Tribological Characteristics of Titanium after Combined Treatment

The combined treatment which includes thermodiffusion saturation with interstitial elements (oxygen and nitrogen) and electrospark alloying with a graphite electrode was studied. The influence of near-surface hardening and the sequence of combined treatment steps on the phase composition, structure,...

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Published in:Materials science (New York, N.Y.) Vol. 59; no. 6; pp. 746 - 753
Main Authors: Pohrelyuk, I. M., Student, M. M., Zadorozhna, Kh.R., Lavrys, S. M., Kravchyshyn, T. M., Kovalchuk, I. V.
Format: Journal Article
Language:English
Published: New York Springer US 01.05.2024
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ISSN:1068-820X, 1573-885X
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Abstract The combined treatment which includes thermodiffusion saturation with interstitial elements (oxygen and nitrogen) and electrospark alloying with a graphite electrode was studied. The influence of near-surface hardening and the sequence of combined treatment steps on the phase composition, structure, surface microhardness, and tribological characteristics of coatings deposited on commercially pure titanium in tribo-pairs with steel was evaluated.
AbstractList The combined treatment which includes thermodiffusion saturation with interstitial elements (oxygen and nitrogen) and electrospark alloying with a graphite electrode was studied. The influence of near-surface hardening and the sequence of combined treatment steps on the phase composition, structure, surface microhardness, and tribological characteristics of coatings deposited on commercially pure titanium in tribo-pairs with steel was evaluated.
Audience Academic
Author Kovalchuk, I. V.
Pohrelyuk, I. M.
Student, M. M.
Zadorozhna, Kh.R.
Kravchyshyn, T. M.
Lavrys, S. M.
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  surname: Kovalchuk
  fullname: Kovalchuk, I. V.
  organization: Karpenko PhysicoMechanical Institute, National Academy of Sciences of Ukraine
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Cites_doi 10.1007/s11837-007-0075-7
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Keywords hardness
titanium
electrospark alloying
oxidation
combined treatment
nitriding
friction coefficient
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References_xml – reference: T. Penyashki, G. Kostadinov, M. Kandeva, V. Kamburov, A. Nikolov, and R. Dimitrova, “Abrasive and erosive wear of TI6Al4V alloy with electrospark deposited coatings of multicomponent hard alloys materials based of WC and TiB2,” Coatings, 13, Is. 1, art. no. 215 (2023). https://doi.org/10.3390/coatings13010215
– reference: I. M. Pohrelyuk, S. M. Lavrys, O. M. Sakharuk, I. V. Stasyshyn, and O. V. Penkovyi, “Pretreatment influence on titanium surface properties after gas nitriding,” J. of Mater. Eng. and Perform., 26, Is. 10, 5072–5078 (2017). https://doi.org/10.1007/s11665-017-2934-x
– reference: PodchernyaevaIJugaAIBerezanskayaVIProperties of electrospark coatings on titanium alloyKey Eng. Mater1997132–1361507151010.4028/www.scientific.net/KEM.132-136.1507
– reference: LiuYWangDDengCHuoLWangLFangRNovel method to fabricate Ti–Al intermetallic compound coatings on Ti–6Al–4V alloy by combined ultrasonic impact treatment and electrospark depositionJ. Alloys Compd.20156282082121:CAS:528:DC%2BC2MXit1Sgsw%3D%3D10.1016/j.jallcom.2014.12.144
– reference: V. V. Mikhailov, A. E. Gitlevich, A. D. Verkhoturov, A. I. Mikhaylyuk, A. V. Belyakov, and L. A. Konevtsov, “Electrospark alloying of titanium and its alloys: The physical, technological, and practical aspects. Part I. The peculiarities of the mass transfer and the structural and phase transformations in the surface layers and their wear and heat resistance,” Surf. Eng. Appl. Electrochem, 49, Is. 5, 373–395 (2013). https://doi.org/10.3103/S1068375513050074
– reference: X. Hong, Y. Tan, X. Wang, Hua Tan, and T. Xu, “Effects of nitrogen flux on microstructure and tribological properties of in-situ TiN coatings deposited on TC11 titanium alloy by electrospark deposition,” Trans. Nonferrous Met. Soc. China., 25. 3329–3338 (2015). https://doi.org/10.1016/S1003-6326(15)63990-5
– reference: A. T. Pichuhin, O. I. Yas’kiv, O. H. Luk’yanenko, and I. M. Pohrelyuk, “Influence of the phase-structural state of the surface layers on the mechanical properties of VT1-0 titanium alloy,” Mater. Sci., 47, No. 5. 670–676 (2012). https://doi.org/10.1007/s11003-012-9442-9
– reference: MikhailyukAIGitlevichAEApplication of graphite in electrospark technologiesSurf. Engin. Appl. Electrochem.20104642443010.3103/S1068375510050054
– reference: HongXTanYZhouCXuTZhangZMicrostructure and tribological properties of Zr-based amorphous-nanocrystalline coatings deposited on the surface of titanium alloys by electrospark depositionAppl. Surf. Sci.2015356124412511:CAS:528:DC%2BC2MXhsVentrfN10.1016/j.apsusc.2015.08.233
– reference: L. P. Kornienko G. P. Chernova, V. V. Mihailov, and A. E. Gitlevich, “Use of the electrospark alloying method to increase the corrosion resistance of a titanium surface,” Surf. Eng. Appl. Electrochem., 47, Is. 1, 9–17 (2011). https://doi.org/10.3103/S106837551101011X
– reference: V. D. Klopotov, Yu. A. Denisova, A. D. Teresov, E. A. Petrikova, V. V. Shugurov, M. A. Seksenalina, Yu. F. Ivanov, and A. A. Klopotov, “Combined treatment of steel, including electrospark doping and subsequent irradiation with a high-intensity electron beam,” IOP Conf. Ser.: Mater. Sci. Eng., 124, art. no. 012125 (2016). https://doi.org/10.1088/1757-899X/124/1/012125
– reference: PiersonHOHandbook of refractory carbides and nitrides: properties, characteristics, processing and applications1996WestwoodNoyes publication
– reference: PohrelyukIYaskivOFedirkoV“Forming carbonitride coatings on titanium by thermochemical treatment with C-N–Ocontaining media”, JOM, 59Is.20076323710.1007/s11837-007-0075-7
– reference: D. S. M. Tabatabai, A. G. Boytsov, V. V. Kuritsyna, and S. A. Kazantsev, “Combined surface hardening of parts for friction pairs of gas turbine engines,” IOP Conf. Ser.: Mater. Sci. Eng., 868, Is. 1, art. no. 012003 (2019). https://doi.org/10.1088/1757-899X/868/1/012003
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Snippet The combined treatment which includes thermodiffusion saturation with interstitial elements (oxygen and nitrogen) and electrospark alloying with a graphite...
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SubjectTerms Alloying elements
Characterization and Evaluation of Materials
Chemistry and Materials Science
Corrosion and anti-corrosives
Graphite
Hardness
Materials Science
Microhardness
Nitrogen
Phase composition
Solid Mechanics
Spark alloying
Structural Materials
Surface hardening
Titanium
Tribology
Title Tribological Characteristics of Titanium after Combined Treatment
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