Thermal Deformation Behavior and Processing Map of W80-Cu20 Composite by Hot Compressing

被引:0
|
作者
Zhang Bing [1 ]
Liu Pengru [1 ]
Zhang Zhijuan [1 ]
Zhao Tianli [1 ]
Zhao Fenfen [1 ]
Ma Yanheng [1 ]
机构
[1] Xian Univ Architecture & Technol, Coll Met Engn, Natl & Local Engn Researching Ctr Funct Mat Proc, Xian 710055, Peoples R China
关键词
W80-Cu20; composite; thermal deformation behavior; processing map; damage; CU COMPOSITES; HEAVY ALLOY; STRAIN-RATE; MICROSTRUCTURE; TEMPERATURE; FABRICATION;
D O I
暂无
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The thermal deformation behavior of W80-Cu20 composites were investigated by hot compression with Gleeble- 1500 thermal simulation system under deformation temperature range of 810 similar to 970 degrees C and strain rate range of 0.01 similar to 10 s(-1) with a true strain of 0.69. Based on modified dynamic materials model(MDMM) and Malas's criterion, the power dissipation map and hot processing map were established. Combined with microstructure, the reasonable parameters of hot processing were determined. And the damage modes of W80-Cu20 composite was analyzed. The results show that the true stress-true strain curves of W80-Cu20 composites are typical dynamic recrystallization (DRX) type curves, and the peak stress increases with the decreasing of deformation temperature and the increasing of strain rate. The preferable processing zones of W80-Cu20 composite were determined as follows: 840 similar to 885 degrees C, 0.2 similar to 1.42 s(-1) and 885 similar to 917 degrees C, 0.83 similar to 2.05 s(-1). The damage modes of W80-Cu20 composites involve Cu phase rupture, W-Cu interfacial separation, W-W grain boundary separation and W-grain crack.
引用
收藏
页码:203 / 210
页数:8
相关论文
共 28 条
  • [1] Ali Shanaghi, 2020, APPL PHYS A-MATER, V126, P2333
  • [2] Formation of gradient microstructure and mechanical properties of hot-pressed W-20 wt% Cu composites after sliding friction severe deformation
    Dong, L. L.
    Ahangarkani, M.
    Zhang, W.
    Zhang, B.
    Chen, W. G.
    Fu, Y. Q.
    Zhang, Y. S.
    [J]. MATERIALS CHARACTERIZATION, 2018, 144 : 325 - 335
  • [3] Recent progress in development of tungsten-copper composites: Fabrication, modification and applications
    Dong, L. L.
    Ahangarkani, M.
    Chen, W. G.
    Zhang, Y. S.
    [J]. INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2018, 75 : 30 - 42
  • [4] Constitutive equation and hot deformation behavior of homogenized Al-7.68Zn-2.12Mg-1.98Cu-0.12Zr alloy during compression at elevated temperature
    Feng, D.
    Zhang, X. M.
    Liu, S. D.
    Deng, Y. L.
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2014, 608 : 63 - 72
  • [5] GotohSinji Hara Noriyuki, 1997, CHINA TUNGSTEN IND, P55
  • [6] W-Cu composites with submicron- and nanostructures: progress and challenges
    Hou, Chao
    Song, Xiaoyan
    Tang, Fawei
    Li, Yurong
    Cao, Lijun
    Wang, Jie
    Nie, Zuoren
    [J]. NPG ASIA MATERIALS, 2019, 11 (01)
  • [7] Dynamic deformation behavior of 93W-5.6Ni-1.4Fe heavy alloy prepared by spark plasma sintering
    Hu, Ke
    Li, Xiaoqiang
    Guan, Mo
    Qu, Shengguan
    Yang, Xinyu
    Zhang, Jiuxing
    [J]. INTERNATIONAL JOURNAL OF REFRACTORY METALS & HARD MATERIALS, 2016, 58 : 117 - 124
  • [8] Hot deformation mechanisms and microstructure evolution of SiCp/2014Al composite
    Huang, Zhiye
    Zhang, Xingxing
    Xiao, Bolyu
    Ma, Zongyi
    [J]. JOURNAL OF ALLOYS AND COMPOUNDS, 2017, 722 : 145 - 157
  • [9] The strain rate and temperature dependence of the dynamic impact response of tungsten composite
    Lee, WS
    Xiea, GL
    Lin, CF
    [J]. MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 1998, 257 (02): : 256 - 267
  • [10] Li Xiaojing, 2021, J ALLOY COMPD, V853, P156