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Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy

Aluminum alloys are the most essential part of all shaped castings manufactured, mainly in the automotive, food industry, and structural applications. There is little consensus as to the precise relationship between grain size after grain refinement and corrosion resistance; conflicting conclusions...

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Autores principales: El-Aziz, Khaled Abd, Ahmed, Emad M, Alghtani, Abdulaziz H, Felemban, Bassem F, Ali, Hafiz T, Megahed, Mona, Saber, Dalia
Formato: Online Artículo Texto
Lenguaje:English
Publicado: SAGE Publications 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305821/
https://www.ncbi.nlm.nih.gov/pubmed/34191657
http://dx.doi.org/10.1177/00368504211029469
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author El-Aziz, Khaled Abd
Ahmed, Emad M
Alghtani, Abdulaziz H
Felemban, Bassem F
Ali, Hafiz T
Megahed, Mona
Saber, Dalia
author_facet El-Aziz, Khaled Abd
Ahmed, Emad M
Alghtani, Abdulaziz H
Felemban, Bassem F
Ali, Hafiz T
Megahed, Mona
Saber, Dalia
author_sort El-Aziz, Khaled Abd
collection PubMed
description Aluminum alloys are the most essential part of all shaped castings manufactured, mainly in the automotive, food industry, and structural applications. There is little consensus as to the precise relationship between grain size after grain refinement and corrosion resistance; conflicting conclusions have been published showing that reduced grain size can decrease or increase corrosion resistance. The effect of Al–5Ti–1B grain refiner (GR alloy) with different percentages on the mechanical properties and corrosion behavior of Aluminum-magnesium-silicon alloy (Al–Mg–Si) was studied. The average grain size is determined according to the E112ASTM standard. The compressive test specimens were made as per ASTM: E8/E8M-16 standard to get their compressive properties. The bulk hardness using Vickers hardness testing machine at a load of 50 g. Electrochemical corrosion tests were carried out in 3.5 % NaCl solution using Autolab Potentiostat/Galvanostat (PGSTAT 30).The grain size of the Al–Mg–Si alloy was reduced from 82 to 46 µm by the addition of GR alloy. The morphology of α-Al dendrites changes from coarse dendritic structure to fine equiaxed grains due to the addition of GR alloy and segregation of Ti, which controls the growth of primary α-Al. In addition, the mechanical properties of the Al–Mg–Si alloy were improved by GR alloy addition. GR alloy addition to Al–Mg–Si alloy produced fine-grained structure and better hardness and compressive strength. The addition of GR alloy did not reveal any marked improvements in the corrosion properties of Al–Mg–Si alloy.
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spelling pubmed-103058212023-08-09 Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy El-Aziz, Khaled Abd Ahmed, Emad M Alghtani, Abdulaziz H Felemban, Bassem F Ali, Hafiz T Megahed, Mona Saber, Dalia Sci Prog Article Aluminum alloys are the most essential part of all shaped castings manufactured, mainly in the automotive, food industry, and structural applications. There is little consensus as to the precise relationship between grain size after grain refinement and corrosion resistance; conflicting conclusions have been published showing that reduced grain size can decrease or increase corrosion resistance. The effect of Al–5Ti–1B grain refiner (GR alloy) with different percentages on the mechanical properties and corrosion behavior of Aluminum-magnesium-silicon alloy (Al–Mg–Si) was studied. The average grain size is determined according to the E112ASTM standard. The compressive test specimens were made as per ASTM: E8/E8M-16 standard to get their compressive properties. The bulk hardness using Vickers hardness testing machine at a load of 50 g. Electrochemical corrosion tests were carried out in 3.5 % NaCl solution using Autolab Potentiostat/Galvanostat (PGSTAT 30).The grain size of the Al–Mg–Si alloy was reduced from 82 to 46 µm by the addition of GR alloy. The morphology of α-Al dendrites changes from coarse dendritic structure to fine equiaxed grains due to the addition of GR alloy and segregation of Ti, which controls the growth of primary α-Al. In addition, the mechanical properties of the Al–Mg–Si alloy were improved by GR alloy addition. GR alloy addition to Al–Mg–Si alloy produced fine-grained structure and better hardness and compressive strength. The addition of GR alloy did not reveal any marked improvements in the corrosion properties of Al–Mg–Si alloy. SAGE Publications 2021-06-30 /pmc/articles/PMC10305821/ /pubmed/34191657 http://dx.doi.org/10.1177/00368504211029469 Text en © The Author(s) 2021 https://creativecommons.org/licenses/by-nc/4.0/This article is distributed under the terms of the Creative Commons Attribution-NonCommercial 4.0 License (https://creativecommons.org/licenses/by-nc/4.0/) which permits non-commercial use, reproduction and distribution of the work without further permission provided the original work is attributed as specified on the SAGE and Open Access pages (https://us.sagepub.com/en-us/nam/open-access-at-sage).
spellingShingle Article
El-Aziz, Khaled Abd
Ahmed, Emad M
Alghtani, Abdulaziz H
Felemban, Bassem F
Ali, Hafiz T
Megahed, Mona
Saber, Dalia
Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy
title Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy
title_full Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy
title_fullStr Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy
title_full_unstemmed Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy
title_short Development of Al–Mg–Si alloy performance by addition of grain refiner Al–5Ti–1B alloy
title_sort development of al–mg–si alloy performance by addition of grain refiner al–5ti–1b alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10305821/
https://www.ncbi.nlm.nih.gov/pubmed/34191657
http://dx.doi.org/10.1177/00368504211029469
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