Article ID | Journal | Published Year | Pages | File Type |
---|---|---|---|---|
7981435 | Materials Science and Engineering: A | 2014 | 9 Pages |
Abstract
The microstructure evolution and stress-induced phase transformation (SIPT) characteristics of continuous columnar-grained (CCG) polycrystalline Cu-12 wt % Al alloy during the tensile deformation process were investigated to understand the ductility enhancement mechanism, which shows a tensile elongation of 28%, nine times as high as that of the conventional as-cast polycrystalline counterpart. The results show that the CCG alloy has highly-oriented ã001ãβ texture and straight low-energy grain boundaries (GBs) along solidification direction, which significantly promote grains compatibility during plastic deformation. Additionally, besides β1'âα1' transformation, β1'âγ1'âα1' SIPT was also observed simultaneously in the CCG polycrystalline Cu-12 wt % Al alloy, which is different from single crystalline and conventional polycrystalline counterparts. As a consequence of the special phase transformations, high phase transformation plasticity (15-20%) and prominent subsequent plastic deformation (8-13%) of the phase transformation product α1' martensite can be obtained.
Related Topics
Physical Sciences and Engineering
Materials Science
Materials Science (General)
Authors
Hai-You Huang, Yu Wang, Jian-Xin Xie,