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Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments

Titanium carbide (TiC), is the most thermodynamically stable compound in the Ti–C–Cu system, which makes it a suitable reinforcement phase for copper matrix composites. In this work, the interaction of a Ti–Cu alloy with different forms of carbon was investigated to trace the structural evolution le...

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Autores principales: Dudina, Dina V., Vidyuk, Tomila M., Korchagin, Michail A., Gavrilov, Alexander I., Bulina, Natalia V., Esikov, Maksim A., Datekyu, Masanari, Kato, Hidemi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539544/
https://www.ncbi.nlm.nih.gov/pubmed/31067793
http://dx.doi.org/10.3390/ma12091482
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author Dudina, Dina V.
Vidyuk, Tomila M.
Korchagin, Michail A.
Gavrilov, Alexander I.
Bulina, Natalia V.
Esikov, Maksim A.
Datekyu, Masanari
Kato, Hidemi
author_facet Dudina, Dina V.
Vidyuk, Tomila M.
Korchagin, Michail A.
Gavrilov, Alexander I.
Bulina, Natalia V.
Esikov, Maksim A.
Datekyu, Masanari
Kato, Hidemi
author_sort Dudina, Dina V.
collection PubMed
description Titanium carbide (TiC), is the most thermodynamically stable compound in the Ti–C–Cu system, which makes it a suitable reinforcement phase for copper matrix composites. In this work, the interaction of a Ti–Cu alloy with different forms of carbon was investigated to trace the structural evolution leading to the formation of in-situ TiC–Cu composite structures. The reaction mixtures were prepared from Ti(25)Cu(75) alloy ribbons and carbon black or nanodiamonds to test the possibilities of obtaining fine particles of TiC using ball milling and Spark Plasma Sintering (SPS). It was found that the behavior of the reaction mixtures during ball milling depends on the nature of the carbon source. Model experiments were conducted to observe the outcomes of the diffusion processes at the alloy/carbon interface. It was found that titanium atoms diffuse to the alloy/graphite interface and react with carbon forming a titanium carbide layer, but carbon does not diffuse into the alloy. The diffusion experiments as well as the synthesis by ball milling and SPS indicated that the distribution of TiC particles in the composite structures obtained via reactive solid-state processing of Ti(25)Cu(75)+C follows the distribution of carbon particles in the reaction mixtures. This justifies the use of carbon sources that have fine particles to prepare the reaction mixtures as well as efficient dispersion of the carbon component in the alloy–carbon mixture when the goal is to synthesize fine particles of TiC in the copper matrix.
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spelling pubmed-65395442019-06-05 Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments Dudina, Dina V. Vidyuk, Tomila M. Korchagin, Michail A. Gavrilov, Alexander I. Bulina, Natalia V. Esikov, Maksim A. Datekyu, Masanari Kato, Hidemi Materials (Basel) Article Titanium carbide (TiC), is the most thermodynamically stable compound in the Ti–C–Cu system, which makes it a suitable reinforcement phase for copper matrix composites. In this work, the interaction of a Ti–Cu alloy with different forms of carbon was investigated to trace the structural evolution leading to the formation of in-situ TiC–Cu composite structures. The reaction mixtures were prepared from Ti(25)Cu(75) alloy ribbons and carbon black or nanodiamonds to test the possibilities of obtaining fine particles of TiC using ball milling and Spark Plasma Sintering (SPS). It was found that the behavior of the reaction mixtures during ball milling depends on the nature of the carbon source. Model experiments were conducted to observe the outcomes of the diffusion processes at the alloy/carbon interface. It was found that titanium atoms diffuse to the alloy/graphite interface and react with carbon forming a titanium carbide layer, but carbon does not diffuse into the alloy. The diffusion experiments as well as the synthesis by ball milling and SPS indicated that the distribution of TiC particles in the composite structures obtained via reactive solid-state processing of Ti(25)Cu(75)+C follows the distribution of carbon particles in the reaction mixtures. This justifies the use of carbon sources that have fine particles to prepare the reaction mixtures as well as efficient dispersion of the carbon component in the alloy–carbon mixture when the goal is to synthesize fine particles of TiC in the copper matrix. MDPI 2019-05-07 /pmc/articles/PMC6539544/ /pubmed/31067793 http://dx.doi.org/10.3390/ma12091482 Text en © 2019 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
Dudina, Dina V.
Vidyuk, Tomila M.
Korchagin, Michail A.
Gavrilov, Alexander I.
Bulina, Natalia V.
Esikov, Maksim A.
Datekyu, Masanari
Kato, Hidemi
Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments
title Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments
title_full Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments
title_fullStr Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments
title_full_unstemmed Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments
title_short Interaction of a Ti–Cu Alloy with Carbon: Synthesis of Composites and Model Experiments
title_sort interaction of a ti–cu alloy with carbon: synthesis of composites and model experiments
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6539544/
https://www.ncbi.nlm.nih.gov/pubmed/31067793
http://dx.doi.org/10.3390/ma12091482
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