Temperature Dependences of the Mechanical Properties of Microlayer Ti/TiAl3 Composites Under Cyclic Loading

被引:0
|
作者
Lugovskoy, Yu. F. [1 ]
Nazarenko, V. A. [1 ]
Zorin, V. A. [1 ]
Spiridonov, S. A. [1 ]
Borovik, V. G. [1 ]
机构
[1] Natl Acad Sci Ukraine, Frantsev Inst Problems Mat Sci, Kiev, Ukraine
关键词
microlayer material; temperature; elastic modulus; nondestructive stresses; fatigue; MICROSTRUCTURE;
D O I
10.1007/s11106-023-00360-x
中图分类号
TQ174 [陶瓷工业]; TB3 [工程材料学];
学科分类号
0805 ; 080502 ;
摘要
The paper examines three microlayer Ti/TiAl3 materials of initial Ti-Al composition, which were produced through reactive sintering and rolling of packets consisting of alternating titanium and aluminum ribbons of varying thickness at 600, 700, and 770 & DEG;C. Young's modulus of these materials was determined under longitudinal vibrations at room temperature with a frequency of about 45 kHz and under resonant bending vibrations at high temperatures ranging from 20 to 820 & DEG;C with a frequency a hundred times lower. The temperature dependences of the elastic modulus E for the microlayer materials exhibited slopes between those of the dependences for titanium and the well- known VT25U alloy. The Ti/TiAl3 materials were heated and held at 700 & DEG;C to result in a material with stable E values, surpassing those of the VT25U alloy at temperatures up to 700 & DEG;C. The dependences of stresses in the samples on the relative power of the test installation were determined at constant temperatures of 650 and 700 & DEG;C for the microlayer Ti/TiAl3 and VT25U materials. The microlayer materials dissipated a significantly larger portion of mechanical vibration energy than the heat-resistant VT25U material. The difference in the fatigue resistance mechanisms for the microlayer and isotropic materials at high temperatures is not solely attributed to their distinct temperature dependences of Young's modulus at atomic interaction levels. The difference primarily arises from the variation in temperature-dependent cyclic strains associated with dislocations at microstructural and macrostructural levels. A fatigue crack is shown to delaminate the material in the middle of the intermetallic layers.
引用
收藏
页码:736 / 747
页数:12
相关论文
共 50 条
  • [41] Influence of Ti-Al electronic structure and Mn-doping brittleness TiAl3 at room temperature
    Li, Yan-Feng
    Xu, Hui
    Xia, Qing-Lin
    Song, Zhao-Quan
    Fenmo Yejin Cailiao Kexue yu Gongcheng/Materials Science and Engineering of Powder Metallurgy, 2010, 15 (02): : 102 - 109
  • [42] Effect of solid solution of Si on mechanical properties of TiAl3 based on the multi-laminated Ti-(SiCp/Al) composite system
    Pang, J. C.
    Cui, X. P.
    Li, A. B.
    Fan, G. H.
    Geng, L.
    Zheng, Z. Z.
    Wang, Q. W.
    MATERIALS SCIENCE AND ENGINEERING A-STRUCTURAL MATERIALS PROPERTIES MICROSTRUCTURE AND PROCESSING, 2013, 579 : 57 - 63
  • [44] Microstructure and Mechanical Properties of TiAl3/Al2O3 in situ Composite by Combustion Process
    Tran Duc Huy
    Fujiwara, Hiroshi
    Yoshida, Reo
    Do Thanh Binh
    Miyamoto, Hiroyuki
    MATERIALS TRANSACTIONS, 2014, 55 (07) : 1091 - 1093
  • [45] Fracture toughness of Ti–Al3Ti–Al–Al3Ti laminate composites under static and cyclic loading conditions
    Patselov A.M.
    Gladkovskii S.V.
    Lavrikov R.D.
    Kamantsev I.S.
    Russ. Metall. (Metally), 10 (811-815): : 811 - 815
  • [46] Experiments on mechanical properties of salt rocks under cyclic loading
    Liang, Weiguo
    Zhang, Chuanda
    Gao, Hongbo
    Yang, Xiaoqin
    Xu, Suguo
    Zhao, Yangsheng
    JOURNAL OF ROCK MECHANICS AND GEOTECHNICAL ENGINEERING, 2012, 4 (01) : 54 - 61
  • [48] Mechanical properties of reef limestone under cyclic impact loading
    Song K.
    Huang J.
    Luo Y.
    Wei X.
    Zheng S.
    Li X.
    Liu T.
    Yanshilixue Yu Gongcheng Xuebao/Chinese Journal of Rock Mechanics and Engineering, 2023, 42 : 3956 - 3965
  • [49] Molecular dynamics study on temperature and strain rate dependences of mechanical properties of single crystal Al under uniaxial loading
    Li, Zhigao
    Gao, Yongyi
    Zhan, Shiping
    Fang, Huihong
    Zhang, Zhongyi
    AIP ADVANCES, 2020, 10 (07)
  • [50] Scale Resistance of Titanium Silicide Ti5Si–Titanium-Aluminide TiAl3 Powder Composites
    G. A. Pribytkov
    V. V. Korzhova
    I. A. Firsina
    A. V. Baranovskiy
    V. P. Krivopalov
    Protection of Metals and Physical Chemistry of Surfaces, 2023, 59 : 265 - 271