Effect of initial alpha lamellar thickness on deformation behavior of a near-α high-temperature alloy during thermomechanical processing
Autor: | Hui Li, Yongquan Ning, Zhanglong Zhao, Ge Miaomiao, Hongzhen Guo, Zekun Yao, Xiaopu Miao |
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Rok vydání: | 2017 |
Předmět: |
010302 applied physics
Materials science Mechanical Engineering 02 engineering and technology Strain rate Flow stress 021001 nanoscience & nanotechnology Condensed Matter Physics Microstructure 01 natural sciences Stress (mechanics) Crystallography Deformation mechanism Mechanics of Materials 0103 physical sciences Thermomechanical processing General Materials Science Lamellar structure Composite material Deformation (engineering) 0210 nano-technology |
Zdroj: | Materials Science and Engineering: A. 682:345-353 |
ISSN: | 0921-5093 |
DOI: | 10.1016/j.msea.2016.11.063 |
Popis: | The hot deformation behavior of a near-α high-temperature Ti-5.4Al-3.7Sn-3.3Zr-0.5Mo-0.4Si alloy with initial alpha lamellar thicknesses from 1 µm to 10 µm was investigated by conducting a series of isothermal hot compression tests. The effect of initial alpha lamellar thickness on the flow behavior, apparent activation energy, strain-rate sensitivity and microstructure evolution under different hot deformation conditions were analyzed based on the experimental data. The results show that the flow stress of the alloy display an overall decreasing trend with the increasing of initial alpha lamellar thickness for a given temperature and strain rate. The peak stress and the apparent activity energy during thermomechanical processing were quantitatively described as a function of alpha platelet thickness based on the Hall-Petch behavior. According to various deformation mechanisms, the variations of apparent activity energy and strain rate sensitivity associated with different initial alpha lamellar thicknesses were calculated and analyzed for the alloy, which indicate that the thin initial alpha lamellar microstructure with higher apparent activation energy and strain rate sensitivity shows easier occurrence of dynamic globularization than thick initial alpha lamellar microstructure. Furthermore, the characterization of microstructure evolution for the alpha lamellae with different thicknesses were observed and the thin lamellae was more easily fragmented into fine α phase while most of the thick lamellae were elongated or buckled at same processing conditions. |
Databáze: | OpenAIRE |
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