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Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories

Carbon-bonded alumina refractories offer excellent thermal shock performance but are lacking in terms of mechanical strength. In the present contribution, the influence of the particle packing and the addition of graphene oxide (GO) to carbon-bonded alumina refractories on the physical and mechanica...

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Autores principales: Storti, Enrico, Fruhstorfer, Jens, Luchini, Bruno, Jiříčková, Adéla, Jankovský, Ondřej, Aneziris, Christos Georgios
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8746276/
https://www.ncbi.nlm.nih.gov/pubmed/35009331
http://dx.doi.org/10.3390/ma15010186
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author Storti, Enrico
Fruhstorfer, Jens
Luchini, Bruno
Jiříčková, Adéla
Jankovský, Ondřej
Aneziris, Christos Georgios
author_facet Storti, Enrico
Fruhstorfer, Jens
Luchini, Bruno
Jiříčková, Adéla
Jankovský, Ondřej
Aneziris, Christos Georgios
author_sort Storti, Enrico
collection PubMed
description Carbon-bonded alumina refractories offer excellent thermal shock performance but are lacking in terms of mechanical strength. In the present contribution, the influence of the particle packing and the addition of graphene oxide (GO) to carbon-bonded alumina refractories on the physical and mechanical properties before and after thermal shock was investigated. Coarse tabular alumina grains were coated by a GO suspension and used to prepare dry-pressed compacts. The included graphite fraction (15 wt%) was either regarded as a lubricating matrix component or as a quasi-spherical component of a calculated density-optimized aggregate size distribution. During coking, the GO was reduced to thermally reduced graphene. The porosity, true density and thermal shock behavior in terms of the cold modulus of rupture (CMOR) and Young’s modulus were compared. Samples with a higher density were obtained when the irregularly shaped graphite was considered as the matrix component (lubricant). The results showed that the use of GO had a positive impact on the mechanical properties of the graphene-reinforced Al(2)O(3)–C refractories, especially in the case of a less optimized packing, due to the bridging of delamination gaps. In addition, the thermal shock only had a minor impact on the Young’s modulus and CMOR values of the samples. SEM investigation revealed very similar microstructures in coked as well as thermally shocked samples.
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spelling pubmed-87462762022-01-11 Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories Storti, Enrico Fruhstorfer, Jens Luchini, Bruno Jiříčková, Adéla Jankovský, Ondřej Aneziris, Christos Georgios Materials (Basel) Article Carbon-bonded alumina refractories offer excellent thermal shock performance but are lacking in terms of mechanical strength. In the present contribution, the influence of the particle packing and the addition of graphene oxide (GO) to carbon-bonded alumina refractories on the physical and mechanical properties before and after thermal shock was investigated. Coarse tabular alumina grains were coated by a GO suspension and used to prepare dry-pressed compacts. The included graphite fraction (15 wt%) was either regarded as a lubricating matrix component or as a quasi-spherical component of a calculated density-optimized aggregate size distribution. During coking, the GO was reduced to thermally reduced graphene. The porosity, true density and thermal shock behavior in terms of the cold modulus of rupture (CMOR) and Young’s modulus were compared. Samples with a higher density were obtained when the irregularly shaped graphite was considered as the matrix component (lubricant). The results showed that the use of GO had a positive impact on the mechanical properties of the graphene-reinforced Al(2)O(3)–C refractories, especially in the case of a less optimized packing, due to the bridging of delamination gaps. In addition, the thermal shock only had a minor impact on the Young’s modulus and CMOR values of the samples. SEM investigation revealed very similar microstructures in coked as well as thermally shocked samples. MDPI 2021-12-27 /pmc/articles/PMC8746276/ /pubmed/35009331 http://dx.doi.org/10.3390/ma15010186 Text en © 2021 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
Storti, Enrico
Fruhstorfer, Jens
Luchini, Bruno
Jiříčková, Adéla
Jankovský, Ondřej
Aneziris, Christos Georgios
Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories
title Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories
title_full Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories
title_fullStr Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories
title_full_unstemmed Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories
title_short Graphene-Reinforced Carbon-Bonded Coarse-Grained Refractories
title_sort graphene-reinforced carbon-bonded coarse-grained refractories
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8746276/
https://www.ncbi.nlm.nih.gov/pubmed/35009331
http://dx.doi.org/10.3390/ma15010186
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