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Nanostructural hierarchy increases the strength of aluminium alloys

机译:纳米结构层次提高了铝合金的强度

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Increasing the strength of metallic alloys while maintaining formability is an interesting challenge for enabling new generations of lightweight structures and technologies. In this paper, we engineer aluminium alloys to contain a hierarchy of nanostructures and possess mechanical properties that expand known performance boundaries—an aerospace-grade 7075 alloy exhibits a yield strength and uniform elongation approaching 1 GPa and 5%, respectively. The nanostructural architecture was observed using novel high-resolution microscopy techniques and comprises a solid solution, free of precipitation, featuring (i) a high density of dislocations, (ii) subnanometre intragranular solute clusters, (iii) two geometries of nanometre-scale intergranular solute structures and (iv) grain sizes tens of nanometres in diameter. Our results demonstrate that this novel architecture offers a design pathway towards a new generation of super-strong materials with new regimes of property-performance space.. ? 2010 Nature Publishing Group, a division of Macmillan Publishers Limited. All Rights Reserved.
机译:在保持可成形性的同时增加金属合金的强度是实现新一代轻质结构和技术的一个有趣的挑战。在本文中,我们对铝合金进行工程设计,使其包含纳米结构层次,并具有可扩展已知性能边界的机械性能-航空级7075合金的屈服强度和均匀伸长率分别接近1 GPa和5%。使用新颖的高分辨率显微镜技术观察了纳米结构的结构,该结构包含无沉淀的固溶体,其特征为:(i)位错密度高;(ii)纳米级以下的颗粒内溶质团簇;(iii)两种纳米级的纳米级晶间几何结构溶质结构和(iv)直径数十纳米的晶粒尺寸。我们的结果表明,这种新颖的架构为通向具有性能表现空间新制度的新一代超强材料提供了设计途径。 2010 Nature Publishing Group,Macmillan Publishers Limited的子公司。版权所有。

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