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Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide

A novel pathway for the magnesiothermic reduction of boron oxide and magnesium dodecaboride (MgB(12)) in the presence of carbon by a self-propagating high-temperature synthesis method was proposed that was aimed at the direct preparation of boron carbide nanopowder. The combined utilization of two b...

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Autores principales: Zakaryan, Marieta K., Zurnachyan, Alina R., Amirkhanyan, Narine H., Kirakosyan, Hasmik V., Antonov, Maksim, Rodriguez, Miguel A., Aydinyan, Sofiya V.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9323104/
https://www.ncbi.nlm.nih.gov/pubmed/35888509
http://dx.doi.org/10.3390/ma15145042
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author Zakaryan, Marieta K.
Zurnachyan, Alina R.
Amirkhanyan, Narine H.
Kirakosyan, Hasmik V.
Antonov, Maksim
Rodriguez, Miguel A.
Aydinyan, Sofiya V.
author_facet Zakaryan, Marieta K.
Zurnachyan, Alina R.
Amirkhanyan, Narine H.
Kirakosyan, Hasmik V.
Antonov, Maksim
Rodriguez, Miguel A.
Aydinyan, Sofiya V.
author_sort Zakaryan, Marieta K.
collection PubMed
description A novel pathway for the magnesiothermic reduction of boron oxide and magnesium dodecaboride (MgB(12)) in the presence of carbon by a self-propagating high-temperature synthesis method was proposed that was aimed at the direct preparation of boron carbide nanopowder. The combined utilization of two boron sources, boron oxide and MgB(12), allowed tailoring the overall caloric effect of the process, increasing the yield of the target product and lessening the laborious leaching process. In addition, it is an alternative way to utilize magnesium borides, which are inevitable side products at boron production. Multivariate thermodynamic calculations performed in the B(2)O(3)-MgB(12)-Mg-C system allowed estimating equilibrium compositions of the products and deducing the optimum composition of the initial mixture for obtaining B(4)C. For the latter, the adiabatic temperature (T(ad)) is 2100 °C, which is theoretically enough for the implementation of the self-propagating reaction. The combustion reaction was shown to be extremely sensitive to the initial mixture composition, external pressure, as well as sample diameter (heat losses). It proceeds in self-oscillatory mode and leads to the product of a layered macrostructure. The combustion product was then consolidated by the spark plasma sintering technique at different conditions. Vickers microhardness was measured, and the wear erosion behavior was examined. The variation in lattice parameters of boron carbide reflected the influence of synthesis, sintering and erosion conditions on the ordering/disordering of the boron carbide structure.
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spelling pubmed-93231042022-07-27 Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide Zakaryan, Marieta K. Zurnachyan, Alina R. Amirkhanyan, Narine H. Kirakosyan, Hasmik V. Antonov, Maksim Rodriguez, Miguel A. Aydinyan, Sofiya V. Materials (Basel) Article A novel pathway for the magnesiothermic reduction of boron oxide and magnesium dodecaboride (MgB(12)) in the presence of carbon by a self-propagating high-temperature synthesis method was proposed that was aimed at the direct preparation of boron carbide nanopowder. The combined utilization of two boron sources, boron oxide and MgB(12), allowed tailoring the overall caloric effect of the process, increasing the yield of the target product and lessening the laborious leaching process. In addition, it is an alternative way to utilize magnesium borides, which are inevitable side products at boron production. Multivariate thermodynamic calculations performed in the B(2)O(3)-MgB(12)-Mg-C system allowed estimating equilibrium compositions of the products and deducing the optimum composition of the initial mixture for obtaining B(4)C. For the latter, the adiabatic temperature (T(ad)) is 2100 °C, which is theoretically enough for the implementation of the self-propagating reaction. The combustion reaction was shown to be extremely sensitive to the initial mixture composition, external pressure, as well as sample diameter (heat losses). It proceeds in self-oscillatory mode and leads to the product of a layered macrostructure. The combustion product was then consolidated by the spark plasma sintering technique at different conditions. Vickers microhardness was measured, and the wear erosion behavior was examined. The variation in lattice parameters of boron carbide reflected the influence of synthesis, sintering and erosion conditions on the ordering/disordering of the boron carbide structure. MDPI 2022-07-20 /pmc/articles/PMC9323104/ /pubmed/35888509 http://dx.doi.org/10.3390/ma15145042 Text en © 2022 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
Zakaryan, Marieta K.
Zurnachyan, Alina R.
Amirkhanyan, Narine H.
Kirakosyan, Hasmik V.
Antonov, Maksim
Rodriguez, Miguel A.
Aydinyan, Sofiya V.
Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide
title Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide
title_full Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide
title_fullStr Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide
title_full_unstemmed Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide
title_short Novel Pathway for the Combustion Synthesis and Consolidation of Boron Carbide
title_sort novel pathway for the combustion synthesis and consolidation of boron carbide
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9323104/
https://www.ncbi.nlm.nih.gov/pubmed/35888509
http://dx.doi.org/10.3390/ma15145042
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