The prospect of using nickel-based sealing coatings in the hot tract of gas turbine engines
DOI:
https://doi.org/10.15407/mom2020.03.088Keywords:
sealing coatings, nickel alloy, gas-thermal coating, rare earth metal, microalloying, operating propertiesAbstract
In work the analysis of the possibility of raising the operating temperature sealing thermal coatings on Nickel-based alloying by rare-earth metals. The literature review indicates that the operating temperature of the thermal sealing to Nickel-based that are easy to work reaches about 900 ° C, and its increase is possible by alloying the material of the coatings of rare earth metals (REM). Therefore, there is a positive effect of doping rare-earth metals, especially yttrium, the performance properties of high-temperature Nickel-based alloys. First of all it is known that the introduction of heat-resistant alloy is: 0.01...0.05% of Y improves thermal stability, retards coagulation γʹ the main strengthening phase and formation of a double carbide М6С unfavorable morphology. The introduction of yttrium promotes the formation on the surface of the protective alloy oxide, Ni(Cr,Al,Y)2O4 and (Сr, Y),2O3. Also stated that the microalloying of Hf, La, Ce, Zr, Y, Yb, Th, Er increases the adhesion of the oxide film, and the introduction of lanthanum in the alloy of VKNA type allows to form in the alloys modified structure, which is stabilized by nanometer-sized precipitates of lanthanide Nickel and aluminum and nano-size precipitates of the phases formed by refractory elements. However, it is established that the works devoted to the study of the influence of doping on thermal spray coatings is not sufficient.
The study examines the effect of doping the sealing cover type kPa aristarain ligatures. To determine the distribution of chemical elements carried out microprobe studies. There is a positive effect of alloying yttrium on improvement of dispersion and uniformity of distribution of elements, as evidenced by the fact that the most uniform distribution of elements is observed in the doped coatings with monolateral Y and complex alloys Co-Ni-Cr-Al-Y.
References
Chupp R. E., Lau Y.-C., Ghasripoor F., Baldwin, D. J., Ng C., McGovern T., Berkeley, D. Development of Higher Temperature Abradable Seals for Gas Turbine Applications. Vol. 4, Turbo Expo 2004. [in English]. https://doi.org/10.1115/GT2004-53029
Kablov E. N., Visnyk Rosiyskoyi akademiyi nauk, 2002, No.1, pp. 3-12 [in Russian].
Kozlov E. V. Visnyk Tambovsʹkoho universytetu, 2013, T. 18, No. 4-2. [in Russian].
Kryukov SH. I., Masaleva E. N., Rybnykov A.I., MiTOM, 1983, No. 3. pp. 44-47 [in Russian].
Tomashov N.D., Chernova H.P. Teoriya koroziyi i koroziynostiyki konstruktsiyni splavy (Corrosion Theory and Corrosion Resistant Structural Alloys), Moskow, Metalurhiya, 1993, 472 p. [in Russian].
Sydorov V.V., Aviatsiyni materialy ta tekhnolohiyi, 2005, No.1, pp. 7-15 [in Russian].
Altovskiy R. M. Koroziyni vlastyvosti itriyu (Corrosive properties of yttrium.), Moskow, Atomyzdat, 1969, 354 p. [in Russian].
Abraimov N.V. Vysokotemperaturni materialy i pokryttya dlya hazovykh turbin (High temperature gas turbine materials and coatings), Moskow, Mashynobuduvannya. 1993, 336 p. [in Russian].
Greshta V., Tkach D., Sotnikov Ye., Pavlenko D., Klymov O., Estern-european jornal of enterprise technologies. 2018, Vol. 4, 12 (94), pp. 56-63 [in English]. https://doi.org/10.15587/1729-4061.2018.140912
Downloads
Published
How to Cite
Issue
Section
License
Copyright (c) 2020 V.L. Greshta, D.V. Tkach, Ye.H. Sotnikov, O.V. Klymov, Ye.O. Fasol

This work is licensed under a Creative Commons Attribution 4.0 International License.