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Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys

The effect of mechanical alloying on the development of Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys (HEAs) utilizing the spark plasma sintering (SPS) method is the main goal of this study. A bulk sample was fabricated using SPS after the alloys were mixed for 12 h. Thermodynamic simulation, X-ray diffr...

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Autores principales: Olorundaisi, Emmanuel, Babalola, Bukola J., Teffo, Moipone L., Anamu, Ufoma S., Olubambi, Peter A., Fayomi, Juwon, Ogunmefun, Anthony O.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Springer US 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10509088/
https://www.ncbi.nlm.nih.gov/pubmed/37725218
http://dx.doi.org/10.1186/s11671-023-03889-3
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author Olorundaisi, Emmanuel
Babalola, Bukola J.
Teffo, Moipone L.
Anamu, Ufoma S.
Olubambi, Peter A.
Fayomi, Juwon
Ogunmefun, Anthony O.
author_facet Olorundaisi, Emmanuel
Babalola, Bukola J.
Teffo, Moipone L.
Anamu, Ufoma S.
Olubambi, Peter A.
Fayomi, Juwon
Ogunmefun, Anthony O.
author_sort Olorundaisi, Emmanuel
collection PubMed
description The effect of mechanical alloying on the development of Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys (HEAs) utilizing the spark plasma sintering (SPS) method is the main goal of this study. A bulk sample was fabricated using SPS after the alloys were mixed for 12 h. Thermodynamic simulation, X-ray diffraction, scanning electron microscopy, nanoindentation, and microhardness were used to investigate the microstructure and mechanical properties of the as-mixed powders. The master alloy was made of NiAl and was subsequently alloyed with Ti, Mn, Co, Fe, and Cr at different compositions to develop HEAs at a sintering temperature of 850 °C, a heating rate of 100 °C/min, a pressure of 50 MPa, and a dwelling time of 5 min. A uniform dispersion of the alloying material can be seen in the microstructure of the sintered HEAs with different weight elements. The grain size analysis shows that the Ni(25)Al(25)Ti(8)Mn(8)Co(15)Fe(14)Cr(5) alloy exhibited a refined structure with a grain size of 2.36 ± 0.27 µm compared to a coarser grain size of 8.26 ± 0.43 μm attained by the NiAl master alloy. Similarly, the HEAs with the highest alloying content had a greater microstrain value of 0.0449 ± 0.0036, whereas the unalloyed NiAl had 0.00187 ± 0.0005. Maximum microhardness of 139 ± 0.8 HV, nanohardness of 18.8 ± 0.36 GPa, elastic modulus of 207.5 ± 1.65 GPa, elastic recovery (W(e)/W(t)) of 0.556 ± 0.035, elastic strain to failure (H/E(r)) of 0.09.06 ± 0.0027, yield pressure (H(3)/[Formula: see text] ) of 0.154 ± 0.0055 GPa, and the least plasticity index (W(p)/W(t)) of 0.444 ± 0.039 were attained by Ni(25)Al(25)Ti(8)Mn(8)Co(15)Fe(14)Cr(5). A steady movement to the left may be seen in the load–displacement curve. Increased resistance to indentation by the developed HEAs was made possible by the increase in alloying metals, which ultimately led to higher nanohardness and elastic modulus.
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spelling pubmed-105090882023-09-21 Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys Olorundaisi, Emmanuel Babalola, Bukola J. Teffo, Moipone L. Anamu, Ufoma S. Olubambi, Peter A. Fayomi, Juwon Ogunmefun, Anthony O. Discov Nano Research The effect of mechanical alloying on the development of Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys (HEAs) utilizing the spark plasma sintering (SPS) method is the main goal of this study. A bulk sample was fabricated using SPS after the alloys were mixed for 12 h. Thermodynamic simulation, X-ray diffraction, scanning electron microscopy, nanoindentation, and microhardness were used to investigate the microstructure and mechanical properties of the as-mixed powders. The master alloy was made of NiAl and was subsequently alloyed with Ti, Mn, Co, Fe, and Cr at different compositions to develop HEAs at a sintering temperature of 850 °C, a heating rate of 100 °C/min, a pressure of 50 MPa, and a dwelling time of 5 min. A uniform dispersion of the alloying material can be seen in the microstructure of the sintered HEAs with different weight elements. The grain size analysis shows that the Ni(25)Al(25)Ti(8)Mn(8)Co(15)Fe(14)Cr(5) alloy exhibited a refined structure with a grain size of 2.36 ± 0.27 µm compared to a coarser grain size of 8.26 ± 0.43 μm attained by the NiAl master alloy. Similarly, the HEAs with the highest alloying content had a greater microstrain value of 0.0449 ± 0.0036, whereas the unalloyed NiAl had 0.00187 ± 0.0005. Maximum microhardness of 139 ± 0.8 HV, nanohardness of 18.8 ± 0.36 GPa, elastic modulus of 207.5 ± 1.65 GPa, elastic recovery (W(e)/W(t)) of 0.556 ± 0.035, elastic strain to failure (H/E(r)) of 0.09.06 ± 0.0027, yield pressure (H(3)/[Formula: see text] ) of 0.154 ± 0.0055 GPa, and the least plasticity index (W(p)/W(t)) of 0.444 ± 0.039 were attained by Ni(25)Al(25)Ti(8)Mn(8)Co(15)Fe(14)Cr(5). A steady movement to the left may be seen in the load–displacement curve. Increased resistance to indentation by the developed HEAs was made possible by the increase in alloying metals, which ultimately led to higher nanohardness and elastic modulus. Springer US 2023-09-19 /pmc/articles/PMC10509088/ /pubmed/37725218 http://dx.doi.org/10.1186/s11671-023-03889-3 Text en © The Author(s) 2023 https://creativecommons.org/licenses/by/4.0/Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons licence, and indicate if changes were made. The images or other third party material in this article are included in the article's Creative Commons licence, unless indicated otherwise in a credit line to the material. If material is not included in the article's Creative Commons licence and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this licence, visit http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) .
spellingShingle Research
Olorundaisi, Emmanuel
Babalola, Bukola J.
Teffo, Moipone L.
Anamu, Ufoma S.
Olubambi, Peter A.
Fayomi, Juwon
Ogunmefun, Anthony O.
Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys
title Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys
title_full Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys
title_fullStr Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys
title_full_unstemmed Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys
title_short Phase prediction, microstructure, and mechanical properties of spark plasma sintered Ni–Al–Ti–Mn–Co–Fe–Cr high entropy alloys
title_sort phase prediction, microstructure, and mechanical properties of spark plasma sintered ni–al–ti–mn–co–fe–cr high entropy alloys
topic Research
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10509088/
https://www.ncbi.nlm.nih.gov/pubmed/37725218
http://dx.doi.org/10.1186/s11671-023-03889-3
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