Fabrication of bulk ultrafine-grained materials through intense plastic straining

被引:0
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作者
Patrick B. Berbon
Terence G. Langdon
Nikolai K. Tsenev
Ruslan Z. Valiev
Minoru Furukawa
Zenji Horita
Minoru Nemoto
机构
[1] the University of Southern California,Departments of Materials Science and Mechanical Engineering
[2] Ufa State Petroleum Technical University,the Institute of Chemical Technology
[3] Ufa State Aviation Technical University,the Institute of Physics of Advanced Materials
[4] Fukuoka University of Education,the Department of Technology
[5] Kyushu University,the Department of Materials Science and Engineering
关键词
Material Transaction; Homogeneous Microstructure; Solid Solution Alloy; Superplastic Form; Fast Strain Rate;
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摘要
Ultrafine grain sizes were introduced into samples of an Al-3 pct Mg solid solution alloy and a cast Al-Mg-Li-Zr alloy using the process of equal-channel angular (ECA) pressing. The Al-3 pct Mg alloy exhibited a grain size of ∼0.23 µm after pressing at room temperature to a strain of ∼4, but there was significant grain growth when the pressed material was heated to temperatures above ∼450 K. The Al-Mg-Li-Zr alloy exhibited a grain size of ∼1.2 µm, and the microstructure was heterogeneous after pressing to a strain of ∼4 at 673 K and homogeneous after pressing to a strain of ∼8 at 673 K with an additional strain of ∼4 at 473 K. The heterogeneous material exhibited superplastic-like flow, but the homogeneous material exhibited high-strain-rate superplasticity with an elongation of >1000 pct at 623 K at a strain rate of 10−2 s−1. It is concluded that a homogeneous microstructure is required, and therefore a high pressing strain, in order to attain high-strain-rate superplasticity (HSR SP) in ultrafine-grained materials.
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页码:2237 / 2243
页数:6
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