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Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials

In this study, the synthesis of tungsten carbides in a copper matrix by spark plasma sintering (SPS) is conducted and the microstructure formation mechanisms of the composite materials are investigated. The reaction mixtures were prepared by the high-energy mechanical milling (MM) of W, C and Cu pow...

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Autores principales: Vidyuk, Tomila M., Ukhina, Arina V., Gavrilov, Alexander I., Shikalov, Vladislav S., Anisimov, Alexander G., Lomovsky, Oleg I., Dudina, Dina V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419560/
https://www.ncbi.nlm.nih.gov/pubmed/37570089
http://dx.doi.org/10.3390/ma16155385
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author Vidyuk, Tomila M.
Ukhina, Arina V.
Gavrilov, Alexander I.
Shikalov, Vladislav S.
Anisimov, Alexander G.
Lomovsky, Oleg I.
Dudina, Dina V.
author_facet Vidyuk, Tomila M.
Ukhina, Arina V.
Gavrilov, Alexander I.
Shikalov, Vladislav S.
Anisimov, Alexander G.
Lomovsky, Oleg I.
Dudina, Dina V.
author_sort Vidyuk, Tomila M.
collection PubMed
description In this study, the synthesis of tungsten carbides in a copper matrix by spark plasma sintering (SPS) is conducted and the microstructure formation mechanisms of the composite materials are investigated. The reaction mixtures were prepared by the high-energy mechanical milling (MM) of W, C and Cu powders. The influence of the MM time and SPS temperature on the tungsten carbide synthesis in an inert copper matrix was analyzed. It was demonstrated that the milling duration is a critical factor for creating the direct contacts between the W and C reactants and increasing the reactive transformation degree. A WC–W(2)C–Cu composite was fabricated from the W–C–3Cu powder mixture milled for 10 min and subjected to SPS at a temperature of 980 °C for 5 min. The formation of unconventional microstructures with Cu-rich regions is related to inter-particle melting during SPS. The WC–W(2)C–Cu composite showed a promising combination of mechanical and functional properties: a hardness of 300 HV, an electrical conductivity of 24% of the International Annealed Copper Standard, a residual porosity of less than 5%, a coefficient of friction in pair with a WC-6Co counterpart of 0.46, and a specific wear rate of the material of 0.52 × 10(−5) mm(3) N(−1) m(−1).
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spelling pubmed-104195602023-08-12 Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials Vidyuk, Tomila M. Ukhina, Arina V. Gavrilov, Alexander I. Shikalov, Vladislav S. Anisimov, Alexander G. Lomovsky, Oleg I. Dudina, Dina V. Materials (Basel) Article In this study, the synthesis of tungsten carbides in a copper matrix by spark plasma sintering (SPS) is conducted and the microstructure formation mechanisms of the composite materials are investigated. The reaction mixtures were prepared by the high-energy mechanical milling (MM) of W, C and Cu powders. The influence of the MM time and SPS temperature on the tungsten carbide synthesis in an inert copper matrix was analyzed. It was demonstrated that the milling duration is a critical factor for creating the direct contacts between the W and C reactants and increasing the reactive transformation degree. A WC–W(2)C–Cu composite was fabricated from the W–C–3Cu powder mixture milled for 10 min and subjected to SPS at a temperature of 980 °C for 5 min. The formation of unconventional microstructures with Cu-rich regions is related to inter-particle melting during SPS. The WC–W(2)C–Cu composite showed a promising combination of mechanical and functional properties: a hardness of 300 HV, an electrical conductivity of 24% of the International Annealed Copper Standard, a residual porosity of less than 5%, a coefficient of friction in pair with a WC-6Co counterpart of 0.46, and a specific wear rate of the material of 0.52 × 10(−5) mm(3) N(−1) m(−1). MDPI 2023-07-31 /pmc/articles/PMC10419560/ /pubmed/37570089 http://dx.doi.org/10.3390/ma16155385 Text en © 2023 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Vidyuk, Tomila M.
Ukhina, Arina V.
Gavrilov, Alexander I.
Shikalov, Vladislav S.
Anisimov, Alexander G.
Lomovsky, Oleg I.
Dudina, Dina V.
Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials
title Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials
title_full Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials
title_fullStr Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials
title_full_unstemmed Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials
title_short Synthesis of Tungsten Carbides in a Copper Matrix by Spark Plasma Sintering: Microstructure Formation Mechanisms and Properties of the Consolidated Materials
title_sort synthesis of tungsten carbides in a copper matrix by spark plasma sintering: microstructure formation mechanisms and properties of the consolidated materials
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10419560/
https://www.ncbi.nlm.nih.gov/pubmed/37570089
http://dx.doi.org/10.3390/ma16155385
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