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Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites

In this work, the effect of different mixing techniques on thermal and mechanical properties of graphene nanoplatelets (GNPs) and graphene nanofibers (GANFs) loaded epoxy nanocomposites was investigated. Three dispersion methods were employed: a high shear rate (HSR), ultrasonication (US) and the fl...

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Autores principales: Zotti, Aldobenedetto, Zuppolini, Simona, Borriello, Anna, Vinti, Valeria, Trinchillo, Luigi, Borrelli, Domenico, Caraviello, Antonio, Zarrelli, Mauro
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736334/
https://www.ncbi.nlm.nih.gov/pubmed/36501499
http://dx.doi.org/10.3390/polym14235105
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author Zotti, Aldobenedetto
Zuppolini, Simona
Borriello, Anna
Vinti, Valeria
Trinchillo, Luigi
Borrelli, Domenico
Caraviello, Antonio
Zarrelli, Mauro
author_facet Zotti, Aldobenedetto
Zuppolini, Simona
Borriello, Anna
Vinti, Valeria
Trinchillo, Luigi
Borrelli, Domenico
Caraviello, Antonio
Zarrelli, Mauro
author_sort Zotti, Aldobenedetto
collection PubMed
description In this work, the effect of different mixing techniques on thermal and mechanical properties of graphene nanoplatelets (GNPs) and graphene nanofibers (GANFs) loaded epoxy nanocomposites was investigated. Three dispersion methods were employed: a high shear rate (HSR), ultrasonication (US) and the fluidized bed method (FBM). The optical microscopy has revealed that the most suitable dispersion, in terms of homogeneity and cluster size, is achieved by implementing the US and FBM techniques, leading to nanocomposites with the largest increase of glass transition temperature, as supported by the DMA analysis data. The fracture toughness results show a general increase of both the critical stress intensity factor (K(IC)) and the critical strain energy release rate (G(IC)), likely due to the homogeneity and the low scale dispersion of the carbonaceous nanostructures. Based on the nanocomposite fracture toughness improvements and also assuming a potential large scale up production of the nanocomposite matrix, a single mixing technique, namely the FBM, was employed to manufacture the carbon fiber reinforced composite (CFRC). This method has resulted in being less time-consuming and is potentially most suitable for the high volume industrial production. The CFRCs were characterized in terms of tensile, flexural and interlaminar fracture toughness properties and the results were analyzed and discussed.
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spelling pubmed-97363342022-12-11 Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites Zotti, Aldobenedetto Zuppolini, Simona Borriello, Anna Vinti, Valeria Trinchillo, Luigi Borrelli, Domenico Caraviello, Antonio Zarrelli, Mauro Polymers (Basel) Article In this work, the effect of different mixing techniques on thermal and mechanical properties of graphene nanoplatelets (GNPs) and graphene nanofibers (GANFs) loaded epoxy nanocomposites was investigated. Three dispersion methods were employed: a high shear rate (HSR), ultrasonication (US) and the fluidized bed method (FBM). The optical microscopy has revealed that the most suitable dispersion, in terms of homogeneity and cluster size, is achieved by implementing the US and FBM techniques, leading to nanocomposites with the largest increase of glass transition temperature, as supported by the DMA analysis data. The fracture toughness results show a general increase of both the critical stress intensity factor (K(IC)) and the critical strain energy release rate (G(IC)), likely due to the homogeneity and the low scale dispersion of the carbonaceous nanostructures. Based on the nanocomposite fracture toughness improvements and also assuming a potential large scale up production of the nanocomposite matrix, a single mixing technique, namely the FBM, was employed to manufacture the carbon fiber reinforced composite (CFRC). This method has resulted in being less time-consuming and is potentially most suitable for the high volume industrial production. The CFRCs were characterized in terms of tensile, flexural and interlaminar fracture toughness properties and the results were analyzed and discussed. MDPI 2022-11-24 /pmc/articles/PMC9736334/ /pubmed/36501499 http://dx.doi.org/10.3390/polym14235105 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
Zotti, Aldobenedetto
Zuppolini, Simona
Borriello, Anna
Vinti, Valeria
Trinchillo, Luigi
Borrelli, Domenico
Caraviello, Antonio
Zarrelli, Mauro
Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites
title Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites
title_full Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites
title_fullStr Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites
title_full_unstemmed Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites
title_short Effect of the Mixing Technique of Graphene Nanoplatelets and Graphene Nanofibers on Fracture Toughness of Epoxy Based Nanocomposites and Composites
title_sort effect of the mixing technique of graphene nanoplatelets and graphene nanofibers on fracture toughness of epoxy based nanocomposites and composites
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9736334/
https://www.ncbi.nlm.nih.gov/pubmed/36501499
http://dx.doi.org/10.3390/polym14235105
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