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Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles

The strength of metals and alloys at elevated temperatures typically decreases due to the recovery, recrystallization, grain growth, and growth of second-phase particles. We report here a cold-worked Cu-Al(2)O(3) composite did not recrystallize up to a temperature of 0.83T(m) of Cu. The composite wa...

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Detalles Bibliográficos
Autores principales: Goswami, Ramasis, Moser, Alex, Pande, Chandra S.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10574739/
https://www.ncbi.nlm.nih.gov/pubmed/37836368
http://dx.doi.org/10.3390/nano13192727
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author Goswami, Ramasis
Moser, Alex
Pande, Chandra S.
author_facet Goswami, Ramasis
Moser, Alex
Pande, Chandra S.
author_sort Goswami, Ramasis
collection PubMed
description The strength of metals and alloys at elevated temperatures typically decreases due to the recovery, recrystallization, grain growth, and growth of second-phase particles. We report here a cold-worked Cu-Al(2)O(3) composite did not recrystallize up to a temperature of 0.83T(m) of Cu. The composite was manufactured through the internal oxidation process of dilute Cu-0.15 wt.% Al alloy and was characterized by transmission electron microscopy to study the nature of oxide precipitates. As a result of internal oxidation, a small volume fraction (1%) of Al(2)O(3) particles forms. In addition, a high density of extremely fine (2–5 nm) Cu(2)O particles has been observed to form epitaxially within the elongated Cu grains. These finely dispersed second-phase Cu(2)O particles enhance the Zener drag significantly by three orders of magnitude as compared to Al(2)O(3) particles and retain their original size and spacing at elevated temperatures. This limits the grain boundary migration and the nucleation of defect-free regions of different orientations and inhibits the recrystallization process at elevated temperatures. In addition, due to the limited grain boundary migration, a bundle of stacking faults appears instead of annealing twins. This investigation has led to a better understanding of how to prevent the recrystallization process of heavily deformed metallic material containing oxide particles.
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spelling pubmed-105747392023-10-14 Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles Goswami, Ramasis Moser, Alex Pande, Chandra S. Nanomaterials (Basel) Article The strength of metals and alloys at elevated temperatures typically decreases due to the recovery, recrystallization, grain growth, and growth of second-phase particles. We report here a cold-worked Cu-Al(2)O(3) composite did not recrystallize up to a temperature of 0.83T(m) of Cu. The composite was manufactured through the internal oxidation process of dilute Cu-0.15 wt.% Al alloy and was characterized by transmission electron microscopy to study the nature of oxide precipitates. As a result of internal oxidation, a small volume fraction (1%) of Al(2)O(3) particles forms. In addition, a high density of extremely fine (2–5 nm) Cu(2)O particles has been observed to form epitaxially within the elongated Cu grains. These finely dispersed second-phase Cu(2)O particles enhance the Zener drag significantly by three orders of magnitude as compared to Al(2)O(3) particles and retain their original size and spacing at elevated temperatures. This limits the grain boundary migration and the nucleation of defect-free regions of different orientations and inhibits the recrystallization process at elevated temperatures. In addition, due to the limited grain boundary migration, a bundle of stacking faults appears instead of annealing twins. This investigation has led to a better understanding of how to prevent the recrystallization process of heavily deformed metallic material containing oxide particles. MDPI 2023-10-08 /pmc/articles/PMC10574739/ /pubmed/37836368 http://dx.doi.org/10.3390/nano13192727 Text en © 2023 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
Goswami, Ramasis
Moser, Alex
Pande, Chandra S.
Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles
title Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles
title_full Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles
title_fullStr Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles
title_full_unstemmed Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles
title_short Mitigating the Recrystallization of a Cold-Worked Cu-Al(2)O(3) Nanocomposite via Enhanced Zener Drag by Nanocrstalline Cu-Oxide Particles
title_sort mitigating the recrystallization of a cold-worked cu-al(2)o(3) nanocomposite via enhanced zener drag by nanocrstalline cu-oxide particles
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10574739/
https://www.ncbi.nlm.nih.gov/pubmed/37836368
http://dx.doi.org/10.3390/nano13192727
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