Studying on High Temperature Plastic Deformation Behavior and Flow Softening of Novel Multiphase TiAl Alloy

被引:0
|
作者
Han J. [1 ,2 ]
Yao H. [1 ,2 ]
Jia Y. [1 ,2 ]
Xie G. [3 ]
Wang T. [1 ,2 ]
机构
[1] College of Mechanical and Vehicle Engineering, Taiyuan University of Technology, Taiyuan
[2] Engineering Research Center of Advanced Metal Composites Forming Technology and Equipment, Ministry of Education, Taiyuan University of Technology, Taiyuan
[3] State Key Laboratory of Rolling and Automation, Northeastern University, Shenyang
关键词
dynamic recrystallization; multiphase TiAl; phase transition; softening mechanism; thermoplastic deformation;
D O I
10.3901/JME.2022.16.077
中图分类号
学科分类号
摘要
Focusing on the poor hot-deformability of TiAl alloy, the thermal deformation behavior of Ti-40Al-6V-1Cr-0.3Ni at deformation temperature of 1 100-1 225 ℃, strain rate of 0.01-0.5 s−1 and engineering strain of 70% is studied by Gleeble-3800 thermal simulation test machine. The constitutive equation of the alloy is deduced based on the Arrhenius hyperbolic sinusoidal function model. The activation energy and stress index are 464.74 kJ/mol and 2.50 respectively, lower than that of the present deforming TiAl alloy. Based on the dynamic material model, the hot working diagram of the alloy with the engineering strain of 70% is established. The microstructure analysis results show that the multiphase TiAl alloy could fully recrystallize at high temperature and low strain rate, showing a similar behavior to that of the alloy with high stacking fault energy. The addition of β phase stable elements widen the hot working window of the alloy. β Phase plays an important role in relieving work hardening during high-temperature deformation. The full recrystallization and phase transformation decomposition of β phase should be the main ways to alleviate stress concentration. At the same time, it acted as a high-temperature lubricant to alleviate the stress at grain boundary and phase boundary and coordinate the difficult deformation α phase at high temperature. As a result, the thermoplastic deformation ability of the material is improved. According to the hot working diagram and microstructure feature, the appropriate deformation process parameters are proposed and successfully applied to the nearly isothermal forging of TiAl alloy. © 2022 Editorial Office of Chinese Journal of Mechanical Engineering. All rights reserved.
引用
收藏
页码:77 / 88
页数:11
相关论文
共 35 条
  • [1] Lin WANG, Chen SHEN, ZHANG Yuelong, Et al., Effect of Al content on the microstructure and mechanical properties of γ-TiAl alloy fabricated by twin-wire plasma arc additive manufacturing system[J], Materials Science and Engineering, 826, 4, (2021)
  • [2] QIN Renyao, ZHANG Guodong, LI Neng, Et al., Research progress on additive manufacturing of TiAl-based alloys[J], Journal of Mechanical Engineering, 57, 8, pp. 115-132, (2021)
  • [3] Shuai LI, Zhongying LIU, Yueqing XIA, Et al., Vacuum brazing TiAl intermetallics to GH3030 alloy with a multi-component Ti-based filler metal[J], Journal of Manufacturing Processes, 70, 2, pp. 484-493, (2021)
  • [4] CHEN Ruirun, FANG Hongze, CHEN Xiaoyu, Et al., Formation of TiC/Ti<sub>2</sub>AlC and α<sub>2</sub>+γ in in-situ TiAl composites with different solidification paths[J], Intermetallics, 81, pp. 9-15, (2017)
  • [5] NARAYANA P L,, LI C L,, HONG J K,, Et al., Characterization of hot deformation behavior and processing maps of Ti-19Al-22Mo alloy[J], Metals and Materials International, 25, 5, pp. 1063-1071, (2019)
  • [6] GUPTA R K, KUMAR V A, RAJ J N, Et al., Hot deformation studies on β<sub>0</sub> stabilized TiAl alloy made through ingot metallurgy route[J], Transactions of the Indian Institute of Metals, 74, pp. 2977-2989, (2021)
  • [7] Gengwu GE, Zeming WANG, Laiqi ZHANG, Et al., Hot deformation behavior and artificial neural network modeling of β-γ TiAl alloy containing high content of Nb[J], Materials Today Communications, 27, (2021)
  • [8] Lei ZHU, Jinshan LI, Bin TANG, Et al., Dynamic recrystallization and phase transformation behavior of a wrought β-γ TiAl alloy during hot compression[J], Progress in Natural Science:Materials International, 30, 4, pp. 517-525, (2020)
  • [9] CLEMENS H, WALLGRAM W, CREMMER S,, Et al., Design of novel β‐solidifying TiAl alloys with adjustable β/B2‐phase fraction and excellent hot‐workability[J], Advanced Engineering Materials, 10, 8, pp. 707-713, (2008)
  • [10] PROKOSHKIN S, BRAILOVSKI V,INAEKYAN, Et al., Thermomechanical treatment of TiNi intermetallic-based shape memory alloys[J], Materials Science Foundations, 81-82, pp. 260-341, (2015)