Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel

In order to optimize the interface performance of copper/steel bimetallic composite and avoid the degradation of the composite performance owing to the difference of thermal-physical properties, HS211/ER50-6 composite structure was fabricated by arc additive technology, and Fe–Ni and Cu–Al flux-core...

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Main Authors: Min Zhang, Mingke Du, Yunlong Zhang, Longyu Lei, Boyu Wang, Ziyue Zhu
Format: Article
Language:English
Published: Elsevier 2021-12-01
Series:Results in Materials
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2590048X21000637
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author Min Zhang
Mingke Du
Yunlong Zhang
Longyu Lei
Boyu Wang
Ziyue Zhu
author_facet Min Zhang
Mingke Du
Yunlong Zhang
Longyu Lei
Boyu Wang
Ziyue Zhu
author_sort Min Zhang
collection DOAJ
description In order to optimize the interface performance of copper/steel bimetallic composite and avoid the degradation of the composite performance owing to the difference of thermal-physical properties, HS211/ER50-6 composite structure was fabricated by arc additive technology, and Fe–Ni and Cu–Al flux-cored wires were designed as transition materials to realize the gradient connection of the interface area. Microstructure observation and mechanical properties testing were used to characterize the properties of the samples. The results showed that gradient connection can be achieved by adding the transition layer of Fe–Ni and Cu–Al flux-cored wires. Fe-rich phases with different morphologies were found in the interface region, which strengthened the matrix as the second phase. The corrosion resistance of the Fe–Ni transition layer region was better than Cu–Al, and the impact absorption energy reached 925 kJ/m2. The tensile strength of Fe–Ni samples reached 326.5 MPa, and the fracture location of the two groups of samples were both the copper side deposition.
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spelling doaj.art-0c38282ea5d5407fa18a3e32e2b0b5902022-12-21T21:35:14ZengElsevierResults in Materials2590-048X2021-12-0112100230Study on preparation, microstructure and properties of gradient composite interlayer with copper/steelMin Zhang0Mingke Du1Yunlong Zhang2Longyu Lei3Boyu Wang4Ziyue Zhu5Corresponding author.; School of Materials and Engineering, Xi'an University of Technology, Xi'an, 710048, ChinaSchool of Materials and Engineering, Xi'an University of Technology, Xi'an, 710048, ChinaSchool of Materials and Engineering, Xi'an University of Technology, Xi'an, 710048, ChinaSchool of Materials and Engineering, Xi'an University of Technology, Xi'an, 710048, ChinaSchool of Materials and Engineering, Xi'an University of Technology, Xi'an, 710048, ChinaSchool of Materials and Engineering, Xi'an University of Technology, Xi'an, 710048, ChinaIn order to optimize the interface performance of copper/steel bimetallic composite and avoid the degradation of the composite performance owing to the difference of thermal-physical properties, HS211/ER50-6 composite structure was fabricated by arc additive technology, and Fe–Ni and Cu–Al flux-cored wires were designed as transition materials to realize the gradient connection of the interface area. Microstructure observation and mechanical properties testing were used to characterize the properties of the samples. The results showed that gradient connection can be achieved by adding the transition layer of Fe–Ni and Cu–Al flux-cored wires. Fe-rich phases with different morphologies were found in the interface region, which strengthened the matrix as the second phase. The corrosion resistance of the Fe–Ni transition layer region was better than Cu–Al, and the impact absorption energy reached 925 kJ/m2. The tensile strength of Fe–Ni samples reached 326.5 MPa, and the fracture location of the two groups of samples were both the copper side deposition.http://www.sciencedirect.com/science/article/pii/S2590048X21000637Additive manufacturingCopper/steel compositeMicrostructureMechanical properties
spellingShingle Min Zhang
Mingke Du
Yunlong Zhang
Longyu Lei
Boyu Wang
Ziyue Zhu
Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel
Results in Materials
Additive manufacturing
Copper/steel composite
Microstructure
Mechanical properties
title Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel
title_full Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel
title_fullStr Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel
title_full_unstemmed Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel
title_short Study on preparation, microstructure and properties of gradient composite interlayer with copper/steel
title_sort study on preparation microstructure and properties of gradient composite interlayer with copper steel
topic Additive manufacturing
Copper/steel composite
Microstructure
Mechanical properties
url http://www.sciencedirect.com/science/article/pii/S2590048X21000637
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