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COMPOZITES AND MULTIPURPOZE COATINGS
Название Protection properties of inhibitor-containing composite coatings on magnesium alloy
DOI 10.17580/tsm.2015.04.06
Автор Sinebryukhov S. L., Gnedenkov A. S., Mashtalyar D. V., Gnedenkov S. V.
Информация об авторе

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

S. L. Sinebryukhov, Assistant Professor, Head of Laboratory of Unsteady Surface Processes
A. S. Gnedenkov, Junior Researcher (Laboratory of Unsteady Surface Processes), e-mail: asg17@mail.com
D. V. Mashtalyar, Senior Researcher (Laboratory of Biomedical Composite Coatings)
S. V. Gnedenkov, Professor, Deputy Director for Science, Head of Department of Electrochemical Systems and Surface Modification Processes

Реферат

There was developed the method of formation of composite inhibitor-containing coatings with self-healing properties on magnesium alloys' surface. Obtained experimental results indicate the anti-corrosion properties of samples with composite inhibitor-containing coating on the surface, increased in comparison with the samples without coating and base coating, obtained by plasma electrolytic oxidation method (PEO). The value of current density for self-healing coating depends on the type of treated alloy. At the average, this value is by three magnitude orders higher in contrast to the corresponding value for the sample without coating. The values of impedance modulus for MA8 magnesium alloy with coating are 1,70·105 Ohm·cm2, which is by two magnitude orders higher than the same values for the samples without coating. The impedance modulus for the samples with inhibitor-containing coatings after potentiodynamic polarization is decreased, but is still two magnitude orders higher. Electrochemical parameters of porous and porousless layers at the sample surface were calculated before and after polarization due to experimental impedance data modeling by means of equivalent electrical circuits. According to the results of electrochemical modeling, total resistance of basic PEO-coating after potentiodynamic polarization was decreased by more than 30 times (from 2,9·104 Ohm·cm2 to 8,6·102 Ohm·cm2), while the value of this parameter for the composite inhibitor-containing coating did not virtually change (3,2·104 Ohm·cm2 before polarization, and 2,9·104 Ohm·cm2 after polarization). This effect testifies to the presence of additional protective properties of composite coating, revealing under sufficient corrosion influence of environmental factors and preventing the intense material destruction. The obtained value of the sample corrosion rate with self-healing coating is lower (in comparison with sample without coating) and is 17% lower in contrast to the sample with base PEO-layer.

Ключевые слова Magnesium alloys, plasma electrolytic oxidation, corrosion inhibitor, self-healing, composite coating, electrochemical impedance spectroscopy, corrosion rate
Библиографический список

1. Sinebryukhov S. L., Gnedenkov A. S., Mashtalyar D. V., Gnedenkov S. V. PEO-coating/substrate interface investigation by localised electrochemical impedance spectroscopy. Surface and Coatings Technology. 2010. Vol. 205. pp. 1697–1701.
2. Song G. Corrosion of magnesium alloys. UK, s.l.: Woodhead Publ., 2011. 640 p.
3. Williams G., McMurray H. N., Grace R. Inhibition of magnesium localised corrosion in chloride containing electrolyte. Electrochimica Acta. 2010. Vol. 55. pp. 7824–7833.
4. Arrabal R., Matykina E., Viejo F., Skeldon P., Thompson G. E. Corrosion resistance of WE43 and AZ91D magnesium alloys with phosphate PEO coatings Corrosion Science. 2008. Vol. 50. pp. 1744–1752.
5. Coy A. E., Viejo F., Skeldon P., Thompson G. E. Susceptibility of rare-earthmagnesium alloys to micro-galvanic corrosion. Corrosion Science. 2010. Vol. 52. pp. 3896–3906.
6. Shi Z., Liu M., Atrens A. Measurement of the corrosion rate of magnesium alloys using Tafel extrapolation. Corrosion Science. 2010. Vol. 52. pp. 579–588.
7. Fu J., Chen T., Wang M., Yang N., Li S., Wang Y., Liu X. Acid and alkaline dual stimuli-responsive mechanized hollow mesoporous silica nanoparticles as smart nanocontainers for intelligent anticorrosion coatings. ACSNANO. 2013. Vol. 7 (12). pp. 11397–11408.
8. Sidorova M. V., Sinebrukhov S. L., Khrisanfova O. A., Gnedenkov S. V. Effect of PEO-modes on the electrochemical and mechanical properties of coatings on MA8 magnesium alloy. Physics Procedia. 2012. Vol. 23. pp. 90–93.
9. Gnedenkov A. S., Sinebryukhov S. L., Mashtalyar D. V., Gnedenkov S. V. Features of the corrosion processes development at the magnesium alloys surface. Surface and Coatings Technology. 2013. Vol. 225. pp. 112–118.
10. Luo H., Cai Q., He J., Wei B. Preparation and properties of composite ceramic coating containing Al2O3–ZrO2–Y2O3 on AZ91D magnesium alloy by plasma electrolytic oxidation. Current Applied Physics. 2009. Vol. 9. pp. 1341–1346.
11. Song Y. W., Shan D. Y., Han E. H. High corrosion resistance of electroless composite plating coatings on AZ91D magnesium alloys. Electrochimica Acta. 2008. Vol. 53. pp. 2135–2143.
12. Chen F., Zhou H., Yao B., Qin Z., Zhang Q. Corrosion resistance property of the ceramic coating obtained through microarc oxidation on the AZ31 magnesium alloy surfaces. Surface and Coatings Technology. 2007. Vol. 201. pp. 4905–4908.
13. Zhao M., Liu M., Song G.-L, Atrens A. Influence of the β-phase morphology on the corrosion of the Mg alloy AZ91. Corrosion Science. 2008. Vol. 50 (7). pp. 1939–1953.
14. Zhao M. C., Schmutz P., Brunner S., Liu M., Song G., Atrens A. An exploratory study of the corrosion of Mg alloys during interrupted salt spray testing. Corrosion Science. 2009. Vol. 51. pp. 1277–1292.
15. Gnedenkov S. V., Sinebryukhov S. L., Mashtalyar D. V., Egorkin V. S., Sidorova M. V., Gnedenkov A. S. Composite polymer-containing protective coatings on magnesium alloy MA8. Corrosion Science. 2014. Vol. 85. pp. 52–59.

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