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High Temperature Plastic Deformation Behavior and Hot Workability of an Alumina-forming Austenitic Heat-resisting Alloy |
Yutong YANG,Rui LUO( ),Xiaonong CHENG,Xiang GUI,Leli CHEN,Wei WANG,Qi ZHENG |
School of Materials Science and Engineering, Jiangsu University, Zhenjiang 212013, China |
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Cite this article:
Yutong YANG,Rui LUO,Xiaonong CHENG,Xiang GUI,Leli CHEN,Wei WANG,Qi ZHENG. High Temperature Plastic Deformation Behavior and Hot Workability of an Alumina-forming Austenitic Heat-resisting Alloy. Chinese Journal of Materials Research, 2019, 33(3): 232-240.
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Abstract The deformation behavior of a new alumina-forming austenitic stainless steel (AFA) was investigated by means of isothermal hot compression test with a strain rate range of 0.01~5 s-1 at 950~1150℃, as well as OM and EBSD characterization. The hot processing map of the AFA steel was established based on dynamic material model. The influence of deformation parameters on the processability of the steel was also analyzed. Besides, the thermal deformation mechanism diagram was also constructed according to the deformation characteristics of different regions. The results show that the high temperature flow stress of the new AFA steel is significantly affected by the deformation temperature and strain rate. Serious flow instability can be observed at 950~1150℃ with strain rates of 0.18~5 s-1. Fully dynamic recrystallization occurred under the deformation conditions of 1050~1120℃ and 0.01~0.1 s-1 or 1120~1150℃ and 10-0.5~10-1.5 s-1. The recrystallized grains are fine and homogeneous with the power dissipation factor η reaching the peak value of 45%. It is proposed that the recrystallization zone should be preferentially selected and the flow instability zone should be avoided in order to establish a reasonable hot processing system.
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Received: 03 July 2018
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Fund: Supported by National High-tech R & D Program (863 Program)(2012AA03A501);Jiangsu Province's Graduate Research Innovation Plan for 2014(KYLY-1027) |
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