Hall–Petch Slope in Ultrafine Grained Al-Mg Alloys

被引:0
作者
Dengshan Zhou
Hao Wang
David W. Saxey
Ondrej Muránsky
Hongwei Geng
William D. A. Rickard
Zakaria Quadir
Chao Yang
Steven M. Reddy
Deliang Zhang
机构
[1] Northeastern University,Key Laboratory for Anisotropy and Texture of Materials (Ministry of Education)
[2] Northeastern University,Institute of Ceramics and Powder Metallurgy, School of Materials Science and Engineering
[3] Australian Nuclear Science and Technology Organization (ANSTO),School of Materials Science and Engineering
[4] University of New South Wales (UNSW),Geoscience Atom Probe, Advanced Resource Characterization Facility, John de Laeter Centre
[5] Curtin University,Microscopy and Microanalysis Facility, John de Laeter Centre
[6] Curtin University,Shanghai Key Laboratory of Advanced High
[7] Shanghai Jiao Tong University,temperature Materials and Precision Forming, School of Materials Science and Engineering
来源
Metallurgical and Materials Transactions A | 2019年 / 50卷
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摘要
The Hall–Petch relation has long been used to relate the yield strength of a metal to its grain sizes in which the effectiveness of grain size strengthening in the metal is dictated by the Hall–Petch coefficient (slope). Therefore, understanding the microstructural dependence of the Hall–Petch slope would be very useful in designing new high-strength ultrafine grained (UFG) metallic materials. In this study, we investigated the microstructural factors affecting the Hall–Petch slope in UFG Al-Mg alloys with an average grain size range from 374 to 639 nm and different Mg contents of 0, 2.5, 5, and 7.5 at. pct. The rods prepared by extrusion of mechanically alloyed powder compacts were annealed for 5 hours at 380 °C, 420 °C, and 500 °C respectively followed by water quenching to produce the alloy samples in this study. The measured Hall–Petch slopes of the samples were found to increase with increasing Mg content and had higher values than those previously reported for Al(Mg) solid solutions with Mg concentrations comparable to the Mg contents in this study. Analysis of X-ray diffraction, transmission electron microscopy, and atom probe tomography experimental data as well as strengthening mechanisms demonstrates that the formation of nanoscale MgO dispersions plays a major role in the improved Hall–Petch slope observed in Al-Mg alloys.
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页码:4047 / 4057
页数:10
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