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Evolution of the structure and phase state of the heat-resistant intermetallic coating of operating turbine blades

https://doi.org/10.22349/1994-6716-2019-97-1-94-100

Abstract

The paper treats important problems of domestic engineering, namely, the urgent necessity to increase service life of large-sized turbine blades of the power gas-turbine stations operated on thermal power plants. The heat-resistant coating of the Ni–Co–Cr–Al–Y system with intermetallic phase structure β-(Ni, Me)Al + γ′-(Ni, Me)3Al has been developed. It was made by high-energy plasma powder spraying and intended for protection of blade surface against high-temperature and erosive gas flow. The article studies microstructure, phase structure and physicomechanical properties of a coating given in an initial state, and after laboratory research of heat resistance and a post-operational state at ~29 000 hours (time of real operation of the gas-turbine engine of the GTE-45-3 power station on thermal power plant). After long-term operation, a decrease in the content of the intermetallic phase of β-(Ni, Ме)Al in the phase composition, an increase in the pore size and a decrease in the hardness of the coating have been established. At the same time, erosion resistance and heat-resistant properties of the coating remain, and, consequently, there is a sufficient resource.

About the Authors

I. N. Tsareva
Institute of Engineering Problems of Russian Academy of Science – FGBUN FITs branch
Russian Federation
Cand Sc. (Phys-Math)


O. B. Berdnik
Institute of Engineering Problems of Russian Academy of Science – FGBUN FITs branch
Russian Federation
Cand Sc. (Eng)


M. V. Maksimov
Institute of Engineering Problems of Russian Academy of Science – FGBUN FITs branch
Russian Federation


E. N. Razov
Institute of Engineering Problems of Russian Academy of Science – FGBUN FITs branch
Russian Federation


References

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2. Kuzmin, V.I., Kartaev, E.V., Vashchenko, S.P., Sergachev, D.V., Kornienko, E.E., Povyshenie effektivnosti plazmennogo napyleniya poroshkovykh pokrytii [Improving of efficiency of plasma spraying of powdered coatings], Vestnik Yugorskogo gosudarstvennogo universiteta, 2014, No 2, pp. 7–14.

3. Tarasenko, Yu.P., Tsareva, I.N., Berdnik, O.B., Fel, Ya.A., Kuzmin, V.I., Mikhalchenko, A.A., Kartaev, E.V., Struktura i fiziko-mekhanicheskie svoistva zharostoikogo intermetallidnogo pokrytiya Ni–Co–Cr–Al–Y, poluchennogo na modernizirovannom plazmennom oborudovanii [Structure and physical and mechanical properties of heat-resistant intermetallic coating Ni–Co–Cr–Al–Y obtained on modernized plasma equipment], Teplofizika i aeromechanika, 2014, V. 21, No 5, pp. 671–680.

4. Kolobov, Yu.R., Kablov, E.N., Kozlov, E.V., Koneva, N.A., Povarova, K.B., Grabovetskaya, G.P., Buntushkin, V.P., Bazyleva, O.A., Muboyadzhyan, S.F., Budinovsky, S.A., Struktura i svoistva intermetallidnykh materialov s nanofaznym uprochneniem [Structure and properties of intermetallic materials with nano-phase hardening], Moscow, 2008.


Review

For citations:


Tsareva I.N., Berdnik O.B., Maksimov M.V., Razov E.N. Evolution of the structure and phase state of the heat-resistant intermetallic coating of operating turbine blades. Voprosy Materialovedeniya. 2019;(1(97)):94-100. (In Russ.) https://doi.org/10.22349/1994-6716-2019-97-1-94-100

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ISSN 1994-6716 (Print)