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微合金化超细晶 Al 合金以提高延展性。

Microalloying ultrafine grained Al alloys with enhanced ductility.

机构信息

State Key Laboratory for Mechanical Behavior of Materials, Xi'an Jiaotong University, Xi'an, 710049, PR China.

School of Materials Science and Engineering, Xi'an University of Technology, Xi'an, 710048, PR China.

出版信息

Sci Rep. 2014 Jan 8;4:3605. doi: 10.1038/srep03605.

Abstract

Bulk ultrafine grained (UFG)/nanocrystal metals possess exceptional strength but normally poor ductility and thermal stability, which hinder their practical applications especially in high-temperature environments. Through microalloying strategy that enables the control of grains and precipitations in nanostructured regime, here we design and successfully produce a highly microstructure-stable UFG Al-Cu-Sc alloy with ~275% increment in ductility and simultaneously ~50% enhancement in yield strength compared with its Sc-free counterpart. Although the precipitations in UFG alloys are usually preferentially occurred at grain boundaries even at room temperature, minor Sc addition into the UFG Al-Cu alloys is found to effectively stabilize the as-processed microstructure, strongly suppress the θ-Al2Cu phase precipitation at grain boundary, and remarkably promote the θ'-Al2Cu nanoparticles dispersed in the grain interior in artificial aging. A similar microalloying strategy is expected to be equally effective for other UFG heat-treatable alloys.

摘要

块状超细晶(UFG)/纳米晶金属具有优异的强度,但通常延展性和热稳定性较差,这限制了它们的实际应用,特别是在高温环境下的应用。通过微合金化策略,可以控制纳米结构中晶粒和析出物,我们设计并成功制备了一种具有高度微观结构稳定性的 UFG Al-Cu-Sc 合金,与不含 Sc 的合金相比,其延展性提高了约 275%,屈服强度提高了约 50%。尽管在室温下,UFG 合金中的析出物通常优先在晶界处形成,但在 UFG Al-Cu 合金中添加少量 Sc 被发现可以有效地稳定处理后的微观结构,强烈抑制晶界处的θ-Al2Cu 相析出,并显著促进人工时效时θ'-Al2Cu 纳米颗粒在晶粒内部的弥散。类似的微合金化策略预计对其他 UFG 可热处理合金同样有效。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ec17/3884224/cb6dcc18d667/srep03605-f1.jpg

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