Superplastic-Like Elongation by Transition of Deformation Mechanism from Grain Boundary Sliding to Solute Drag Creep in Fine-Grained Al-Mg Solid Solution Alloy

被引:2
|
作者
Ito, Tsutomu [1 ]
Mizuguchi, Takashi [2 ]
机构
[1] Kagawa Coll NITKC, Natl Inst Technol, 355 Chokushi Cho, Takamatsu, Kagawa 7618058, Japan
[2] Ehime Univ, 10-13 Dogo Himata, Matsuyama, Ehime 7908577, Japan
关键词
Al-Mg Solid Solution Alloy; Grain Boundary Sliding; Solute Drag Creep; Superplasticity; Superplastic-Like Behavior; Friction Stir Processing (FSP); Grain Growth; TENSILE DUCTILITY; BEHAVIOR;
D O I
10.4028/www.scientific.net/MSF.941.1216
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
It is widely accepted that the dominant deformation mechanism of fine-grained superplasticity is through grain boundary sliding (GBS) that occurs in fine-grained materials. However, it has been reported that in "Class I" solid solution alloys, superplastic-like behavior controlled by trans-granular deformation occurs by solute drag creep. In this study, we have investigated superplastic behavior in a fine-grained aluminum solid solution alloy with a thermally unstable microstructure. To obtain fine-grained microstructure, friction stir processing (FSP) was applied to a commercial 5083 aluminum (Al-Mg) alloy. An equiaxial fine-grained microstructure with a grain size of 7.4 mu m was obtained after FSP; however, this microstructure was unstable at high temperatures. Generally, for fine-grained superplasticity or GBS to occur or continue, the fine-grained microstructure must be smaller than 10 mu m during high-temperature deformation. However, a large elongation of over 200% was observed at high temperatures despite the occurrence of grain growth. From microstructural observations, it was determined that a fine-grained microstructure is maintained in the early stage of deformation, but at strain levels greater than 100%, trans-granular deformation occurs. The microstructural feature of this trans-granular deformation is similar to the deformation microstructure of solute drag creep observed in "Class I" solid solution alloys. This indicates that a change in the deformation mechanism from GBS to solute drag creep takes place during high-temperature deformation. Here, based on our observations on our model system, which is a thermally unstable aluminum solid solution alloy, we discuss the possibility of a superplastic elongation occurring by means of a transition of the deformation mechanism.
引用
收藏
页码:1216 / 1221
页数:6
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