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Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite

The involvement of magnesium matrix composite enhanced by metal particles, the development of low lattice mismatch interface, and the refining of particle size are all of great significance in improving strengthening efficiency. In this work, nano-crystalline Ti/Mg-9Al-Zn-0.3Mn composites were prepa...

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Autores principales: Wang, Rongrong, Han, Yejin, Yu, Huan, Su, Qian, Li, Hang, Cheng, Kaiming, Zhou, Jixue, Tang, Shouqiu, Ju, Wei
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9604841/
https://www.ncbi.nlm.nih.gov/pubmed/36295143
http://dx.doi.org/10.3390/ma15207075
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author Wang, Rongrong
Han, Yejin
Yu, Huan
Su, Qian
Li, Hang
Cheng, Kaiming
Zhou, Jixue
Tang, Shouqiu
Ju, Wei
author_facet Wang, Rongrong
Han, Yejin
Yu, Huan
Su, Qian
Li, Hang
Cheng, Kaiming
Zhou, Jixue
Tang, Shouqiu
Ju, Wei
author_sort Wang, Rongrong
collection PubMed
description The involvement of magnesium matrix composite enhanced by metal particles, the development of low lattice mismatch interface, and the refining of particle size are all of great significance in improving strengthening efficiency. In this work, nano-crystalline Ti/Mg-9Al-Zn-0.3Mn composites were prepared by mechanical milling. The microstructure was characterized and the mechanical property was measured. After mechanical milling, the grain of the Mg matrix was refined to ~72 nm. Ti particles were smashed to submicron scale, and dispersed in the Mg matrix. In total, 68% of Ti particles were nano-scale and the average particle size was 133 nm. A nano-scale Mg(17)Al(12) precipitate was found and the average particle size was approximately 44 nm. Meanwhile, coherent interfaces of Ti/Mg and Mg(17)Al(12)/Mg were observed, and it was found that the (101)Mg plane and (100)Ti plane inclined 12° and [044]Mg(17)Al(12) was parallel to [010]Mg. The hardness of the milled Ti/Mg-9Al-Zn-0.3Mn composite was 1.98 GPa, 247% higher than the initial alloy. Milled Mg-9Al-Zn-0.3Mn alloy under the same preparation processing was used as a comparison, and the value of hardness was 1.53 GPa. Tiny Ti particles displayed excellent strengthening efficiency. Strengthening mechanisms of the milled Ti/Mg-9Al-Zn-0.3Mn composite were analyzed and the main strengthening mechanisms included the strengthening of grain boundary strengthening, Orowan strengthening, dislocation strengthening, solid solution strengthening and load-bearing strengthening, which accounted for 56.3%, 18.2%, 17.4%, 4.7% and 3.5%, respectively.
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spelling pubmed-96048412022-10-27 Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite Wang, Rongrong Han, Yejin Yu, Huan Su, Qian Li, Hang Cheng, Kaiming Zhou, Jixue Tang, Shouqiu Ju, Wei Materials (Basel) Article The involvement of magnesium matrix composite enhanced by metal particles, the development of low lattice mismatch interface, and the refining of particle size are all of great significance in improving strengthening efficiency. In this work, nano-crystalline Ti/Mg-9Al-Zn-0.3Mn composites were prepared by mechanical milling. The microstructure was characterized and the mechanical property was measured. After mechanical milling, the grain of the Mg matrix was refined to ~72 nm. Ti particles were smashed to submicron scale, and dispersed in the Mg matrix. In total, 68% of Ti particles were nano-scale and the average particle size was 133 nm. A nano-scale Mg(17)Al(12) precipitate was found and the average particle size was approximately 44 nm. Meanwhile, coherent interfaces of Ti/Mg and Mg(17)Al(12)/Mg were observed, and it was found that the (101)Mg plane and (100)Ti plane inclined 12° and [044]Mg(17)Al(12) was parallel to [010]Mg. The hardness of the milled Ti/Mg-9Al-Zn-0.3Mn composite was 1.98 GPa, 247% higher than the initial alloy. Milled Mg-9Al-Zn-0.3Mn alloy under the same preparation processing was used as a comparison, and the value of hardness was 1.53 GPa. Tiny Ti particles displayed excellent strengthening efficiency. Strengthening mechanisms of the milled Ti/Mg-9Al-Zn-0.3Mn composite were analyzed and the main strengthening mechanisms included the strengthening of grain boundary strengthening, Orowan strengthening, dislocation strengthening, solid solution strengthening and load-bearing strengthening, which accounted for 56.3%, 18.2%, 17.4%, 4.7% and 3.5%, respectively. MDPI 2022-10-11 /pmc/articles/PMC9604841/ /pubmed/36295143 http://dx.doi.org/10.3390/ma15207075 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
Wang, Rongrong
Han, Yejin
Yu, Huan
Su, Qian
Li, Hang
Cheng, Kaiming
Zhou, Jixue
Tang, Shouqiu
Ju, Wei
Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite
title Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite
title_full Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite
title_fullStr Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite
title_full_unstemmed Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite
title_short Exceptional Strengthening Efficiency and Hardness of Ti/Mg-9Al-Zn-0.3Mn Matrix Composite
title_sort exceptional strengthening efficiency and hardness of ti/mg-9al-zn-0.3mn matrix composite
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9604841/
https://www.ncbi.nlm.nih.gov/pubmed/36295143
http://dx.doi.org/10.3390/ma15207075
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