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COMPOSITES AND MULTIPURPOSE COATINGS
Название Formation of the composite coatings as a method of restoration of titanium products after exploitation
DOI 10.17580/nfm.2017.01.02
Автор Mashtalyar D. V., Gnedenkov S. V., Sinebryukhov S. L., Nadaraia K. V.
Информация об авторе

Institute of Chemistry of Far Eastern Branch of Russian Academy of Sciences, Vladivostok, Russia

D. V. Mashtalyar, Senior Researcher; Laboratory of Composite Coatings for Biomedical Applications, е-mail: chemi@ich.dvo.ru
S. V. Gnedenkov, Dep. Director for Science; Head of the Department of Electrochemical Systems and Surface Modification Processes
S. L. Sinebryukhov, Associate Professor; Head of Laboratory of Nonstationary Surface Processes
K. V. Nadaraia, Junior Researcher; Laboratory Nonstationary Surface Processes

Реферат

Today one of the most common methods of the coatings formation on titanium alloys is a thermal oxidation. Along with the merits, this method of surface modification has certain drawbacks: high energy and labor costs, lack of the possibility of restoration of the coatings after damage during exploitation, high probability of manufacturing defects formation. The importance of the above problems for the practice, as well as the increasing demands on the quality of the protective layers formed on metals and alloys indicates the relevance of the task of scientific search for alternative ways of formation and restoration the protective properties of coatings on products that have been in exploitation. This paper presents the results of investigation of plasma electrolytic oxidation modes of commercial pure titanium VT1-0 with an oxide layer on the surface, providing restoration of the protective performances of the coating, the integrity of which was destroyed during operation. The combination of plasma electrolytic oxidation and the subsequent application of a fluoropolymer material by dipping in the suspension of superdispersed polytetrafluoroethylene (SPTFE) and thermal treatment at 315 oC for 10 minutes allowed the formation of practically significant composite polymer-containing coating. Evaluation of the data obtained by the potentiodynamic polarization method indicates a decreasing the corrosion current density and an increasing the polarization resistance by more than three times for the formed composite coatings in comparison with the coating obtained using only plasma electrolytic oxidation treatment of samples with thermal oxide on the surface. Composite layers reliably protect products made of steel and copper-based alloys against galvanic corrosion at contact with titanium alloys in seawater. The technology of restoring the protective properties of the coating, the barrier layer of which was destroyed during the exploitation, was implemented in "Far East Shipyard "Zvezda" at the end of 2015.

This work was supported by the Russian Science Foundation (project No. 14-33-00009).

Ключевые слова Titanium, thermal oxidation, protective coatings, plasma electrolytic oxidation, superdispersed polytetrafluoroethylene, composite coatings, corrosion
Библиографический список

1. Gordienko P. S., Tyrin V. I., Gudovtseva V. O., Sinebryukhov S. L., Gnedenkov S. V., Zavidnaya A. G., Rudnev V. S., Kurnosova A. G. Restoration of the protective properties of coatings on titanium alloys by the method of microarc oxidation. Problems of corrosion and protection of alloys and constructions in sea water : all-union Conference. Vladivostok, 1991. p. 120
2. Han X., Liu H. C., Wang D. S., Li S. J., Yang R., Tao X. J., Jiang X. H. In vitro biological effects of Ti2448 alloy modified by micro-arc oxidation and alkali heatment. Journal of Materials Science and Technology. 2011. Vol. 27. pp. 317–324.
3. Hussein R. O., Northwood D. O., Su J. F., Nie X. A study of the interactive effects of hybrid current modes on the tribological properties of a PEO (plasma electrolytic oxidation) coated AM60B Mg-alloy. Surface and Coatings Technology. 2013. Vol. 215. pp. 421–430.
4. Ma C. X., Lu Y., Sun P. P., Yuan Y., Jing X. Y., Zhang M. L. Characterization of plasma electrolytic oxidation coatings formed on Mg-Li alloy in an alkaline polyphosphate electrolyte. Surface and Coatings Technology. 2011. Vol. 206. pp. 287–294.
5. Mori Y., Koshi A., Liao J., Asoh H., Ono S. Characteristics and corrosion resistance of plasma electrolytic oxidation coatings on AZ31B Mg alloy formed in phosphate-silicate mixture electrolytes. Corrosion Science. 2014. Vol. 88. pp. 254–262.
6. Rakoch A. G., Strekalina D. M., Gladkova A. A. Wearresistant coatings on titanium alloy VT6 (BT6), obtained by plasma-electrolytic oxidation method. Tsvetnye Metally. 2016. Vol. 2016. pp. 80–84.
7. Yagi S., Kuwabara K., Fukuta Y., Kubota K., Matsubara E. Formation of self-repairing anodized film on ACM522 magnesium alloy by plasma electrolytic oxidation. Corrosion Science. 2013. Vol. 73. pp. 188–195.
8. Yang W., Jiang B. L., Wang A. Y., Shi H. Y. Effect of negatively charged ions on the formation of microarc oxidation coating on 2024 aluminium alloy. Journal of Materials Science and Technology. 2012. Vol. 28. pp. 707–712.
9. Fouhaili B. E. L., Dietlin C., Allonas X., Ibrahim A., Delaite C., Croutxe-Barghorn C. Study and optimization of water repellence stability in fluoroacrylate photopolymers. Progress in Organic Coatings. 2014. Vol. 77. pp. 1030–1036.
10. Gnedenkov S. V., Sinebryukhov S. L., Mashtalyar D. V., Nadaraia K. V., Gnedenkov A. S., Bouznik V. M. Composite fluoropolymer coatings on the MA8 magnesium alloy surface. Corrosion Science. 2016. Vol. 111. pp. 175–185.
11. Gnedenkov S. V., Sinebryukhov S. L., Mashtalyar D. V., Nadaraia K. V. Formation of protective composite coatings on magnesium alloy using the method of plasma electrolytic oxidation and telomeric solution. Tsvetnye Metally. 2015. Vol. 2015. pp. 78–82.
12. Martini C., Ceschini L., Tarterini F., Paillard J. M., Curran J. A. PEO layers obtained from mixed aluminate–phosphate baths on Ti–6Al–4V: dry sliding behaviour and influence of a PTFE topcoat. Wear. 2010. Vol. 269. pp. 746–757.

Полный текст статьи Formation of the composite coatings as a method of restoration of titanium products after exploitation
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