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Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique

In this study, we enhanced the adhesion of graphene nanosheets to achieve homogeneous dispersion, consequently improving the electrical and thermal conductivity, coefficient of thermal expansion, and corrosion resistance with an aluminum matrix containing up to 1.5 wt. % graphene. First, 2.5 wt. % A...

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Autores principales: El-Kady, Omayma A., Yehia, Hossam M., Nouh, Fathei, Ghayad, Ibrahim M., El-Bitar, Taher, Daoush, Walid M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9605149/
https://www.ncbi.nlm.nih.gov/pubmed/36295184
http://dx.doi.org/10.3390/ma15207116
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author El-Kady, Omayma A.
Yehia, Hossam M.
Nouh, Fathei
Ghayad, Ibrahim M.
El-Bitar, Taher
Daoush, Walid M.
author_facet El-Kady, Omayma A.
Yehia, Hossam M.
Nouh, Fathei
Ghayad, Ibrahim M.
El-Bitar, Taher
Daoush, Walid M.
author_sort El-Kady, Omayma A.
collection PubMed
description In this study, we enhanced the adhesion of graphene nanosheets to achieve homogeneous dispersion, consequently improving the electrical and thermal conductivity, coefficient of thermal expansion, and corrosion resistance with an aluminum matrix containing up to 1.5 wt. % graphene. First, 2.5 wt. % Al(2)O(3) and varying ratios of graphene up to 1.5 wt. % were coated with 5 wt. % silver nanoparticles to metalize their surfaces. Predetermined portions of coated alumina and graphene were mixed with Al/10 wt. % Cu powder for 45 h. Mixed samples were compacted under 600 MPa and sintered at 565 °C in a vacuum furnace for 60 min with a low heating rate of 2 °C/min. The strengthening effect of the added materials on the density, microstructure, electrical and thermal conductivities, thermal expansion, and corrosion behavior of aluminum were investigated. Excellent adhesion and homogeneous dispersion of the investigated reinforcements were achieved. Three phenomena were observed: (1) an improvement in the densification, electrical and thermal conductivity, thermal expansion, and corrosion rate by adding 10 wt. % Cu to the aluminum matrix; (2) deterioration of the properties of Al/10 wt. % Cu with the addition of 2.5 wt. % alumina nanoparticles; and (3) improved properties with the addition of graphene nanosheets up to 1 wt. % and a decrease in property values beyond 1.5 wt. % graphene content due to the formation of agglomerations and pores in the metal matrix.
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spelling pubmed-96051492022-10-27 Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique El-Kady, Omayma A. Yehia, Hossam M. Nouh, Fathei Ghayad, Ibrahim M. El-Bitar, Taher Daoush, Walid M. Materials (Basel) Article In this study, we enhanced the adhesion of graphene nanosheets to achieve homogeneous dispersion, consequently improving the electrical and thermal conductivity, coefficient of thermal expansion, and corrosion resistance with an aluminum matrix containing up to 1.5 wt. % graphene. First, 2.5 wt. % Al(2)O(3) and varying ratios of graphene up to 1.5 wt. % were coated with 5 wt. % silver nanoparticles to metalize their surfaces. Predetermined portions of coated alumina and graphene were mixed with Al/10 wt. % Cu powder for 45 h. Mixed samples were compacted under 600 MPa and sintered at 565 °C in a vacuum furnace for 60 min with a low heating rate of 2 °C/min. The strengthening effect of the added materials on the density, microstructure, electrical and thermal conductivities, thermal expansion, and corrosion behavior of aluminum were investigated. Excellent adhesion and homogeneous dispersion of the investigated reinforcements were achieved. Three phenomena were observed: (1) an improvement in the densification, electrical and thermal conductivity, thermal expansion, and corrosion rate by adding 10 wt. % Cu to the aluminum matrix; (2) deterioration of the properties of Al/10 wt. % Cu with the addition of 2.5 wt. % alumina nanoparticles; and (3) improved properties with the addition of graphene nanosheets up to 1 wt. % and a decrease in property values beyond 1.5 wt. % graphene content due to the formation of agglomerations and pores in the metal matrix. MDPI 2022-10-13 /pmc/articles/PMC9605149/ /pubmed/36295184 http://dx.doi.org/10.3390/ma15207116 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
El-Kady, Omayma A.
Yehia, Hossam M.
Nouh, Fathei
Ghayad, Ibrahim M.
El-Bitar, Taher
Daoush, Walid M.
Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique
title Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique
title_full Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique
title_fullStr Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique
title_full_unstemmed Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique
title_short Enhancement of Physical Properties and Corrosion Resistance of Al-Cu-Al(2)O(3)/Graphene Nanocomposites by Powder Metallurgy Technique
title_sort enhancement of physical properties and corrosion resistance of al-cu-al(2)o(3)/graphene nanocomposites by powder metallurgy technique
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9605149/
https://www.ncbi.nlm.nih.gov/pubmed/36295184
http://dx.doi.org/10.3390/ma15207116
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