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A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance

Due to the contradiction between mechanical properties and electrical conductivity, it is not easy to fabricate materials with both high strength and good wear resistance with favourable electrical conductivity for the application of electrical materials. In addition, strength and wear resistance do...

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Detalles Bibliográficos
Autores principales: Zou, Cunlei, Chen, Zongning, Guo, Enyu, Kang, Huijun, Fan, Guohua, Wang, Wei, Li, Rengeng, Zhang, Siruo, Wang, Tongmin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2018
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085502/
https://www.ncbi.nlm.nih.gov/pubmed/35548765
http://dx.doi.org/10.1039/c8ra06020g
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author Zou, Cunlei
Chen, Zongning
Guo, Enyu
Kang, Huijun
Fan, Guohua
Wang, Wei
Li, Rengeng
Zhang, Siruo
Wang, Tongmin
author_facet Zou, Cunlei
Chen, Zongning
Guo, Enyu
Kang, Huijun
Fan, Guohua
Wang, Wei
Li, Rengeng
Zhang, Siruo
Wang, Tongmin
author_sort Zou, Cunlei
collection PubMed
description Due to the contradiction between mechanical properties and electrical conductivity, it is not easy to fabricate materials with both high strength and good wear resistance with favourable electrical conductivity for the application of electrical materials. In addition, strength and wear resistance do not always present a uniform growth trend at the same time. Herein, a novel copper matrix composite reinforced by in situ synthesized ZrB(2) microparticles and nano Cu(5)Zr precipitates is successfully prepared by a casting method and sequential heat treatments. The Cu/dual-scale particulate composite possesses a desired trade-off of strength, electrical conductivity and wear resistance. ZrB(2) microparticles form from Zr and B elements in copper melts, and nanoscale Cu(5)Zr precipitates form in the matrix after solid solution and aging treatments. The ZrB(2) microparticles, nano Cu(5)Zr precipitates, and well-bonded interfaces contribute to a high tensile strength of 591 MPa and superior wear resistance, with a relative electrical conductivity of 83.7% International Annealed Copper Standard.
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spelling pubmed-90855022022-05-10 A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance Zou, Cunlei Chen, Zongning Guo, Enyu Kang, Huijun Fan, Guohua Wang, Wei Li, Rengeng Zhang, Siruo Wang, Tongmin RSC Adv Chemistry Due to the contradiction between mechanical properties and electrical conductivity, it is not easy to fabricate materials with both high strength and good wear resistance with favourable electrical conductivity for the application of electrical materials. In addition, strength and wear resistance do not always present a uniform growth trend at the same time. Herein, a novel copper matrix composite reinforced by in situ synthesized ZrB(2) microparticles and nano Cu(5)Zr precipitates is successfully prepared by a casting method and sequential heat treatments. The Cu/dual-scale particulate composite possesses a desired trade-off of strength, electrical conductivity and wear resistance. ZrB(2) microparticles form from Zr and B elements in copper melts, and nanoscale Cu(5)Zr precipitates form in the matrix after solid solution and aging treatments. The ZrB(2) microparticles, nano Cu(5)Zr precipitates, and well-bonded interfaces contribute to a high tensile strength of 591 MPa and superior wear resistance, with a relative electrical conductivity of 83.7% International Annealed Copper Standard. The Royal Society of Chemistry 2018-08-31 /pmc/articles/PMC9085502/ /pubmed/35548765 http://dx.doi.org/10.1039/c8ra06020g Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Zou, Cunlei
Chen, Zongning
Guo, Enyu
Kang, Huijun
Fan, Guohua
Wang, Wei
Li, Rengeng
Zhang, Siruo
Wang, Tongmin
A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
title A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
title_full A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
title_fullStr A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
title_full_unstemmed A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
title_short A nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
title_sort nano-micro dual-scale particulate-reinforced copper matrix composite with high strength, high electrical conductivity and superior wear resistance
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9085502/
https://www.ncbi.nlm.nih.gov/pubmed/35548765
http://dx.doi.org/10.1039/c8ra06020g
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