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Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity

It is known that the presence of oxygen phases in hard materials leads to an undesirable decrease in the mechanical properties. In materials based on AlMgB(14), the main oxygen impurity is spinel MgAl(2)O(4); it significantly reduces the hardness of AlMgB(14) and its formation during sintering is in...

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Autores principales: Nikitin, Pavel, Zhukov, Ilya, Tkachev, Dmitrii, Abzaev, Yurii, Marchenko, Ekaterina, Vorozhtsov, Alexander
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739838/
https://www.ncbi.nlm.nih.gov/pubmed/36499946
http://dx.doi.org/10.3390/ma15238450
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author Nikitin, Pavel
Zhukov, Ilya
Tkachev, Dmitrii
Abzaev, Yurii
Marchenko, Ekaterina
Vorozhtsov, Alexander
author_facet Nikitin, Pavel
Zhukov, Ilya
Tkachev, Dmitrii
Abzaev, Yurii
Marchenko, Ekaterina
Vorozhtsov, Alexander
author_sort Nikitin, Pavel
collection PubMed
description It is known that the presence of oxygen phases in hard materials leads to an undesirable decrease in the mechanical properties. In materials based on AlMgB(14), the main oxygen impurity is spinel MgAl(2)O(4); it significantly reduces the hardness of AlMgB(14) and its formation during sintering is inevitable. In this work, the ultra-hard spark plasma sintered (SPSed) AlMgB(14)-TiB(2) composite material was fabricated from the AlMgB(14)-TiB(2) precursor obtained by self-propagating high-temperature synthesis (SHS). Due to the high synthesis temperatures, the main oxygen phase in the obtained composite was Al(4)B(2)O(9) instead of spinel MgAl(2)O(4). It was found that the obtained composite has excellent mechanical properties. The maximum hardness of the sample is 44.1 GPa. The presence of oxygen in the form of the Al(4)B(2)O(9) phase led to unexpected results: the friction coefficient of the obtained AlMgB(14)-TiB(2) composite under dry conditions against the Al(2)O(3) counter-specimen is approximately four times lower than the friction coefficient of pure ceramic AlMgB(14) (0.18 against 0.7, respectively). Based on the observed results, it was found that the Al(4)B(2)O(9) particles formed during the SHS are responsible for the low friction coefficient. The quantum chemical calculations showed that the elastic moduli of Al(4)B(2)O(9) are significantly smaller than the elastic moduli of AlMgB(14) and TiB(2). Thus, during sliding, Al(4)B(2)O(9) particles are squeezed out onto the composite surface, form the lubricating layer and reduce the friction coefficient.
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spelling pubmed-97398382022-12-11 Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity Nikitin, Pavel Zhukov, Ilya Tkachev, Dmitrii Abzaev, Yurii Marchenko, Ekaterina Vorozhtsov, Alexander Materials (Basel) Article It is known that the presence of oxygen phases in hard materials leads to an undesirable decrease in the mechanical properties. In materials based on AlMgB(14), the main oxygen impurity is spinel MgAl(2)O(4); it significantly reduces the hardness of AlMgB(14) and its formation during sintering is inevitable. In this work, the ultra-hard spark plasma sintered (SPSed) AlMgB(14)-TiB(2) composite material was fabricated from the AlMgB(14)-TiB(2) precursor obtained by self-propagating high-temperature synthesis (SHS). Due to the high synthesis temperatures, the main oxygen phase in the obtained composite was Al(4)B(2)O(9) instead of spinel MgAl(2)O(4). It was found that the obtained composite has excellent mechanical properties. The maximum hardness of the sample is 44.1 GPa. The presence of oxygen in the form of the Al(4)B(2)O(9) phase led to unexpected results: the friction coefficient of the obtained AlMgB(14)-TiB(2) composite under dry conditions against the Al(2)O(3) counter-specimen is approximately four times lower than the friction coefficient of pure ceramic AlMgB(14) (0.18 against 0.7, respectively). Based on the observed results, it was found that the Al(4)B(2)O(9) particles formed during the SHS are responsible for the low friction coefficient. The quantum chemical calculations showed that the elastic moduli of Al(4)B(2)O(9) are significantly smaller than the elastic moduli of AlMgB(14) and TiB(2). Thus, during sliding, Al(4)B(2)O(9) particles are squeezed out onto the composite surface, form the lubricating layer and reduce the friction coefficient. MDPI 2022-11-27 /pmc/articles/PMC9739838/ /pubmed/36499946 http://dx.doi.org/10.3390/ma15238450 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
Nikitin, Pavel
Zhukov, Ilya
Tkachev, Dmitrii
Abzaev, Yurii
Marchenko, Ekaterina
Vorozhtsov, Alexander
Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity
title Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity
title_full Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity
title_fullStr Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity
title_full_unstemmed Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity
title_short Experimental and Theoretical Study of Ultra-Hard AlMgB(14)-TiB(2) Composites: Structure, Hardness and Self-Lubricity
title_sort experimental and theoretical study of ultra-hard almgb(14)-tib(2) composites: structure, hardness and self-lubricity
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9739838/
https://www.ncbi.nlm.nih.gov/pubmed/36499946
http://dx.doi.org/10.3390/ma15238450
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