Laser Surface Strengthening of Heat-Resistant Titanium Alloy for Gas Turbine Engines

被引:2
|
作者
Girzhon, V. V. [1 ]
Smolyakov, O., V [1 ]
Ovchinnikov, O., V [2 ]
Zavgorodny, O., V [2 ]
机构
[1] Zaporizhzhya Natl Univ, 66 Zhukovsky Str, UA-69600 Zaporizhzhya, Ukraine
[2] Zaporizhzhia Polytech Natl Univ, 64 Zhukovsky Str, UA-69063 Zaporizhzhya, Ukraine
关键词
laser treatment; melting zone; martensitic transformation; mi-; crohardness; phase composition;
D O I
10.15407/mfint.44.03.0383
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The structural-phase state of the surface layers of the heat-resistant twophase titanium alloy VT-8 after laser treatment in different gaseous environments is studied by the XRD and metallographic analyses. It is found out that laser melting in the atmospheres of argon, nitrogen and air leads to structural changes in the surface layers, which leads to their microhardness increase. It is shown that during laser treatment in an argon atmosphere a complete polymorphic 13- alpha '-transformation by the martensitic mechanism occurs, which together with the raising in the degree of structure dispersion leads to an increase in microhardness values from 2.99 GPa to 5.62 GPa. During laser melting in nitrogen and air atmospheres, the change in the microhardness of the treated surfaces is due to the complex influence of several factors: increasing the degree of dispersion of the structure, formation of high-strength cubic titanium nitrides of TiN type and formation of supersaturated solid solutions of nitrogen and oxygen in alpha-titanium lattice. These factors cause an increase in the microhardness of the surface layers of the laser melting zone to 7.82 GPa (in a nitrogen atmosphere) and 6.56 GPa (in an air atmosphere).
引用
收藏
页数:155
相关论文
共 50 条
  • [21] Effects of carbon and titanium on the solidification structure and properties of ferrite heat-resistant alloy
    Wang, Zhifu
    Wang, Andong
    Pan, Zhengwei
    Liu, Juncheng
    SCIENCE AND TECHNOLOGY OF ADVANCED MATERIALS, 2001, 2 (01) : 303 - 307
  • [22] Study of the Effect of Rhenium on Heat-Resistant Titanium Alloy Mechanical Properties and Microstructure
    R. A. Shayakhmetova
    A. Zh. Terlikbaeva
    P. A. Osipov
    A. M. Alimzhanova
    Metallurgist, 2021, 64 : 1322 - 1330
  • [23] Study of the Effect of Rhenium on Heat-Resistant Titanium Alloy Mechanical Properties and Microstructure
    Shayakhmetova, R. A.
    Terlikbaeva, A. Zh
    Osipov, P. A.
    Alimzhanova, A. M.
    METALLURGIST, 2021, 64 (11-12) : 1322 - 1330
  • [24] THERMAL-STABILITY OF HEAT-RESISTANT MATERIALS FOR GAS-TURBINE BLADES
    GETSOV, LB
    MALYGIN, AF
    REVYAKINA, NN
    BALANDIN, IM
    THERMAL ENGINEERING, 1974, 21 (03) : 32 - 35
  • [25] Fatigue of Gas Turbine Blades Made of Heat-Resistant Cast Alloys.
    Balashov, B.F.
    Petukhov, A.N.
    Arkhipov, A.N.
    Bolodenko, B.V.
    Problemy Prochnosti, 1976, (05): : 65 - 73
  • [26] Failure analysis of a heat-resistant stainless steel ring in a gas turbine burner
    Aliakbar Fallah Sheykhlari
    Saeed Khani Moghanaki
    Meisam Khodabakhshi
    Journal of Mechanical Science and Technology, 2020, 34 : 1539 - 1544
  • [27] Failure analysis of a heat-resistant stainless steel ring in a gas turbine burner
    Sheykhlari, Aliakbar Fallah
    Moghanaki, Saeed Khani
    Khodabakhshi, Meisam
    JOURNAL OF MECHANICAL SCIENCE AND TECHNOLOGY, 2020, 34 (04) : 1539 - 1544
  • [28] POTENTIAL OF TITANIUM CASTINGS IN GAS TURBINE ENGINES
    COREY, A
    OCONNOR, J
    SPRAGUE, R
    DONACHIE, M
    MECHANICAL ENGINEERING, 1969, 91 (07) : 62 - &
  • [29] TITANIUM CASTINGS FOR GAS-TURBINE ENGINES
    EWING, BA
    GREEN, KA
    JOURNAL OF METALS, 1983, 35 (12): : 56 - 56
  • [30] Effect of surface protective coatings on heat-resistant gas turbine alloys. II. Microstructural effects
    Sachova, E.
    Hougardy, H.P.
    Materialwissenschaft und Werkstofftechnik, 1988, 19 (10) : 329 - 335