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Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization

This paper reports the microstructural evolution and mechanical properties of a low-density Al(0.3)NbTa(0.8)Ti(1.5)V(0.2)Zr refractory high-entropy alloy (RHEA) prepared by means of a combination of mechanical alloying and spark plasma sintering (SPS). Prior to sintering, the morphology, chemical ho...

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Autores principales: Moravcikova-Gouvea, Larissa, Moravcik, Igor, Pouchly, Vaclav, Kovacova, Zuzana, Kitzmantel, Michael, Neubauer, Erich, Dlouhy, Ivo
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510135/
https://www.ncbi.nlm.nih.gov/pubmed/34640189
http://dx.doi.org/10.3390/ma14195796
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author Moravcikova-Gouvea, Larissa
Moravcik, Igor
Pouchly, Vaclav
Kovacova, Zuzana
Kitzmantel, Michael
Neubauer, Erich
Dlouhy, Ivo
author_facet Moravcikova-Gouvea, Larissa
Moravcik, Igor
Pouchly, Vaclav
Kovacova, Zuzana
Kitzmantel, Michael
Neubauer, Erich
Dlouhy, Ivo
author_sort Moravcikova-Gouvea, Larissa
collection PubMed
description This paper reports the microstructural evolution and mechanical properties of a low-density Al(0.3)NbTa(0.8)Ti(1.5)V(0.2)Zr refractory high-entropy alloy (RHEA) prepared by means of a combination of mechanical alloying and spark plasma sintering (SPS). Prior to sintering, the morphology, chemical homogeneity and crystal structures of the powders were thoroughly investigated by varying the milling times to find optimal conditions for densification. The sintered bulk RHEAs were produced with diverse feedstock powder conditions. The microstructural development of the materials was analyzed in terms of phase composition and constitution, chemical homogeneity, and crystallographic properties. Hardness and elastic constants also were measured. The calculation of phase diagrams (CALPHAD) was performed to predict the phase changes in the alloy, and the results were compared with the experiments. Milling time seems to play a significant role in the contamination level of the sintered materials. Even though a protective atmosphere was used in the entire manufacturing process, carbide formation was detected in the sintered bulks as early as after 3 h of powder milling. Oxides were observed after 30 h due to wear of the high-carbon steel milling media and SPS consolidation. Ten hours of milling seems sufficient for achieving an optimal equilibrium between microstructural homogeneity and refinement, high hardness and minimal contamination.
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spelling pubmed-85101352021-10-13 Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization Moravcikova-Gouvea, Larissa Moravcik, Igor Pouchly, Vaclav Kovacova, Zuzana Kitzmantel, Michael Neubauer, Erich Dlouhy, Ivo Materials (Basel) Article This paper reports the microstructural evolution and mechanical properties of a low-density Al(0.3)NbTa(0.8)Ti(1.5)V(0.2)Zr refractory high-entropy alloy (RHEA) prepared by means of a combination of mechanical alloying and spark plasma sintering (SPS). Prior to sintering, the morphology, chemical homogeneity and crystal structures of the powders were thoroughly investigated by varying the milling times to find optimal conditions for densification. The sintered bulk RHEAs were produced with diverse feedstock powder conditions. The microstructural development of the materials was analyzed in terms of phase composition and constitution, chemical homogeneity, and crystallographic properties. Hardness and elastic constants also were measured. The calculation of phase diagrams (CALPHAD) was performed to predict the phase changes in the alloy, and the results were compared with the experiments. Milling time seems to play a significant role in the contamination level of the sintered materials. Even though a protective atmosphere was used in the entire manufacturing process, carbide formation was detected in the sintered bulks as early as after 3 h of powder milling. Oxides were observed after 30 h due to wear of the high-carbon steel milling media and SPS consolidation. Ten hours of milling seems sufficient for achieving an optimal equilibrium between microstructural homogeneity and refinement, high hardness and minimal contamination. MDPI 2021-10-03 /pmc/articles/PMC8510135/ /pubmed/34640189 http://dx.doi.org/10.3390/ma14195796 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
Moravcikova-Gouvea, Larissa
Moravcik, Igor
Pouchly, Vaclav
Kovacova, Zuzana
Kitzmantel, Michael
Neubauer, Erich
Dlouhy, Ivo
Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization
title Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization
title_full Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization
title_fullStr Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization
title_full_unstemmed Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization
title_short Tailoring a Refractory High Entropy Alloy by Powder Metallurgy Process Optimization
title_sort tailoring a refractory high entropy alloy by powder metallurgy process optimization
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8510135/
https://www.ncbi.nlm.nih.gov/pubmed/34640189
http://dx.doi.org/10.3390/ma14195796
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