Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/130758
Title: The Influence of Frictional Treatment and Low-Temperature Plasma Carburizing on the Structure and Phase Composition of Metastable Austenitic Steel
Authors: Savrai, R. A.
Skorynina, P. A.
Makarov, A. V.
Men’shakov, A. I.
Gaviko, V. S.
Issue Date: 2023
Publisher: Pleiades Publishing
Citation: Savrai, R, Skorynina, P, Makarov, A, Men’shakov, A & Gaviko, V 2023, 'The Influence of Frictional Treatment and Low-Temperature Plasma Carburizing on the Structure and Phase Composition of Metastable Austenitic Steel', Physics of Metals and Metallography, Том. 124, № 5, стр. 496-503. https://doi.org/10.1134/S0031918X23600483
Savrai, R., Skorynina, P., Makarov, A., Men’shakov, A., & Gaviko, V. (2023). The Influence of Frictional Treatment and Low-Temperature Plasma Carburizing on the Structure and Phase Composition of Metastable Austenitic Steel. Physics of Metals and Metallography, 124(5), 496-503. https://doi.org/10.1134/S0031918X23600483
Abstract: Abstract: The features of the structure and phase composition of corrosion-resistant austenitic chromium–nickel steel (16.80 wt % Cr, 8.44 wt % Ni) subjected to carburizing in electron beam plasma at temperatures of 350 and 500°C, frictional treatment with a sliding indenter, and a combination of frictional treatment and plasma carburizing have been considered. It has been established that plasma carburizing results in the formation of a modified surface layer consisting of carbon-saturated austenite and carbides (Cr23C6, Fe3C); in this case, the formation of γC-phase occurs only at a temperature of 350°C. The depth of a modified layer increases with an increase in the carburizing temperature. It has been shown that it is useful to perform combined frictional treatment and plasma carburizing at a carburizing temperature of 350°C, since in this case the deformation-induced structure formed as a result of frictional treatment is preserved, and the precipitated carbides remain highly dispersed. In this case, frictional treatment should provide the formation of the deepest possible diffusion-active layer with a dispersed structure. © 2023, The Author(s).
Keywords: CORROSION-RESISTANT AUSTENITIC STEEL
FRICTIONAL TREATMENT
PHASE COMPOSITION
PLASMA CARBURIZING
STRUCTURE
AUSTENITE
CARBIDES
CORROSION RESISTANCE
FRICTION
PHASE COMPOSITION
STEEL CORROSION
TEMPERATURE
AUSTENITIC
CARBURIZING TEMPERATURE
CHROMIUM-NICKEL STEEL
CORROSION-RESISTANT
CORROSION-RESISTANT AUSTENITIC STEEL
FRICTIONAL TREATMENT
LOW TEMPERATURE PLASMAS
METASTABLE AUSTENITIC STEELS
PLASMA CARBURIZING
TREATMENT TEMPERATURE
AUSTENITIC STAINLESS STEEL
URI: http://elar.urfu.ru/handle/10995/130758
Access: info:eu-repo/semantics/openAccess
cc-by
License text: https://creativecommons.org/licenses/by/4.0/
RSCI ID: 62926475
SCOPUS ID: 85169589885
WOS ID: 001058595900010
PURE ID: 44660318
ISSN: 0031-918X
DOI: 10.1134/S0031918X23600483
Sponsorship: Ural Branch, Russian Academy of Sciences, UB RAS
Electron scanning microscopy was performed at the Plastometriya Center of the Collaborative Access at the Institute of Engineering Science, Ural Branch, Russian Academy of Sciences.
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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