Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy

Control over a lamellar-like-structured high entropy alloy (HEA) system is found to be possible by replacement of aluminium with boron into the FeCoNi(Bx Al1-x)0.1Si0.1 composition in the range of x = 0 to 1.0. The BCC/B2 microstructure of FeCoNi(Al0.1Si0.1) HEA is changed into a multiple phase syst...

Full description

Saved in:
Bibliographic Details
Main Authors: Nordin, Norhuda Hidayah, Leong, Zhaoyuan, Goodall, Russel, Todd, Iain
Format: Article
Language:English
Published: Elsevier 2022
Subjects:
Online Access:http://irep.iium.edu.my/97560/1/97560_Theoretical%20critical%20metastability%20temperature.pdf
http://irep.iium.edu.my/97560/
https://www.sciencedirect.com/science/article/pii/S2238785422004112?via%3Dihub
Tags: Add Tag
No Tags, Be the first to tag this record!
id my.iium.irep.97560
record_format dspace
spelling my.iium.irep.975602022-04-11T00:08:59Z http://irep.iium.edu.my/97560/ Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy Nordin, Norhuda Hidayah Leong, Zhaoyuan Goodall, Russel Todd, Iain TA401 Materials of engineering and construction TN Mining engineering. Metallurgy Control over a lamellar-like-structured high entropy alloy (HEA) system is found to be possible by replacement of aluminium with boron into the FeCoNi(Bx Al1-x)0.1Si0.1 composition in the range of x = 0 to 1.0. The BCC/B2 microstructure of FeCoNi(Al0.1Si0.1) HEA is changed into a multiple phase system comprising of BCC/B2, FCC and Fe2B-type intermetallic phases. The microstructures of as-cast alloys were seen to be a lamellar-like structure comprised of nanostructured lamellae with alternating FCC and Fe2B phases. The concept of critical metastability temperature from nucleation theory is employed phenomenologically, and found to correlate with the presence of Fe2B in this alloy at different boron additions. With the substitution of boron, the stability of the disordered BCC solid solution is reduced, promoting the formation of secondary phases. We show a link between the interfacial energy of the phases present, the interlamellar spacing, and alloy metastability as a function of boron addition, the key relationship being that Fe2B phase formation correlates with a drastic reduction in the interfacial energy. These correlations bear further investigation and may be useful in the design of lamellar-like-structured multi-component systems. Elsevier 2022-03-24 Article PeerReviewed application/pdf en http://irep.iium.edu.my/97560/1/97560_Theoretical%20critical%20metastability%20temperature.pdf Nordin, Norhuda Hidayah and Leong, Zhaoyuan and Goodall, Russel and Todd, Iain (2022) Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy. Journal of Materials Research and Technology, 18. pp. 2519-2530. ISSN 2238-7854 E-ISSN 2214-0697 https://www.sciencedirect.com/science/article/pii/S2238785422004112?via%3Dihub 10.1016/j.jmrt.2022.03.104
institution Universiti Islam Antarabangsa Malaysia
building IIUM Library
collection Institutional Repository
continent Asia
country Malaysia
content_provider International Islamic University Malaysia
content_source IIUM Repository (IREP)
url_provider http://irep.iium.edu.my/
language English
topic TA401 Materials of engineering and construction
TN Mining engineering. Metallurgy
spellingShingle TA401 Materials of engineering and construction
TN Mining engineering. Metallurgy
Nordin, Norhuda Hidayah
Leong, Zhaoyuan
Goodall, Russel
Todd, Iain
Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
description Control over a lamellar-like-structured high entropy alloy (HEA) system is found to be possible by replacement of aluminium with boron into the FeCoNi(Bx Al1-x)0.1Si0.1 composition in the range of x = 0 to 1.0. The BCC/B2 microstructure of FeCoNi(Al0.1Si0.1) HEA is changed into a multiple phase system comprising of BCC/B2, FCC and Fe2B-type intermetallic phases. The microstructures of as-cast alloys were seen to be a lamellar-like structure comprised of nanostructured lamellae with alternating FCC and Fe2B phases. The concept of critical metastability temperature from nucleation theory is employed phenomenologically, and found to correlate with the presence of Fe2B in this alloy at different boron additions. With the substitution of boron, the stability of the disordered BCC solid solution is reduced, promoting the formation of secondary phases. We show a link between the interfacial energy of the phases present, the interlamellar spacing, and alloy metastability as a function of boron addition, the key relationship being that Fe2B phase formation correlates with a drastic reduction in the interfacial energy. These correlations bear further investigation and may be useful in the design of lamellar-like-structured multi-component systems.
format Article
author Nordin, Norhuda Hidayah
Leong, Zhaoyuan
Goodall, Russel
Todd, Iain
author_facet Nordin, Norhuda Hidayah
Leong, Zhaoyuan
Goodall, Russel
Todd, Iain
author_sort Nordin, Norhuda Hidayah
title Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
title_short Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
title_full Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
title_fullStr Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
title_full_unstemmed Theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
title_sort theoretical critical metastability temperature to interpret phase formation in a lamellar-like- structured high entropy alloy
publisher Elsevier
publishDate 2022
url http://irep.iium.edu.my/97560/1/97560_Theoretical%20critical%20metastability%20temperature.pdf
http://irep.iium.edu.my/97560/
https://www.sciencedirect.com/science/article/pii/S2238785422004112?via%3Dihub
_version_ 1731225375278628864
score 13.211869