Superplastic deformation mechanisms of a fine-grained Al-Cu-Li alloy

被引:10
作者
Liu, Xiaodong [1 ,2 ]
Ye, Lingying [1 ,3 ]
Tang, Jianguo [1 ,3 ]
Ke, Bin [1 ]
Dong, Yu [1 ]
Chen, Xiaojiao [4 ,5 ]
Gu, Yi [1 ,3 ]
机构
[1] Cent South Univ, Sch Mat Sci & Engn, Changsha 410083, Hunan, Peoples R China
[2] Hunan Inst Technol, Dept Mech Engn, Hengyang 421002, Hunan, Peoples R China
[3] Cent South Univ, Key Lab Nonferrous Met Mat Sci & Engn, Minist Educ, Changsha 410083, Hunan, Peoples R China
[4] Chinese Acad Sci, Inst Plasma Phys, Hefei 230026, Anhui, Peoples R China
[5] Univ Sci & Technol China, Hefei 230026, Anhui, Peoples R China
来源
MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING | 2022年 / 848卷
基金
中国国家自然科学基金;
关键词
Al-Cu-Li alloys; Superplastic deformation; Diffusion creep; Focused ion beams; MICROSTRUCTURAL EVOLUTION; STRAIN-RATE; TEXTURE ANALYSIS; FLOW; CREEP; ACCOMMODATION; BEHAVIOR; GROWTH; STAGE;
D O I
10.1016/j.msea.2022.143403
中图分类号
TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The superplastic flow behavior and microstructural evolution of a fine-grained Al-Cu-Li alloy deformed at a temperature of 490 degrees C and an initial strain rate of 2 x 10(-4) s(-1) were studied by electron backscatter diffraction, scanning electron microscope and focused ion beam techniques. Based on the obtained data, the contributions of grain boundary sliding and intragranular dislocation slip to superplastic deformation of the Al-Cu-Li are carefully calculated. The results show that the whole superplastic deformation process can be divided into three stages. Strain from 0 to 0.1 can be identified as the strain hardening stage, in which dislocation movement is the main deformation mechanism and grain boundary sliding is the accommodation mechanism, multiplication of dislocation leads to strain hardening. Strain from 0.1 to 1.2 can be identified as the nearly steady flow stage, in which the grains are nearly equiaxed, the average grain size increases slowly and the proportion of high angle grain boundaries increases. Moreover, with the increase of the strain, the contribution of grain boundary sliding on deformation decreases gradually. The strain softening caused by dynamic recrystallization was observed at the end of this stage. The third stage is another strain hardening stage, in which rapidly dynamic grain growth and dislocation slip result in the strain hardening. The current research results emphasize that the diffusion creep is mainly responsible for the superplastic deformation, and the grain boundary sliding and intragranular dislocation slip play an accommodating role.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Deformation behavior of fine-grained 5083 Al alloy at elevated temperature
    张凯锋
    闫宏华
    Transactions of Nonferrous Metals Society of China, 2009, 19(S2) (S2) : 307 - 311
  • [22] Creep deformation mechanisms in fine-grained niobium
    Lewis, A. C.
    van Heerden, D.
    Eberl, C.
    Hemker, K. J.
    Weihs, T. P.
    ACTA MATERIALIA, 2008, 56 (13) : 3044 - 3052
  • [23] Properties of a New Al-Cu-Li Alloy
    Hu Fang
    Zheng Ziqiao
    Zhong Jifa
    Xue Xili
    Gong Zhu
    RARE METAL MATERIALS AND ENGINEERING, 2017, 46 (07) : 1989 - 1993
  • [24] Hot deformation behavior and microstructural evolution of the Al-Cu-Li alloy: A study with processing map
    Tang, Jiaguo
    Yi, Youping
    He, Hailin
    Huang, Shiquan
    Zhang, Jingjing
    Dong, Fei
    JOURNAL OF ALLOYS AND COMPOUNDS, 2023, 934
  • [25] Superplastic Deformation Behaviors and Power Dissipation Rate for Fine-Grained Ti-6Al-4V Titanium Alloy Processed by Direct Rolling
    Wang, Xin
    Zhou, Ge
    Men, Yue
    Zhang, Siqian
    Zhang, Haoyu
    Li, Feng
    Chen, Lijia
    CRYSTALS, 2022, 12 (02)
  • [26] Deformation mechanism of as-extruded Al-Cu-Li alloy with heterogeneous fiber structure
    Wang, Kuizhao
    Zhang, Cunsheng
    Cheng, Zinan
    Meng, Zijie
    Chen, Liang
    Zhao, Guoqun
    MATERIALS & DESIGN, 2023, 229
  • [27] Processing maps and microstructural evolution of Al-Cu-Li alloy during hot deformation
    Sheng-Li Yang
    Jian Shen
    Yong-An Zhang
    Zhi-Hui Li
    Xi-Wu Li
    Shu-Hui Huang
    Bai-Qing Xiong
    Rare Metals, 2019, 38 (12) : 1136 - 1143
  • [28] Characterization of Localized Corrosion in an Al-Cu-Li Alloy
    Luo, Chen
    Zhang, Xinxin
    Zhou, Xiaorong
    Sun, Zhihua
    Zhang, Xiaoyun
    Tang, Zhihui
    Lu, Feng
    Thompson, George E.
    JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2016, 25 (05) : 1811 - 1819
  • [29] A Weldability Study of Al-Cu-Li 2198 Alloy
    Calogero, V.
    Costanza, G.
    Missori, S.
    Sili, A.
    Tata, M. E.
    METALLURGIST, 2014, 57 (11-12) : 1134 - 1141
  • [30] The propagation of localized corrosion in Al-Cu-Li alloy
    Zhang, X.
    Zhou, X.
    Ma, Y.
    Thompson, G. E.
    Luo, C.
    Sun, Z.
    Zhang, X.
    Tang, Z.
    SURFACE AND INTERFACE ANALYSIS, 2016, 48 (08) : 745 - 749