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Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets

Mo(2)FeB(2)-based cermets have wide applications in fields of wear resistance, corrosion resistance and heat resistance due to their simple preparation process, low-cost raw materials, and prominent mechanical properties. Herein, Mo(2)FeB(2)-based cermets with xMo (x = 43.5, 45.5, 47.5, 49.5, wt.%)...

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Detalles Bibliográficos
Autores principales: Shen, Yupeng, Xie, Wuxi, Sun, Bingbing, Liu, Yunfei, Li, Yajin, Cao, Zhen, Jian, Yongxin, Huang, Zhifu
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9573301/
https://www.ncbi.nlm.nih.gov/pubmed/36234071
http://dx.doi.org/10.3390/ma15196729
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author Shen, Yupeng
Xie, Wuxi
Sun, Bingbing
Liu, Yunfei
Li, Yajin
Cao, Zhen
Jian, Yongxin
Huang, Zhifu
author_facet Shen, Yupeng
Xie, Wuxi
Sun, Bingbing
Liu, Yunfei
Li, Yajin
Cao, Zhen
Jian, Yongxin
Huang, Zhifu
author_sort Shen, Yupeng
collection PubMed
description Mo(2)FeB(2)-based cermets have wide applications in fields of wear resistance, corrosion resistance and heat resistance due to their simple preparation process, low-cost raw materials, and prominent mechanical properties. Herein, Mo(2)FeB(2)-based cermets with xMo (x = 43.5, 45.5, 47.5, 49.5, wt.%) were prepared by means of the vacuum liquid phase sintering technique. Investigations on the microstructure and mechanical properties of Mo(2)FeB(2)-based cermets with Mo addition were performed. Experimental results show that, with Mo content increasing, the average particle size decreases gradually, revealing that the grain coarsening of Mo(2)FeB(2)-based cermets is controlled by interface reaction. In addition, Mo(2)FeB(2) grains gradually transform from an elongated shape to a nearly equiaxed shape. The improvement of Mo(2)FeB(2) hard phase on the morphology is mainly due to the inhibition of solution–precipitation reaction by increasing Mo. Furthermore, the relative density of cermets decreases due to the reduced Fe content. When Mo content is 47.5 wt.%, a relatively small grain size of Mo(2)FeB(2) is obtained (about 2.03 μm). Moreover, with the increase in Mo content, hardness and transverse rupture strength (TRS) of Mo(2)FeB(2)-based cermets increase firstly and then decrease. Whereas, with increasing Mo content, the fracture toughness deteriorates gradually. When Mo content is 47.5 wt.%, the comprehensive mechanical properties of cermets are the best. The optimal raw material ratio for the preparation of Mo(2)FeB(2)-based cermets in this study is determined to be 47.5 wt.% Mo–6.0 wt.% B-Fe.
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spelling pubmed-95733012022-10-17 Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets Shen, Yupeng Xie, Wuxi Sun, Bingbing Liu, Yunfei Li, Yajin Cao, Zhen Jian, Yongxin Huang, Zhifu Materials (Basel) Article Mo(2)FeB(2)-based cermets have wide applications in fields of wear resistance, corrosion resistance and heat resistance due to their simple preparation process, low-cost raw materials, and prominent mechanical properties. Herein, Mo(2)FeB(2)-based cermets with xMo (x = 43.5, 45.5, 47.5, 49.5, wt.%) were prepared by means of the vacuum liquid phase sintering technique. Investigations on the microstructure and mechanical properties of Mo(2)FeB(2)-based cermets with Mo addition were performed. Experimental results show that, with Mo content increasing, the average particle size decreases gradually, revealing that the grain coarsening of Mo(2)FeB(2)-based cermets is controlled by interface reaction. In addition, Mo(2)FeB(2) grains gradually transform from an elongated shape to a nearly equiaxed shape. The improvement of Mo(2)FeB(2) hard phase on the morphology is mainly due to the inhibition of solution–precipitation reaction by increasing Mo. Furthermore, the relative density of cermets decreases due to the reduced Fe content. When Mo content is 47.5 wt.%, a relatively small grain size of Mo(2)FeB(2) is obtained (about 2.03 μm). Moreover, with the increase in Mo content, hardness and transverse rupture strength (TRS) of Mo(2)FeB(2)-based cermets increase firstly and then decrease. Whereas, with increasing Mo content, the fracture toughness deteriorates gradually. When Mo content is 47.5 wt.%, the comprehensive mechanical properties of cermets are the best. The optimal raw material ratio for the preparation of Mo(2)FeB(2)-based cermets in this study is determined to be 47.5 wt.% Mo–6.0 wt.% B-Fe. MDPI 2022-09-28 /pmc/articles/PMC9573301/ /pubmed/36234071 http://dx.doi.org/10.3390/ma15196729 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
Shen, Yupeng
Xie, Wuxi
Sun, Bingbing
Liu, Yunfei
Li, Yajin
Cao, Zhen
Jian, Yongxin
Huang, Zhifu
Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets
title Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets
title_full Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets
title_fullStr Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets
title_full_unstemmed Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets
title_short Effect of Mo Content on In-Situ Anisometric Grains Growth and Mechanical Properties of Mo(2)FeB(2)-Based Cermets
title_sort effect of mo content on in-situ anisometric grains growth and mechanical properties of mo(2)feb(2)-based cermets
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9573301/
https://www.ncbi.nlm.nih.gov/pubmed/36234071
http://dx.doi.org/10.3390/ma15196729
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