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Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips

The refining performance of Al-Ti-C master alloys is substantially compromised by the inferior wettability between graphite and molten aluminum. In this paper, the Al-5Ti-0.25C master alloy was successfully prepared by reacting Ti machining chips, graphite, and molten aluminum. In order to determine...

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Detalles Bibliográficos
Autores principales: Li, Sanbo, Zhao, Chunfang, Wang, Fei, Hu, Maoliang, Ji, Zesheng, Sugiyama, Sumio
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510386/
https://www.ncbi.nlm.nih.gov/pubmed/34640180
http://dx.doi.org/10.3390/ma14195783
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author Li, Sanbo
Zhao, Chunfang
Wang, Fei
Hu, Maoliang
Ji, Zesheng
Sugiyama, Sumio
author_facet Li, Sanbo
Zhao, Chunfang
Wang, Fei
Hu, Maoliang
Ji, Zesheng
Sugiyama, Sumio
author_sort Li, Sanbo
collection PubMed
description The refining performance of Al-Ti-C master alloys is substantially compromised by the inferior wettability between graphite and molten aluminum. In this paper, the Al-5Ti-0.25C master alloy was successfully prepared by reacting Ti machining chips, graphite, and molten aluminum. In order to determine a simple method of improving the wettability, the optimal preparation process and phase transformation of the Al-5Ti-0.25C master alloy were investigated using an optical microscope, X-ray diffractometer, and scanning electron microscope equipped with an energy dispersive spectrometer. The results show that the feeding method using a prefabricated block made from Ti chips, Al chips, and graphite effectively improves the wettability between graphite and molten aluminum and increases the recovery rate of graphite. When the reaction temperature is low (1223 K), the agglomeration of TiAl(3) is caused. When the reaction temperature is high (1373 K), the morphology of TiAl(3) changes from block-like to needle-like and increases its size. Further, a short reaction time (30 min) results in the incomplete dissolution of the Ti chips, while a long reaction time (90 min) causes the TiAl(3) to transform into needle-like morphologies. The microstructural observation of undissolved Ti chips shows that TiAl(3) and TiC are formed around it, which proves the transformation of Ti chips to TiAl(3) and TiC. In addition, the enrichment of TiC and Al(4)C(3) was observed in the vicinity of TiAl(3), and a reaction model for the formation of TiC from the reaction of Al(4)C(3) and TiAl(3) was presented.
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spelling pubmed-85103862021-10-13 Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips Li, Sanbo Zhao, Chunfang Wang, Fei Hu, Maoliang Ji, Zesheng Sugiyama, Sumio Materials (Basel) Article The refining performance of Al-Ti-C master alloys is substantially compromised by the inferior wettability between graphite and molten aluminum. In this paper, the Al-5Ti-0.25C master alloy was successfully prepared by reacting Ti machining chips, graphite, and molten aluminum. In order to determine a simple method of improving the wettability, the optimal preparation process and phase transformation of the Al-5Ti-0.25C master alloy were investigated using an optical microscope, X-ray diffractometer, and scanning electron microscope equipped with an energy dispersive spectrometer. The results show that the feeding method using a prefabricated block made from Ti chips, Al chips, and graphite effectively improves the wettability between graphite and molten aluminum and increases the recovery rate of graphite. When the reaction temperature is low (1223 K), the agglomeration of TiAl(3) is caused. When the reaction temperature is high (1373 K), the morphology of TiAl(3) changes from block-like to needle-like and increases its size. Further, a short reaction time (30 min) results in the incomplete dissolution of the Ti chips, while a long reaction time (90 min) causes the TiAl(3) to transform into needle-like morphologies. The microstructural observation of undissolved Ti chips shows that TiAl(3) and TiC are formed around it, which proves the transformation of Ti chips to TiAl(3) and TiC. In addition, the enrichment of TiC and Al(4)C(3) was observed in the vicinity of TiAl(3), and a reaction model for the formation of TiC from the reaction of Al(4)C(3) and TiAl(3) was presented. MDPI 2021-10-03 /pmc/articles/PMC8510386/ /pubmed/34640180 http://dx.doi.org/10.3390/ma14195783 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
Li, Sanbo
Zhao, Chunfang
Wang, Fei
Hu, Maoliang
Ji, Zesheng
Sugiyama, Sumio
Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips
title Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips
title_full Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips
title_fullStr Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips
title_full_unstemmed Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips
title_short Preparation Process and Phase Transformation of Al-5Ti-0.25C Master Alloy Adopting Ti Machining Chips
title_sort preparation process and phase transformation of al-5ti-0.25c master alloy adopting ti machining chips
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510386/
https://www.ncbi.nlm.nih.gov/pubmed/34640180
http://dx.doi.org/10.3390/ma14195783
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