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Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy

The precipitation sequence of a Cu-Ni-Be alloy is: α-Cu supersaturated solid solution → Guinier-Preston (G.P.) zones → metastable γ″ → γ′ → stable γ (NiBe) phase. The micro-hardness and electrical conductivity during the aging process were measured. The precipitation characteristics and the distribu...

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Autores principales: Zhu, Zhiyuan, Cai, Yuanfei, Sui, Yi, Song, Kexing, Zhou, Yanjun, Zou, Jiasheng
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6120036/
https://www.ncbi.nlm.nih.gov/pubmed/30096936
http://dx.doi.org/10.3390/ma11081394
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author Zhu, Zhiyuan
Cai, Yuanfei
Sui, Yi
Song, Kexing
Zhou, Yanjun
Zou, Jiasheng
author_facet Zhu, Zhiyuan
Cai, Yuanfei
Sui, Yi
Song, Kexing
Zhou, Yanjun
Zou, Jiasheng
author_sort Zhu, Zhiyuan
collection PubMed
description The precipitation sequence of a Cu-Ni-Be alloy is: α-Cu supersaturated solid solution → Guinier-Preston (G.P.) zones → metastable γ″ → γ′ → stable γ (NiBe) phase. The micro-hardness and electrical conductivity during the aging process were measured. The precipitation characteristics and the distribution of the γ″ phase, under peak aging conditions, were analyzed by X-ray diffraction (XRD), transmission electron microscopy (TEM), selected area diffraction pattern (SADP), and high-resolution transmission electron microscopy (HRTEM). The results show that the orientation relationship of the γ″ phase/α-Cu matrix is: (001)(p)//(001)(α); [100](p)//[110](α) (p: Precipitates, α: α-Cu supersaturated solid solution), which is in accordance with the Bain relationship in a FCC/BCC (face centered cubic/body centered cubic) structure, with the unique habit plane being {001}(α). While the zone axis is parallel to [001](α), three forms of γ″ phases are distributed on the projection surface at the same time. The (001) reciprocal-lattice positions of γ″ phase in SADP are diffusely scattered, which is consistent with the variation of the d((001)) value of the γ″ phase. The intra-range variation is related to the distortion of the (001) plane of the γ″ phase, due to interfacial dislocations and distortion strain fields. The lattice of the γ″ phase in the HRTEM images was measured as a = b = 0.259 ± 0.002 nm and c = 0.27–0.32 nm. With the increase of thermal exposure time, the stable γ phase has a NiBe phase structure (Standard Card Number: PDF#03-1098, a = b = c = 0.261 nm), and the long diffuse scattering spots will transform into single bright spots. The edge dislocation, generated by interfacial mismatch, promotes the formation of an optimal structure of the precipitated phase, which is the priority of growth in the direction of [110](p).
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spelling pubmed-61200362018-09-05 Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy Zhu, Zhiyuan Cai, Yuanfei Sui, Yi Song, Kexing Zhou, Yanjun Zou, Jiasheng Materials (Basel) Article The precipitation sequence of a Cu-Ni-Be alloy is: α-Cu supersaturated solid solution → Guinier-Preston (G.P.) zones → metastable γ″ → γ′ → stable γ (NiBe) phase. The micro-hardness and electrical conductivity during the aging process were measured. The precipitation characteristics and the distribution of the γ″ phase, under peak aging conditions, were analyzed by X-ray diffraction (XRD), transmission electron microscopy (TEM), selected area diffraction pattern (SADP), and high-resolution transmission electron microscopy (HRTEM). The results show that the orientation relationship of the γ″ phase/α-Cu matrix is: (001)(p)//(001)(α); [100](p)//[110](α) (p: Precipitates, α: α-Cu supersaturated solid solution), which is in accordance with the Bain relationship in a FCC/BCC (face centered cubic/body centered cubic) structure, with the unique habit plane being {001}(α). While the zone axis is parallel to [001](α), three forms of γ″ phases are distributed on the projection surface at the same time. The (001) reciprocal-lattice positions of γ″ phase in SADP are diffusely scattered, which is consistent with the variation of the d((001)) value of the γ″ phase. The intra-range variation is related to the distortion of the (001) plane of the γ″ phase, due to interfacial dislocations and distortion strain fields. The lattice of the γ″ phase in the HRTEM images was measured as a = b = 0.259 ± 0.002 nm and c = 0.27–0.32 nm. With the increase of thermal exposure time, the stable γ phase has a NiBe phase structure (Standard Card Number: PDF#03-1098, a = b = c = 0.261 nm), and the long diffuse scattering spots will transform into single bright spots. The edge dislocation, generated by interfacial mismatch, promotes the formation of an optimal structure of the precipitated phase, which is the priority of growth in the direction of [110](p). MDPI 2018-08-09 /pmc/articles/PMC6120036/ /pubmed/30096936 http://dx.doi.org/10.3390/ma11081394 Text en © 2018 by the authors. 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 (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Zhu, Zhiyuan
Cai, Yuanfei
Sui, Yi
Song, Kexing
Zhou, Yanjun
Zou, Jiasheng
Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy
title Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy
title_full Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy
title_fullStr Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy
title_full_unstemmed Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy
title_short Precipitation Characteristics of the Metastable γ″ Phase in a Cu-Ni-Be Alloy
title_sort precipitation characteristics of the metastable γ″ phase in a cu-ni-be alloy
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6120036/
https://www.ncbi.nlm.nih.gov/pubmed/30096936
http://dx.doi.org/10.3390/ma11081394
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