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Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering

The structure of FeCoNiCrAl1.8Cu0.5 high-entropy alloys (HEA) obtained by two different routes has been studied. The selection of the composition has followed the Hume–Rothery approach in terms of number of itinerant electrons (e/a) and average atomic radius to control the formation of specific phas...

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Autores principales: Reverte, Eduardo, Calvo-Dahlborg, Monique, Dahlborg, Ulf, Campos, Monica, Alvaredo, Paula, Martin-Rodriguez, Pablo, Gordo, Elena, Cornide, Juan
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8348626/
https://www.ncbi.nlm.nih.gov/pubmed/34361536
http://dx.doi.org/10.3390/ma14154342
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author Reverte, Eduardo
Calvo-Dahlborg, Monique
Dahlborg, Ulf
Campos, Monica
Alvaredo, Paula
Martin-Rodriguez, Pablo
Gordo, Elena
Cornide, Juan
author_facet Reverte, Eduardo
Calvo-Dahlborg, Monique
Dahlborg, Ulf
Campos, Monica
Alvaredo, Paula
Martin-Rodriguez, Pablo
Gordo, Elena
Cornide, Juan
author_sort Reverte, Eduardo
collection PubMed
description The structure of FeCoNiCrAl1.8Cu0.5 high-entropy alloys (HEA) obtained by two different routes has been studied. The selection of the composition has followed the Hume–Rothery approach in terms of number of itinerant electrons (e/a) and average atomic radius to control the formation of specific phases. The alloys were obtained either from a mixture of elemental powders or from gas-atomised powders, being consolidated in both cases by uniaxial pressing and vacuum sintering at temperatures of 1200 °C and 1300 °C. The characterization performed in the sintered samples from both types of powder includes scanning electron microscopy, X-ray diffraction, differential thermal analysis, and density measurements. It was found that the powder production techniques give similar phases content. However, the sintering at 1300 °C destroys the achieved phase stability of the samples. The phases identified by all techniques and confirmed by Thermo-Calc calculations are the following: a major Co-Ni-Al-rich (P1) BCC phase, which stays stable after 1300 °C sintering and homogenising TT treatments; a complex Cr-Fe-rich (P2) B2 type phase, which transforms into a sigma phase after the 1300 °C sintering and homogenising TT treatments; and a very minor Al-Cu-rich (P3) FCC phase, which also transforms into Domain II and Domain III phases during the heating at 1300 °C and homogenising TT treatments.
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spelling pubmed-83486262021-08-08 Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering Reverte, Eduardo Calvo-Dahlborg, Monique Dahlborg, Ulf Campos, Monica Alvaredo, Paula Martin-Rodriguez, Pablo Gordo, Elena Cornide, Juan Materials (Basel) Article The structure of FeCoNiCrAl1.8Cu0.5 high-entropy alloys (HEA) obtained by two different routes has been studied. The selection of the composition has followed the Hume–Rothery approach in terms of number of itinerant electrons (e/a) and average atomic radius to control the formation of specific phases. The alloys were obtained either from a mixture of elemental powders or from gas-atomised powders, being consolidated in both cases by uniaxial pressing and vacuum sintering at temperatures of 1200 °C and 1300 °C. The characterization performed in the sintered samples from both types of powder includes scanning electron microscopy, X-ray diffraction, differential thermal analysis, and density measurements. It was found that the powder production techniques give similar phases content. However, the sintering at 1300 °C destroys the achieved phase stability of the samples. The phases identified by all techniques and confirmed by Thermo-Calc calculations are the following: a major Co-Ni-Al-rich (P1) BCC phase, which stays stable after 1300 °C sintering and homogenising TT treatments; a complex Cr-Fe-rich (P2) B2 type phase, which transforms into a sigma phase after the 1300 °C sintering and homogenising TT treatments; and a very minor Al-Cu-rich (P3) FCC phase, which also transforms into Domain II and Domain III phases during the heating at 1300 °C and homogenising TT treatments. MDPI 2021-08-03 /pmc/articles/PMC8348626/ /pubmed/34361536 http://dx.doi.org/10.3390/ma14154342 Text en © 2021 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
Reverte, Eduardo
Calvo-Dahlborg, Monique
Dahlborg, Ulf
Campos, Monica
Alvaredo, Paula
Martin-Rodriguez, Pablo
Gordo, Elena
Cornide, Juan
Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering
title Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering
title_full Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering
title_fullStr Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering
title_full_unstemmed Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering
title_short Design and Production of a New FeCoNiCrAlCu High-Entropy Alloy: Influence of Powder Production Method on Sintering
title_sort design and production of a new feconicralcu high-entropy alloy: influence of powder production method on sintering
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8348626/
https://www.ncbi.nlm.nih.gov/pubmed/34361536
http://dx.doi.org/10.3390/ma14154342
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