Please use this identifier to cite or link to this item: http://elar.urfu.ru/handle/10995/131229
Title: Mechanisms of elastoplastic deformation and their effect on hardness of nanogranular Ni-Fe coatings
Authors: Zubar, T. I.
Fedosyuk, V. M.
Tishkevich, D. I.
Panasyuk, M. I.
Kanafyev, O. D.
Kozlovskiy, A.
Zdorovets, M.
Michels, D.
Lyakhov, D.
Trukhanov, A. V.
Issue Date: 2022
Publisher: Elsevier Ltd
Citation: Zubar, TI, Fedosyuk, VM, Tishkevich, DI, Panasyuk, MI, Kanafyev, OD, Kozlovskiy, A, Zdorovets, M, Michels, D, Lyakhov, D & Trukhanov, AV 2022, 'Mechanisms of elastoplastic deformation and their effect on hardness of nanogranular Ni-Fe coatings', International Journal of Mechanical Sciences, Том. 215, 106952. https://doi.org/10.1016/j.ijmecsci.2021.106952
Zubar, T. I., Fedosyuk, V. M., Tishkevich, D. I., Panasyuk, M. I., Kanafyev, O. D., Kozlovskiy, A., Zdorovets, M., Michels, D., Lyakhov, D., & Trukhanov, A. V. (2022). Mechanisms of elastoplastic deformation and their effect on hardness of nanogranular Ni-Fe coatings. International Journal of Mechanical Sciences, 215, [106952]. https://doi.org/10.1016/j.ijmecsci.2021.106952
Abstract: This article contains the study of correlation between the microstructure, mechanical properties and mechanisms of elastoplastic deformation of Ni-Fe coatings that were grown in five electrodeposition modes and had fundamentally different microstructures. A nonlinear change in hardness was detected using nanoindentation. Explanation of the abnormal change in hardness was found in the nature of the relaxation method of elastoplastic energy under load. It is shown that the deformation of coatings with a grain size of 100 nm or more occurs due to dislocation slip. A decrease in grain size leads to the predominance of deformation due to rotations and sliding of grains, as well as surface and grain boundary diffusion. The effect of deformation mechanisms on the nanoscale hardness of Ni-Fe coatings was established. Full hardening of the coatings (both in the bulk and on the surface) was achieved while maintaining the balance of three mechanisms of elastoplastic deformation in the sample. Unique coatings consisting of two fractions of grains (70% of nano-grains and 30% of their agglomerates) demonstrate high crack resistance and full-depth hardening up to H = 7.4 GPa due to the release of deformation energy for amorphization and agglomeration of nanograins. © 2021
Keywords: ELECTRODEPOSITION
MECHANISMS OF ELASTOPLASTIC DEFORMATION
MICROSTRUCTURE
NANOINDENTATION
NANOSTRUCTURED NI-FE COATINGS
AGGLOMERATION
BINARY ALLOYS
COATINGS
DEFORMATION
ELASTOPLASTICITY
ELECTRODEPOSITION
ELECTRODES
GRAIN BOUNDARIES
GRAIN SIZE AND SHAPE
HARDENING
HARDNESS
IRON ALLOYS
NANOINDENTATION
ELASTOPLASTIC DEFORMATION
GRAINSIZE
MECHANICAL MECHANISMS
MECHANISM OF ELASTOPLASTIC DEFORMATION
MICROSTRUCTURE MECHANICAL PROPERTIES
NANO GRAINS
NANO INDENTATION
NANO-GRANULAR
NANOSTRUCTURED NI
NANOSTRUCTURED NI-FE COATING
MICROSTRUCTURE
URI: http://elar.urfu.ru/handle/10995/131229
Access: info:eu-repo/semantics/openAccess
cc-by-nc-nd
License text: https://creativecommons.org/licenses/by-nc-nd/4.0/
RSCI ID: 47536099
SCOPUS ID: 85120496798
WOS ID: 000735255800002
PURE ID: 29062444
53ae5865-877d-4ee6-a654-bef8c58eb1fd
ISSN: 0020-7403
DOI: 10.1016/j.ijmecsci.2021.106952
Sponsorship: King Abdullah University of Science and Technology, KAUST
Government Council on Grants, Russian Federation
Funding text 1: The work was supported by Act 211 Government of the Russian Federation, contract № 02.A03.21.0011. Dmitry Lyakhov and Dominik Michels are partially supported by KAUST (baseline funding).
Funding text 2: The work was supported by Act 211 Government of the Russian Federation, contract ? 02.A03.21.0011. Dmitry Lyakhov and Dominik Michels are partially supported by KAUST (baseline funding).
Appears in Collections:Научные публикации ученых УрФУ, проиндексированные в SCOPUS и WoS CC

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