Hybrid nanostructured aluminum alloy with super-high strength

被引:4
|
作者
Zhi Wang
Rui T Qu
Sergio Scudino
Bao A Sun
Konda G Prashanth
Dmitri V Louzguine-Luzgin
Ming W Chen
Zhe F Zhang
Jürgen Eckert
机构
[1] IFW Dresden,Department Materials Physics
[2] Institut für Komplexe Materialien,undefined
[3] WPI Advanced Institute for Materials Research (WPI-AIMR),undefined
[4] Tohoku University,undefined
[5] Shenyang National Laboratory for Materials Science,undefined
[6] Institute of Metal Research,undefined
[7] Chinese Academy of Sciences,undefined
[8] Erich Schmid Institute of Materials Science,undefined
[9] Austrian Academy of Sciences,undefined
[10] Montanuniversität Leoben,undefined
来源
NPG Asia Materials | 2015年 / 7卷
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摘要
Methods to strengthen aluminum alloys have been employed since the discovery of the age-hardening phenomenon in 1901. The upper strength limit of bulk Al alloys is ~0.7 GPa by conventional precipitation strengthening and increases to >1 GPa through grain refinement and amorphization. Here we report a bulk hybrid nanostructured Al alloy with high strength at both room temperature and elevated temperatures. In addition, based on high-resolution transmission electron microscopic observations and theoretical analysis, we attribute the strengthening mechanism to the composite effect of the high-strength nanocrystalline fcc-Al and nano-sized intermetallics as well as to the confinement effect between these nano phases. We also report the plastic deformation of nano-sized intermetallics and the occurrence of a high density of stacking faults and twins in fcc-Al after low-strain-rate deformation at room and high temperatures. Our findings may be beneficial for designing high-strength materials for advanced structural applications.
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页码:e229 / e229
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