Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying

In the present study, the mechanical alloying process was used to produce the Ni-Nb-Si amorphous alloy. X-ray diffraction (XRD)analysis and high-resolution transmission electron microscopy (HRTEM) were used to approve the amorphous phase formation after 12 hours of mechanical alloying. The results o...

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Main Authors: Gh. Akbari, M. H. Enayati, H. Minouei
Format: Article
Language:fas
Published: Isfahan University of Technology 2018-06-01
Series:Journal of Advanced Materials in Engineering
Subjects:
Online Access:http://jame.iut.ac.ir/article-1-925-en.html
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spelling doaj-2c0b2f542cde4b288a7a2dd2b2213fa42021-03-08T09:59:43ZfasIsfahan University of TechnologyJournal of Advanced Materials in Engineering2251-600X2423-57332018-06-0137119Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical AlloyingGh. Akbari0M. H. Enayati1H. Minouei2 1. Department of Metallurgy and Materials Science, Shahid Bahonar University of Kerman, Kerman, Iran. 2. Department of Material Engineering, Isfahan University of Technology, Isfahan, Iran. 1. Department of Metallurgy and Materials Science, Shahid Bahonar University of Kerman, Kerman, Iran. In the present study, the mechanical alloying process was used to produce the Ni-Nb-Si amorphous alloy. X-ray diffraction (XRD)analysis and high-resolution transmission electron microscopy (HRTEM) were used to approve the amorphous phase formation after 12 hours of mechanical alloying. The results obtained from the SEM morphological images of powder particles during mechanical alloying showed that increasing the milling time caused the reduction  of the powder particles size and uniformity in the shape of the particles. Enhancing the embrittlement and fracturing rate caused brittleness and the  increase in the  failure rate; these were followed by a decrease in the powder particle size to 1-5μm. Cold welding and flattening of the pure elemental powders after mechanical alloying for 2 hours formed a lamellar structure of the alternative layers of different elements lying over each other. SEM image of cross-section of powder particles showed that by increasing the milling time, the interlamellar spacing was decreased, the elements were distributed more uniformly, and finally, a uniform structure of theamorphous phase was completed.http://jame.iut.ac.ir/article-1-925-en.htmlmechanical alloyingamorphous alloynickel-based alloy.
collection DOAJ
language fas
format Article
sources DOAJ
author Gh. Akbari
M. H. Enayati
H. Minouei
spellingShingle Gh. Akbari
M. H. Enayati
H. Minouei
Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying
Journal of Advanced Materials in Engineering
mechanical alloying
amorphous alloy
nickel-based alloy.
author_facet Gh. Akbari
M. H. Enayati
H. Minouei
author_sort Gh. Akbari
title Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying
title_short Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying
title_full Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying
title_fullStr Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying
title_full_unstemmed Evaluation of the Microstructure of Ni-Nb-Si Alloy During Mechanical Alloying
title_sort evaluation of the microstructure of ni-nb-si alloy during mechanical alloying
publisher Isfahan University of Technology
series Journal of Advanced Materials in Engineering
issn 2251-600X
2423-5733
publishDate 2018-06-01
description In the present study, the mechanical alloying process was used to produce the Ni-Nb-Si amorphous alloy. X-ray diffraction (XRD)analysis and high-resolution transmission electron microscopy (HRTEM) were used to approve the amorphous phase formation after 12 hours of mechanical alloying. The results obtained from the SEM morphological images of powder particles during mechanical alloying showed that increasing the milling time caused the reduction  of the powder particles size and uniformity in the shape of the particles. Enhancing the embrittlement and fracturing rate caused brittleness and the  increase in the  failure rate; these were followed by a decrease in the powder particle size to 1-5μm. Cold welding and flattening of the pure elemental powders after mechanical alloying for 2 hours formed a lamellar structure of the alternative layers of different elements lying over each other. SEM image of cross-section of powder particles showed that by increasing the milling time, the interlamellar spacing was decreased, the elements were distributed more uniformly, and finally, a uniform structure of theamorphous phase was completed.
topic mechanical alloying
amorphous alloy
nickel-based alloy.
url http://jame.iut.ac.ir/article-1-925-en.html
work_keys_str_mv AT ghakbari evaluationofthemicrostructureofninbsialloyduringmechanicalalloying
AT mhenayati evaluationofthemicrostructureofninbsialloyduringmechanicalalloying
AT hminouei evaluationofthemicrostructureofninbsialloyduringmechanicalalloying
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