PROSPECTS FOR THE USE OF MICROARC OXIDATION IN THE PRODUCTION OF AVIATION AND AUTOMOTIVE COMPONENTS
https://doi.org/10.53360/2788-7995-2024-3(15)-11
Abstract
This article discusses the prospects for the application of microarc oxidation (MAO) technology in the aviation and automotive industries. The MAO process allows the creation of durable, wear-resistant and corrosion-resistant coatings on the surface of metal parts, which significantly increases their durability and performance characteristics. Technological aspects of MAO are discussed, including surface preparation features, selection of electrolytes and control of process parameters. Examples of successful application of MAO in the production of aviation and automotive components are given. Also, directions for further research and development of the technology are explored, including the creation of new materials, combined coatings and the study of the durability of coatings under real operating conditions. The article emphasizes the importance of MAO as a promising technology for improving the reliability and efficiency of vehicles and equipment.
About the Authors
N. SerikbekulyKazakhstan
Nurzhan Serikbekuly – Master's student of the specialty «Technical Physics», 071412, Semey, Glinka str., 20 A;
Junior researcher, Semey, Fizkulturnaya str., 4b
K. D. Ormanbekov
Kazakhstan
Kuanysh Dauletovich Ormanbekov – Master of technical science, 071412, Semey, Glinka str., 20 A;
Junior researcher, Semey, Fizkulturnaya str., 4b
A. B. Shynarbek
Kazakhstan
Aibek Bakhytzhanuky Shynarbek – Master of technical science, 071412, Semey, Glinka str., 20 A;
Junior researcher, Semey, Fizkulturnaya str., 4b
A. Zh. Zhassulan
Kazakhstan
Ainur Zhassulankyzy Zhassulan – Master of natural science, 071412, Semey, Glinka str., 20 A;
senior researcher, Semey, Fizkulturnaya str., 4b
B. A. Lobasenko
Russian Federation
Boris Anatolyevich Lobasenko – doctor of technical sciences, professor,
650000, Kemerovo, 6 Krasnaya Street
References
1. Zigler A.M., & Ivanov, V.S. (2020). Sovremennye tendentsii razvitiya mirovoi aviatsionnoi promyshlennosti / A.M. Zigler, V.S. Ivanov // Aviatsiya i kosmonavtika. – 2020. – № 3. – S. 45-56. (In Russian).
2. Petrenko I.A. Perspektivy i vyzovy avtomobil'noi promyshlennosti v usloviyakh globalizatsii / I.A. Petrenko // Mashinostroenie i innovatsii. – 2019. – № 6(2). – S. 78-85. (In Russian).
3. Orlov D.N. Innovatsionnye materialy i tekhnologii v aviatsionnom i avtomobil'nom mashinostroenii / D.N. Orlov, N.A. Vlasov // Tekhnika budushchego. – 2021. – № 12(4). – S. 22-34. (In Russian).
4. Mikrodugovoe oksidirovanie (teoriya, tekhnologiya, oborudovanie) / I.V. Suminov i dr. – Moskva: EHKOMET, 2005. – 368 s. (In Russian).
5. Primenenie mikrodugovogo oksidirovaniya kak perspektivnogo metoda naneseniya pokrytii / A.S. Kazakova i dr. // Sibirskii gosudarstvennyi aehrokosmicheskii universitet, Krasnoyarsk, 2011. – Ehlektronnaya biblioteka KibeRLeninka. (In Russian).
6. Plasma electrolysis for surface engineering / A.L. Yerokhin et al // Surface and Coatings Technology. – 1999. – № 122. – R. 73-93. (In English).
7. Platov N.I. Gal'vanicheskie pokrytiya: Teoriya i praktika / N.I. Platov. – Moskva: Tekhnosfera, 2017. – 432 s. (In Russian).
8. Volkov A.V. Anodirovanie alyuminiya i ego splavov: tekhnologiya i primenenie / A.V. Volkov. – Sankt-Peterburg: Politekhnika, 2016. – 278 s. (In Russian).
9. Gavrilov V.I. Zashchitnye pokrytiya na osnove anodnogo oksidirovaniya / V.I. Gavrilov. – Moskva: Metallurgiya, 2012. – 312 s. (In Russian).
10. Handbook of Thermal Spray Technology / J.R. Davis et al // ASM International. – 2004. (In English).
11. Pawlowski L. (2008). The Science and Engineering of Thermal Spray Coatings. Wiley / L. Pawlowski. – 2008. (In English)
12. Yerokhin A. Plasma electrolysis for surface engineering / A. Yerokhin et al // Surface and Coatings Technology. – 1999. – № 122(2-3). – R. 73-93. (In English).
13. Aliofkhazraei M. Plasma Electrolytic Oxidation of Metals for Fabrication of Oxide Coatings: Mechanisms, Properties, and Applications / M. Aliofkhazraei, A.S. Rouhaghdam // Applied Surface Science. – 2016. (In English).
14. Review of the anodizing process of titanium and its alloys for biomedical applications: Techniques and surface properties / R.O. Hussein et al // Surface and Coatings Technology. – 2013. – № 233. – R. 147-158. (In English).
15. Aliofkhazraei M. Plasma Electrolytic Oxidation of Metals for Fabrication of Oxide Coatings: Mechanisms, Properties, and Applications / M. Aliofkhazraei, A.S. Rouhaghdam // Applied Surface Science. – 2016. (In English).
16. Real-time imaging of coating growth during plasma electrolytic oxidation / E. Matykina et al // Electrochimica Acta. – 2009. – № 54(27). – R. 6767-6777. (In English).
17. Aliofkhazraei M. Plasma Electrolytic Oxidation of Metals for Fabrication of Oxide Coatings: Mechanisms, Properties, and Applications / M. Aliofkhazraei, A.S. Rouhaghdam // Applied Surface Science. – 2016. (In English).
18. Prolonged growth of thick ceramic coatings by plasma electrolytic oxidation / E. Matykina et al // Thin Solid Films. – 2010. – № 518(15). – R. 4223-4230. (In English).
Review
For citations:
Serikbekuly N., Ormanbekov K.D., Shynarbek A.B., Zhassulan A.Zh., Lobasenko B.A. PROSPECTS FOR THE USE OF MICROARC OXIDATION IN THE PRODUCTION OF AVIATION AND AUTOMOTIVE COMPONENTS. Bulletin of Shakarim University. Technical Sciences. 2024;(3(15)):71-78. (In Russ.) https://doi.org/10.53360/2788-7995-2024-3(15)-11