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Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing

The NiAl–Cr–Co–X alloys were produced by centrifugal self-propagating high-temperature synthesis (SHS) casting. The effects of dopants X = La, Mo, Zr, Ta, and Re on combustion, as well as the phase composition, structure, and properties of the resulting cast alloys, have been studied. The greatest i...

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Autores principales: Sanin, Vitaliy V., Kaplansky, Yury Yu., Aheiev, Maksym I., Levashov, Evgeny A., Petrzhik, Mikhail I., Bychkova, Marina Ya., Samokhin, Andrey V., Fadeev, Andrey A., Sanin, Vladimir N.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8229370/
https://www.ncbi.nlm.nih.gov/pubmed/34201081
http://dx.doi.org/10.3390/ma14123144
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author Sanin, Vitaliy V.
Kaplansky, Yury Yu.
Aheiev, Maksym I.
Levashov, Evgeny A.
Petrzhik, Mikhail I.
Bychkova, Marina Ya.
Samokhin, Andrey V.
Fadeev, Andrey A.
Sanin, Vladimir N.
author_facet Sanin, Vitaliy V.
Kaplansky, Yury Yu.
Aheiev, Maksym I.
Levashov, Evgeny A.
Petrzhik, Mikhail I.
Bychkova, Marina Ya.
Samokhin, Andrey V.
Fadeev, Andrey A.
Sanin, Vladimir N.
author_sort Sanin, Vitaliy V.
collection PubMed
description The NiAl–Cr–Co–X alloys were produced by centrifugal self-propagating high-temperature synthesis (SHS) casting. The effects of dopants X = La, Mo, Zr, Ta, and Re on combustion, as well as the phase composition, structure, and properties of the resulting cast alloys, have been studied. The greatest improvement in overall properties was achieved when the alloys were co-doped with 15% Mo and 1.5% Re. By forming a ductile matrix, molybdenum enhanced strength characteristics up to the values σ(ucs) = 1604 ± 80 MPa, σ(ys) = 1520 ± 80 MPa, and ε(pd) = 0.79%, while annealing at T = 1250 ℃ and t = 180 min improved strength characteristics to the following level: σ(ucs) = 1800 ± 80 MPa, σ(ys) = 1670 ± 80 MPa, and ε(pd) = 1.58%. Rhenium modified the structure of the alloy and further improved its properties. The mechanical properties of the NiAl, ZrNi(5), Ni(0.92)Ta(0.08), (Al,Ta)Ni(3), and Al(Re,Ni)(3) phases were determined by nanoindentation. The three-level hierarchical structure of the NiAl–Cr–Co+15%Mo alloy was identified. The optimal plasma treatment regime was identified, and narrow-fraction powders (fraction 8–27 µm) characterized by 95% degree of spheroidization and the content of nanosized fraction <5% were obtained.
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spelling pubmed-82293702021-06-26 Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing Sanin, Vitaliy V. Kaplansky, Yury Yu. Aheiev, Maksym I. Levashov, Evgeny A. Petrzhik, Mikhail I. Bychkova, Marina Ya. Samokhin, Andrey V. Fadeev, Andrey A. Sanin, Vladimir N. Materials (Basel) Review The NiAl–Cr–Co–X alloys were produced by centrifugal self-propagating high-temperature synthesis (SHS) casting. The effects of dopants X = La, Mo, Zr, Ta, and Re on combustion, as well as the phase composition, structure, and properties of the resulting cast alloys, have been studied. The greatest improvement in overall properties was achieved when the alloys were co-doped with 15% Mo and 1.5% Re. By forming a ductile matrix, molybdenum enhanced strength characteristics up to the values σ(ucs) = 1604 ± 80 MPa, σ(ys) = 1520 ± 80 MPa, and ε(pd) = 0.79%, while annealing at T = 1250 ℃ and t = 180 min improved strength characteristics to the following level: σ(ucs) = 1800 ± 80 MPa, σ(ys) = 1670 ± 80 MPa, and ε(pd) = 1.58%. Rhenium modified the structure of the alloy and further improved its properties. The mechanical properties of the NiAl, ZrNi(5), Ni(0.92)Ta(0.08), (Al,Ta)Ni(3), and Al(Re,Ni)(3) phases were determined by nanoindentation. The three-level hierarchical structure of the NiAl–Cr–Co+15%Mo alloy was identified. The optimal plasma treatment regime was identified, and narrow-fraction powders (fraction 8–27 µm) characterized by 95% degree of spheroidization and the content of nanosized fraction <5% were obtained. MDPI 2021-06-08 /pmc/articles/PMC8229370/ /pubmed/34201081 http://dx.doi.org/10.3390/ma14123144 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 Review
Sanin, Vitaliy V.
Kaplansky, Yury Yu.
Aheiev, Maksym I.
Levashov, Evgeny A.
Petrzhik, Mikhail I.
Bychkova, Marina Ya.
Samokhin, Andrey V.
Fadeev, Andrey A.
Sanin, Vladimir N.
Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing
title Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing
title_full Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing
title_fullStr Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing
title_full_unstemmed Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing
title_short Structure and Properties of Heat-Resistant Alloys NiAl–Cr–Co–X (X = La, Mo, Zr, Ta, Re) and Fabrication of Powders for Additive Manufacturing
title_sort structure and properties of heat-resistant alloys nial–cr–co–x (x = la, mo, zr, ta, re) and fabrication of powders for additive manufacturing
topic Review
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8229370/
https://www.ncbi.nlm.nih.gov/pubmed/34201081
http://dx.doi.org/10.3390/ma14123144
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