Development of flow stress model for hot deformation of Ti-47%Al alloy

被引:13
作者
Deng Tai-qing [1 ]
Ye Lei [1 ]
Sun Hong-fei [1 ]
Hu Lian-xi [1 ]
Yuan Shi-jian [1 ]
机构
[1] Harbin Inst Technol, Sch Mat Sci & Engn, Harbin 150001, Peoples R China
来源
TRANSACTIONS OF NONFERROUS METALS SOCIETY OF CHINA | 2011年 / 21卷
关键词
gamma-TiAl based alloy; hot compression; flow stress model; deformation behavior; MECHANICAL-PROPERTIES; HIGH NB; BEHAVIOR; MICROSTRUCTURE; SIMULATION; EVOLUTION; CAST;
D O I
10.1016/S1003-6326(11)61597-5
中图分类号
TF [冶金工业];
学科分类号
0806 ;
摘要
The hot deformation behavior of a gamma-TiAl based alloy (Ti-47%Al, mole fraction) was investigated by isothermal compression tests performed at elevated temperature of 900-1 200 degrees C and strain rate of 0.001-0.02 s(-1). The effect of temperature, strain rate and strain on the flow stress of the alloy was evaluated. The higher the deformation temperature and the lower the strain rate, the smaller the deformation resistance. The stress exponent, n, and the apparent activation energy, Q, were determined as 2.6 and 321.2 kJ/mol by the sine hyperbolic law, respectively. Based on the experimental results by the orthogonal method, a flow stress model for hot deformation was established by stepwise regression analysis. Then the effectiveness of the flow stress model was confirmed by other experimental data different from those experimental data used to establish the model. And it was proved that the flow stress model can well predict the mechanical behavior and flow stress of the alloy during hot deformation.
引用
收藏
页码:S308 / S314
页数:7
相关论文
共 50 条
[41]   Hot deformation and processing maps of a Fe-Al intermetallic alloy [J].
Lyszkowski, Radoslaw ;
Bystrzycki, Jerzy .
MATERIALS CHARACTERIZATION, 2014, 96 :196-205
[42]   Hot Deformation and Dynamic Recrystallization of 7075 Al Alloy in the Extruded State [J].
Wu, Ruirui ;
Jing, Qiqing ;
Zhang, Zhixiong ;
Gao, Bo ;
Hou, Jie ;
Shuang, Yuanhua ;
Chen, Huiqin ;
Wang, Fang .
JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2024,
[43]   Behavior of flow stress of Al-Mn alloy during hot compression [J].
Zhang, Xiao ;
Ren, Zheng ;
Zhu, Xiurong ;
Ren, Jing ;
Lian, Fukui ;
Hou, Liqun .
ADVANCED RESEARCH ON MATERIAL SCIENCE, ENVIROMENT SCIENCE AND COMPUTER SCIENCE III, 2014, 886 :109-114
[44]   Flow stress behaviour and constitutive model of 7055 aluminium alloy during hot plastic deformation [J].
Zhang Tao ;
Wu Yun-xin ;
Gong Hai ;
Shi Wen-ze ;
Jiang Fang-min .
MECHANIKA, 2016, (05) :359-365
[45]   Unsteady flow softening behaviour of near beta Ti alloy TLM during hot deformation [J].
Bai, X. F. ;
Zhao, Y. Q. ;
Zeng, W. D. ;
Zhang, Y. S. ;
Yu, S. .
MATERIALS SCIENCE AND TECHNOLOGY, 2014, 30 (06) :665-669
[46]   Hot deformation behavior of Ti-Al-Sn-Zr-Mo alloy [J].
Lypchanskyi, Oleksandr ;
Sleboda, Tomasz ;
Zygula, Krystian ;
Wojtaszek, Marek ;
Ruminski, Maciej .
18TH INTERNATIONAL CONFERENCE ON METAL FORMING 2020, 2020, 50 :63-68
[47]   AI-driven prediction and intelligent evaluation of flow stress model, processing performance, and microstructural evolution during hot deformation of Ni47Ti33Hf20 alloy [J].
Wang, Wenjingzi ;
Zhou, Ge ;
Han, Jinke ;
Cai, Chao ;
Zhang, Haoyu ;
Zhang, Siqian ;
Zhang, Nannan ;
Chen, Lijia .
MATERIALS TODAY COMMUNICATIONS, 2025, 46
[48]   HOT-DEFORMATION BEHAVIOR OF HOT ISOSTATIC PRESSED Ti-6Al-4V ALLOY DURING HOT COMPRESSION [J].
Liu, Haijun ;
Zhang, Zhimin ;
Xu, Kaihua ;
Zhang, Jishi ;
Xue, Yong ;
Wang, Qiang .
MATERIALI IN TEHNOLOGIJE, 2021, 55 (04) :559-570
[49]   Dynamic behavior and modified artificial neural network model for predicting flow stress during hot deformation of Alloy 925 [J].
Zhu, Yulong ;
Cao, Yu ;
Liu, Cunjian ;
Luo, Rui ;
Li, Na ;
Shu, Gang ;
Huang, Guangjie ;
Liu, Qing .
MATERIALS TODAY COMMUNICATIONS, 2020, 25
[50]   A Study on the Hot Deformation Behavior of 47Zr-45Ti-5Al-3V Alloy with Initial Lamellar α Structure [J].
Tan, Yuanbiao ;
Ji, Liyuan ;
Duan, Jingli ;
Liu, Wenchang ;
Zhang, Jingwu ;
Liu, Riping .
METALLURGICAL AND MATERIALS TRANSACTIONS A-PHYSICAL METALLURGY AND MATERIALS SCIENCE, 2016, 47A (12) :5974-5984