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Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf

Dual-phase high-entropy alloys with excellent room temperature and high-temperature properties have been widely studied as potential high-temperature structural materials. However, interface weakening causes its high-temperature performance to decline at higher temperatures, severely limiting furthe...

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Autores principales: Chen, Zhihua, Wang, Jianbin, Jia, Yuhao, Wu, Qingfeng, Liu, Xiaoming, Liu, Linxiang, Li, Junjie, He, Feng, Wang, Zhijun, Wang, Jincheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10647333/
https://www.ncbi.nlm.nih.gov/pubmed/37959433
http://dx.doi.org/10.3390/ma16216836
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author Chen, Zhihua
Wang, Jianbin
Jia, Yuhao
Wu, Qingfeng
Liu, Xiaoming
Liu, Linxiang
Li, Junjie
He, Feng
Wang, Zhijun
Wang, Jincheng
author_facet Chen, Zhihua
Wang, Jianbin
Jia, Yuhao
Wu, Qingfeng
Liu, Xiaoming
Liu, Linxiang
Li, Junjie
He, Feng
Wang, Zhijun
Wang, Jincheng
author_sort Chen, Zhihua
collection PubMed
description Dual-phase high-entropy alloys with excellent room temperature and high-temperature properties have been widely studied as potential high-temperature structural materials. However, interface weakening causes its high-temperature performance to decline at higher temperatures, severely limiting further development. In this study, a series of Al(17)Cr(10)Fe(36)Ni(36)Mo(1)Hf(x) (x = 0, 0.03, 0.15, 0.3, 0.5, and 0.8 at%) alloys were prepared to study the effect of Hf content on the microstructure and mechanical properties of the matrix alloy. The results indicate that with the addition of the Hf, the Hf-rich phase began to precipitate at the interface and inside the B2 phase in the matrix alloy. In contrast, the morphology of both the FCC and B2 phases had no noticeable change. With the increase in Hf content, the high-temperature strength and ductility of the alloy first increased and then decreased, while the room temperature performance remained almost unchanged. Benefiting from the hindrance of the Hf-rich phase to grain boundary sliding and dislocation movement during high-temperature deformation, the tensile strength, yield strength, and plasticity of the matrix alloy increased from 474 MPa, 535 MPa, and 8.7% to 816 MPa, 923 MPa, and 42.0% for the Al(17)Cr(10)Fe(36)Ni(36)Mo(1)Hf(0.5) alloys, respectively. This work provides a new path for designing a high-entropy alloy with excellent high-temperature mechanical properties.
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spelling pubmed-106473332023-10-24 Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf Chen, Zhihua Wang, Jianbin Jia, Yuhao Wu, Qingfeng Liu, Xiaoming Liu, Linxiang Li, Junjie He, Feng Wang, Zhijun Wang, Jincheng Materials (Basel) Article Dual-phase high-entropy alloys with excellent room temperature and high-temperature properties have been widely studied as potential high-temperature structural materials. However, interface weakening causes its high-temperature performance to decline at higher temperatures, severely limiting further development. In this study, a series of Al(17)Cr(10)Fe(36)Ni(36)Mo(1)Hf(x) (x = 0, 0.03, 0.15, 0.3, 0.5, and 0.8 at%) alloys were prepared to study the effect of Hf content on the microstructure and mechanical properties of the matrix alloy. The results indicate that with the addition of the Hf, the Hf-rich phase began to precipitate at the interface and inside the B2 phase in the matrix alloy. In contrast, the morphology of both the FCC and B2 phases had no noticeable change. With the increase in Hf content, the high-temperature strength and ductility of the alloy first increased and then decreased, while the room temperature performance remained almost unchanged. Benefiting from the hindrance of the Hf-rich phase to grain boundary sliding and dislocation movement during high-temperature deformation, the tensile strength, yield strength, and plasticity of the matrix alloy increased from 474 MPa, 535 MPa, and 8.7% to 816 MPa, 923 MPa, and 42.0% for the Al(17)Cr(10)Fe(36)Ni(36)Mo(1)Hf(0.5) alloys, respectively. This work provides a new path for designing a high-entropy alloy with excellent high-temperature mechanical properties. MDPI 2023-10-24 /pmc/articles/PMC10647333/ /pubmed/37959433 http://dx.doi.org/10.3390/ma16216836 Text en © 2023 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
Chen, Zhihua
Wang, Jianbin
Jia, Yuhao
Wu, Qingfeng
Liu, Xiaoming
Liu, Linxiang
Li, Junjie
He, Feng
Wang, Zhijun
Wang, Jincheng
Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf
title Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf
title_full Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf
title_fullStr Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf
title_full_unstemmed Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf
title_short Significantly Improving the High-Temperature Tensile Properties of Al(17)Cr(10)Fe(36)Ni(36)Mo(1) Alloys by Microalloying Hf
title_sort significantly improving the high-temperature tensile properties of al(17)cr(10)fe(36)ni(36)mo(1) alloys by microalloying hf
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10647333/
https://www.ncbi.nlm.nih.gov/pubmed/37959433
http://dx.doi.org/10.3390/ma16216836
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