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High-Temperature Functional Protective Coatings

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Refractories and Industrial Ceramics Aims and scope

The article provides an overview of up-to-date developments in the field of creating simple and multi-component protective high-temperature coatings of various types and structures for aircraft. A number of coatings used at temperatures up to 1200 – 3000°C in aggressive environmental conditions are presented.

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References

  1. R. Kh. Khasanshin, L. S. Novikov, L. S. Gatsenko, and Ya. B. Volkova, “Electric discharge processes during the irradiation of K-208 and CMG glasses with electrons with energies in the range from 10 to 40 keV,” Perspektivnye Materialy, No. 1, 22 – 30 (2015).

  2. D. C. Ferguson and S. C. Wimberly, “The best GEO daytime spacecraft charging index,” Proc. 50th AIAA Aerospace Sci. Mtg., January, AIAA 2013 – 0810 (2013). DOI: https://doi.org/10.2514/6.2013-810.

  3. M. Cho, S. Kawakita, M. Nakamura, et al., “Number of arcs estimated on solar array of a geostationary satellite,” J. Space. Rockets., 42(4), 740—748 (2005). DOI: https://doi.org/10.2514/1.6694.

    Article  Google Scholar 

  4. R. H. Khasanshin and L. S. Novikov, “Structural changes of surfaces of spacecraft solar array protective glasses being irradiated by 20 keV electrons,” Adv. Space Res., No. 57, 2187 – 2195 (2016).

  5. O. Gedeon, J. Zemek, and K. Jurek, “Changes in alkali-silicate glasses induced with electron irradiation,” J. Non-Crystalline Solids, 354(12/13), 1169 – 1171 (2007). DOI: https://doi.org/10.1016/j.jnoncrysol.2006.12.125.

    Article  CAS  Google Scholar 

  6. R. Kh. Khasanshin and A. B. Nadiradze, “Changes in the optical properties of functional surfaces of spacecraft under the combined action of electrons and ultraviolet radiation,” Poverkhnost’. Rentgenovskie, Sinkhrotronnye i Nejtronnye Issledovaniya, No. 3, 73 – 78 (2013).

  7. Tadeaš Gavenda, Ondrej Gedeon, Karel Jurek, “Volume changes in glass induced by an electron beam,” Nuclear Instruments and Methods in Physics Research B, 322, 7 – 12 (2014). DOI: https://doi.org/10.1016/j.nimb.2013.12.017.

    Article  CAS  Google Scholar 

  8. R. Kh. Khasanshin and L. S. Novikov, “Changes in the transmission spectrum of K-208 glass under the influence of ionizing radiation and molecular flows,” Poverkhnost’. Rentgenovskie, Sinkhrotronnye i Nejtronnye Issledovaniya, No. 7, 83 – 87 (2014).

  9. Yu. V. Polezhaev and G. A. Frolov, Thermal Destruction of Materials ed. V. V. Skorokhod, Publishing house of IPM NASU, Kiev (2005) 288 p.

  10. A. D. Yakovlev, Chemistry and Technology of Paint and Varnish Coatings university textbook, 3rd ed., revised, Khimizdat, St. Petersburg (2008) 448 p.

  11. Yu. V. Polezhaev and F. B. Yurevich, Thermal Protection ed. A. V. Lykova, Energiya, Moscow (1976) 392 p.

  12. B. M. Pankratov, Yu. V. Polezhaev, and A. K. Rud’ko, Interaction of Materials With Gas Streams ed. V. S. Zuev, Mashinostroenie, Moscow (1975) 224 p.

  13. M. M. Mikhailov, Radiation and Space Materials Science textbook, publishing house of the Tomsk Polytechnic University, Tomsk (2008) 440 p.

  14. A. D. Yakovlev and S. A. Yakovlev, Paints and Varnishes for Functional Purposes Khimizdat, St. Petersburg (2016) 272 p.

  15. New High Technologies in Engineering an encyclopedia in 24 volumes, V. 16, “The impact of the space environment on materials and equipment of spacecraft,” ed. K. S. Kasaeva, NII “ENTsITEKh”, Moscow (2000) 295 p.

  16. Yu. A. Dushin, Work of Heat Protection Materials in Hot Gas Streams Khimiya, Leningrad (1968) 224 p.

  17. Space Model sci.-inform. publication in 2 volumes. V. 2. “The impact of the space environment on materials and equipment of spacecraft,” ed. L. S. Novikova, KDU, Moscow (2007) 1144 p.

  18. S. R. Messenger, F. Wong, B. Hoang, et al., “Low-thrust geostationary transfer orbit (LT2GEO) radiation environment and associated solar array degradation modeling and ground testing,” IEEE Transaction on Nuclear Science, 61(6), 3348 – 3355 (2014). DOI: https://doi.org/10.1109/TNS.2014.2364894.

    Article  Google Scholar 

  19. M. P. Bacos, “Carbon – carbon composites: oxidation behavior and coatings protection,” Journal de Physique IV Colloque, 03 (C7), C7-1895-C7-1903 (1993). DOI: https://doi.org/10.1051/jp4:19937303.jpa-0025194.

  20. L. A. Tkachenko, A. Yu. Shaulov, and A. A. Berlin, “Protective heat-resistant coatings of carbon materials,” Neorganichskie Materialy, 48(3), 261 – 271 (2012).

    Google Scholar 

  21. S. S. Solntsev, V. A. Rozenkova, N. A. Mironova, and G. A. Solovyova, “High-temperature coatings for fibrous substrates,” Trudy VIAM, No. 10, Art. 03 (2013). URL: http://www.viam-works.ru (accessed August 12, 2019).

  22. S. S. Solntsev, V. V. Shvagireva, N. V. Isaeva, and G. A. Solovieva, “Multipurpose glass-enamel coating for protection of cast shaped parts of gas turbine engines,” Trudy VIAM, No. 3, Art. 04 (2014). URL: http://www.viam-works.ru (accessed August 12, 2019).

  23. S. S. Solntsev, “High-temperature composite materials and coatings based on glass and ceramics,” 75 let. Aviatsionnye Materialy. Izbrannye Trudy VIAM 1932 – 2007 (75 years. Aviation materials. Selected works of VIAM 1932 – 2007), jubilee release, coll. sci.-techn. works, VIAM, Moscow (2007) p. 90 – 99.

  24. S. S. Solntsev, V. A. Rozenkova, and N. A. Mironova, “Hightemperature glass-ceramic coatings and composite materials,” Aviatsionnye Materialy i Tekhnologii, No. 5, 359 – 368 (2012).

  25. O. Yu. Sorokin, S. S. Solntsev, S. A. Evdokimov, and I. V. Osin, “Method of hybrid spark plasma sintering: principle, possibilities, application prospects,” Aviatsionnye Materialy i Tekhnologii, No. S6, 11 – 16 (2014).

  26. S. S. Solntsev, V. A. Rozenkova, N. A. Mironova, and S. V. Gavrilov, “Ceramic coatings for the protection of high-strength steel during heat treatment,” Aviatsionnye Materialy i Tekhnologii, No. 4, 3 – 8 (2011).

  27. A. A. Konkin, Carbon and Other Heat-Resistant Fibrous Materials Khimiya, Moscow (1974) 376 p.

  28. S. Shimamura, A. Sindo, K. Kotsuko, et al., Carbon Fiber [Russian translation from Japanese], ed. S. Shimamura, Mir, Moscow (1987) 304 p.

  29. E. Fitzer, R. Diefendorf, I. Kalinin, et al., Carbon Fibers and Carbon Composites [Russian translation from English], ed. E. Fitzer, Mir, Moscow (1988) 336 p.

  30. N. I. Baklanova, V. N. Kulyukin, M. I. Tatarintseva, et al., Heat-Resistant Inorganic Coatings Nauka, Leningrad (1990) p. 199.

  31. S. S. Solntsev, N. V. Isaeva, V. V. Shvagireva, and V. I. Maksimov, “High-temperature coatings for the protection of alloys and carbon-ceramic composite materials from oxidation,” Konversiya v Mashinostroenii, No. 4, 77 – 80 (2004).

  32. S. S. Solntsev, N. V. Isaeva, V. V. Shvagireva, and G. A. Solovieva, “Heat-resistant coating for the protection of high-strength complex alloyed nickel alloys from high-temperature gas corrosion,” Trudy VIAM, No. 6, Art. 04 (2014). URL: http://www.viam-works.ru (date of access 12.08.2019).

  33. G. V. Samsonov and A. P. Epik, Refractory Coatings 2nd ed., rev. and suppl., Metallurgiya, Moscow (1973) 400 p.

  34. M. P. Bacos, “Carbon – carbon composites: oxidation behavior and coatings protection,” J. Phys. IV, 3, 1895 – 1903 (1993).

    CAS  Google Scholar 

  35. A. A. Appen, Temperature-Resistant Inorganic Coatings 2nd ed., rev. and suppl., Khimiya, Leningrad (1976).

  36. A. N. Astapov and V. S. Terent’eva, “Review of domestic developments in the field of protection of carbon-containing materials from gas corrosion and erosion in high-speed plasma flows,” Izvestiya Vuzov. Poroshkovaya Metallurgiya i Funktsional’nye Pokrytiya (Universities’ Proceedings. Powder Metallurgy and Functional Coatings), No. 4, 52 – 79 (2014).

  37. G. V. Bobrov and A. A. Ilyin, Application of Inorganic Coatings (Theory, Technology, Equipment) Intermet Inzhiniring, Moscow (2004).

  38. Pat. 2069208 RU. “Composition for applying a protective coating on carbon materials,” E. A. Antonova, G. N. Gorbatova, M. V. Sazonova, et al.

  39. E. A. Asnovich, K. I. Zabyrina, V. A. Kolganova, B. M. Tareev, High Heat Resistance Electrical Insulating Materials Energiya, Moscow (1979) 240 p.

  40. Pat. 2249571 RU. “Protective coating,” S. S. Solntsev, V. T. Minakov, V. A. Rozenenkova, N. A. Mironova, E. N. Kablov, N. I. Shvets, G. V. Antonova, and G. A. Yamshchikova.

  41. Pat. 2290371 RU. “Protective coating,” S. S. Solntsev, V. A. Rozenenkova, E. N. Kablov, N. A. Mironova, and S. V. Gavrilov.

  42. Pat. 2232738 RU. “High-temperature coating,” S. S. Solntsev, N. V. Isaeva, G. V. Ermakova, and V. I. Maksimov.

  43. Pat. 2082694 RU. “Method of obtaining protective coatings on materials and products with a carbon-containing base,” V. V. Rodionova, G. A. Kravetskiy, N. M. Shestakova, et al.

  44. Yi Zeng, Dini Wang, Xiang Xiong, et al., “Ablation-resistant carbide Zr0.8Ti0.2C0.74B0.26 for oxidizing environments up to 3000°C,” Nature Communications. DOI: https://doi.org/10.1038/ncomms15836.

  45. V. V. Chebotarevsky and E. K. Kondrashov, “Technology of paint and varnish coatings in mechanical engineering,” Mashinostroenie, Moscow (1978) 295 p.

  46. S. V. Litovchenko, “High-temperature silicides: properties and applications,” East Eur. J. Phys., 3(3), 4 – 24 (2016).

    Google Scholar 

  47. V. A. Blednov, V. I. Iordan, and O. P. Solonenko, “Modeling of the formation of a layered structure and porosity of plasma powder coatings taking into account the variable surface topology during spraying,” Izvestiya Tomskogo Politekhnicheskogo Universiteta, 317(5), 82 – 87 (2010).

    Google Scholar 

  48. V. P. Krivobokov, N. S. Sochugov, and A. A. Soloviev, Plasma Coatings (Properties and Applications) textbook, publishing house of the Tomsk Polytechnic University, Tomsk (2011) 136 p.

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Correspondence to Yu. A. Elizarova.

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Translated from Novye Ogneupory, No. 10, pp. 52–60, October 2020.

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Elizarova, Y.A., Zakharov, A.I. High-Temperature Functional Protective Coatings. Refract Ind Ceram 61, 592–599 (2021). https://doi.org/10.1007/s11148-021-00525-4

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  • DOI: https://doi.org/10.1007/s11148-021-00525-4

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