微米范围内的纳米结构材料的最新发展为众多功能特性和新应用提供了基础。然而,就机械性能而言,块状纳米结构材料尽管强度高,但通常仍显示出较差的延展性,这限制了它们在结构应用中的用途。本文表明,纳米结构合金的延展性差可以通过变形机制从位错活性过渡到晶界滑动而转变为室温超塑性。我们报告了通过增强的晶界滑动在纳米结构的铝合金中室温超塑性(超过400%拉伸伸长率)的首次观察。通过对锌沿严重的塑性变形沿Al / Al边界进行偏析进行处理,可以实现室温下的晶界滑动和超塑性。这项工作引入了一种新的基于边界的策略,以改善需要高可变形性的结构应用纳米结构材料的机械性能。

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