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Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method

In this paper, the possibility of applying the electrospark alloying (ESA) method to obtain boron-containing coatings characterised by increased hardness and wear resistance is considered. A new method for producing such coatings is proposed. The method consists in applying grease containing alumini...

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Autores principales: Antoszewski, Bogdan, Gaponova, Oksana P., Tarelnyk, Viacheslav B., Myslyvchenko, Oleksandr M., Kurp, Piotr, Zhylenko, Tetyana I., Konoplianchenko, Ievgen
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7915367/
https://www.ncbi.nlm.nih.gov/pubmed/33562481
http://dx.doi.org/10.3390/ma14040739
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author Antoszewski, Bogdan
Gaponova, Oksana P.
Tarelnyk, Viacheslav B.
Myslyvchenko, Oleksandr M.
Kurp, Piotr
Zhylenko, Tetyana I.
Konoplianchenko, Ievgen
author_facet Antoszewski, Bogdan
Gaponova, Oksana P.
Tarelnyk, Viacheslav B.
Myslyvchenko, Oleksandr M.
Kurp, Piotr
Zhylenko, Tetyana I.
Konoplianchenko, Ievgen
author_sort Antoszewski, Bogdan
collection PubMed
description In this paper, the possibility of applying the electrospark alloying (ESA) method to obtain boron-containing coatings characterised by increased hardness and wear resistance is considered. A new method for producing such coatings is proposed. The method consists in applying grease containing aluminium powder and amorphous boron to the surface to be treated and subsequently processing the obtained surface using the ESA method by a graphite electrode. The microstructural analysis of the Al-C-B coatings on steel C40 showed that the surface layer consists of several zones, the number and parameters of which are determined by the energy conditions of the ESA process. Durametric studies showed that with an increase in the discharge energy influence, the microhardness values of both the upper strengthened layer and the diffusion zone increased to W(p) = 0.13 J, Hµ = 6487 MPa, and W(p) = 4.9 J, Hµ = 12350 MPa, respectively. The results of X-ray diffraction analysis indicate that at the discharge energies of 0.13 and 0.55 J, the phase composition of the coating is represented by solid solutions of body-centred cubic lattice (BCC) and face-centred cubic lattice (FCC). The coatings obtained at W(p) = 4.9 J were characterised by the presence of intermetallics Fe(4)Al(13) and borocementite Fe(3) (CB) in addition to the solid solutions. The X-ray spectral analysis of the obtained coatings indicated that during the electrospark alloying process, the surface layers were saturated with aluminium, boron, and carbon. With increasing discharge energy, the diffusion zone increases; during the ESA process with the use of the discharge energy of 0.13 J for steel C40, the diffusion zone is 10–15 μm. When replacing a substrate made of steel C40 with the same one material but of steel C22, an increase in the thickness of the surface layer accompanied by a slight decrease in microhardness is observed as a result of processing with the use of the ESA method. There were simulated phase portraits of the Al-C-B coatings. It is shown that near the stationary points in the phase portraits, one can see either a slowing down of the evolution or a spiral twisting of the diffusion-process particle.
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spelling pubmed-79153672021-03-01 Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method Antoszewski, Bogdan Gaponova, Oksana P. Tarelnyk, Viacheslav B. Myslyvchenko, Oleksandr M. Kurp, Piotr Zhylenko, Tetyana I. Konoplianchenko, Ievgen Materials (Basel) Article In this paper, the possibility of applying the electrospark alloying (ESA) method to obtain boron-containing coatings characterised by increased hardness and wear resistance is considered. A new method for producing such coatings is proposed. The method consists in applying grease containing aluminium powder and amorphous boron to the surface to be treated and subsequently processing the obtained surface using the ESA method by a graphite electrode. The microstructural analysis of the Al-C-B coatings on steel C40 showed that the surface layer consists of several zones, the number and parameters of which are determined by the energy conditions of the ESA process. Durametric studies showed that with an increase in the discharge energy influence, the microhardness values of both the upper strengthened layer and the diffusion zone increased to W(p) = 0.13 J, Hµ = 6487 MPa, and W(p) = 4.9 J, Hµ = 12350 MPa, respectively. The results of X-ray diffraction analysis indicate that at the discharge energies of 0.13 and 0.55 J, the phase composition of the coating is represented by solid solutions of body-centred cubic lattice (BCC) and face-centred cubic lattice (FCC). The coatings obtained at W(p) = 4.9 J were characterised by the presence of intermetallics Fe(4)Al(13) and borocementite Fe(3) (CB) in addition to the solid solutions. The X-ray spectral analysis of the obtained coatings indicated that during the electrospark alloying process, the surface layers were saturated with aluminium, boron, and carbon. With increasing discharge energy, the diffusion zone increases; during the ESA process with the use of the discharge energy of 0.13 J for steel C40, the diffusion zone is 10–15 μm. When replacing a substrate made of steel C40 with the same one material but of steel C22, an increase in the thickness of the surface layer accompanied by a slight decrease in microhardness is observed as a result of processing with the use of the ESA method. There were simulated phase portraits of the Al-C-B coatings. It is shown that near the stationary points in the phase portraits, one can see either a slowing down of the evolution or a spiral twisting of the diffusion-process particle. MDPI 2021-02-05 /pmc/articles/PMC7915367/ /pubmed/33562481 http://dx.doi.org/10.3390/ma14040739 Text en © 2021 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Antoszewski, Bogdan
Gaponova, Oksana P.
Tarelnyk, Viacheslav B.
Myslyvchenko, Oleksandr M.
Kurp, Piotr
Zhylenko, Tetyana I.
Konoplianchenko, Ievgen
Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method
title Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method
title_full Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method
title_fullStr Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method
title_full_unstemmed Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method
title_short Assessment of Technological Capabilities for Forming Al-C-B System Coatings on Steel Surfaces by Electrospark Alloying Method
title_sort assessment of technological capabilities for forming al-c-b system coatings on steel surfaces by electrospark alloying method
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7915367/
https://www.ncbi.nlm.nih.gov/pubmed/33562481
http://dx.doi.org/10.3390/ma14040739
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