Evolution Behavior of Shear Band in Al‐0.5Mg‐0.4Si‐0.1Cu Alloy during Hot Compression Process

材料科学 电子背散射衍射 剪切带 变形带 再结晶(地质) 剪切(地质) 动态再结晶 复合材料 合金 透射电子显微镜 结晶学 冶金 微观结构 地质学 热加工 古生物学 化学 纳米技术
作者
Jiangbo Wang,Jian Ding,Hui Yi,Wei Xin,Jiahang Dai,Yao Wang,Xingchuan Xia
出处
期刊:Advanced Engineering Materials [Wiley]
卷期号:26 (9)
标识
DOI:10.1002/adem.202400239
摘要

To clarify the evolution behavior of shear bands in Al‐0.5Mg‐0.4Si‐0.1Cu alloy under high‐temperature conditions, isothermal compression tests are carried out under 400, 450, and 500 °C with 50% compression at a strain rate of 1 s −1 . Through electron backscattered diffraction (EBSD), Schmid factors are mainly distributed between 0.395 and 0.495, making lattices easy to rotate and shear bands formed. The shear band, a local plastic deformation structure, has a significant impact on the dynamic recrystallization and preferred orientation of grains. Through the recrystallization distribution maps, subgrains absorb a large amount of dislocations, which increases the grains’ orientation difference, resulting in the formation of recrystallized grains with high‐angle grain boundaries. In addition, bulging grain boundaries promote the formation of new nuclei. The newly formed nuclei will generate and grow by absorption of dislocations, which is the feature of discontinuous dynamic recrystallization. These two phenomena are further confirmed by transmission electron microscope tests. Finally, R‐Cube textures mainly form in shear bands at 400 °C, while in the matrix, E‐textures mainly form at 400 and 450 °C, and R‐Goss textures are rotated to form at 500 °C, which is confirmed by EBSD test results.
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