The kinetic features of coating growth on titanium alloy Ti–6A1–4V by plasma electrolytic oxidation (PEO) are investigated. It was observed that the coating growth rate decreases significantly with the increasing of the PEO time treatment. At the same time, large longitudinal pores (cracks) were formed; thus, the major part of the coating is separated from the substrate. Coating growth is realized by the two mechanisms: (a) migration-diffusional and (b) thermochemical treatment of the deposited aluminum hydroxide (electrolysis) and oxidation of the substrate at the bottom of the coating pores. It presumably occurs due to the saturation of the electrolyte in the pores with titanium hydroxide and the relatively low intensity of the microdischarges, which is insufficient to eject the substance from the channels for ‘pancake’ formation. This increases the amount of the aluminum titanate (TiAl2O5) in the coating. The latter presumably forms due to a eutectic reaction in the coating or due to the exothermic reactions of titanium dioxide formation. The TiAl2O5-based coating containing at least 10% aluminum oxide α-Al2O3 (more than 20% in the outer layer) and 11% titanium dioxide (TiO2) increases the wear resistance of the titanium alloy at least six times.
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1 July 2018
Research Article|
January 03 2018
Kinetic features of wear-resistant coating growth by plasma electrolytic oxidation
Satish Tailor, PhD;
Metallizing Equipment Company Pvt Ltd, Jodhpur, India; Department of Metallurgy of Steel, New Production Technologies and Protection of Metals, College of Environmentally Sound Technologies and Engineering, National University of Science and Technology ‘MISiS’, Moscow, Russia
(corresponding author: dr.saty@yahoo.in)
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Alexander G Rakoch, PhD;
Alexander G Rakoch, PhD
Professor
Department of Metallurgy of Steel, New Production Technologies and Protection of Metals, College of Environmentally Sound Technologies and Engineering, National University of Science and Technology ‘MISiS’, Moscow, Russia
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Alexandra A Gladkova, PhD;
Alexandra A Gladkova, PhD
Associate Professor
Department of Metallurgy of Steel, New Production Technologies and Protection of Metals, College of Environmentally Sound Technologies and Engineering, National University of Science and Technology ‘MISiS’, Moscow, Russia
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Phan Van Truong, BSc;
Phan Van Truong, BSc
PhD Student
Department of Metallurgy of Steel, New Production Technologies and Protection of Metals, College of Environmentally Sound Technologies and Engineering, National University of Science and Technology ‘MISiS’, Moscow, Russia
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Daria M Strekalina, PhD;
Daria M Strekalina, PhD
Assistant Professor
Department of Metallurgy of Steel, New Production Technologies and Protection of Metals, College of Environmentally Sound Technologies and Engineering, National University of Science and Technology ‘MISiS’, Moscow, Russia
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Georgia Sourkouni, PhD;
Georgia Sourkouni, PhD
Scientific staff
Clausthal Centre of Material Technology, Clausthal University of Technology, Clausthal-Zellerfeld, Germany
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Manjunath S. Y., MTech;
Manjunath S. Y., MTech
Research Scientist
Metallizing Equipment Company Pvt Ltd, Jodhpur, India
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Toshiyuki Takagi, PhD
Toshiyuki Takagi, PhD
Professor
Institute of Fluid Science, Tohoku University, Sendai, Japan
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(corresponding author: dr.saty@yahoo.in)
Publisher: Emerald Publishing
Received:
September 26 2017
Accepted:
November 27 2017
Online ISSN: 2050-6260
Print ISSN: 2050-6252
ICE Publishing: All rights reserved
2018
Surface Innovations (2018) 6 (3): 150–158.
Article history
Received:
September 26 2017
Accepted:
November 27 2017
Citation
Tailor S, Rakoch AG, Gladkova AA, Van Truong P, Strekalina DM, Sourkouni G, S. Y. M, Takagi T (2018), "Kinetic features of wear-resistant coating growth by plasma electrolytic oxidation". Surface Innovations, Vol. 6 No. 3 pp. 150–158, doi: https://doi.org/10.1680/jsuin.17.00054
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