Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction

In the current study, the reduced graphene oxide (rGO) was introduced into W-Cu composites for in-situ formation of WC particles using one-step thermal reduction and followed by spark plasma sintering reaction at 1050 °C for 10 min under a pressure of 80 MPa in a vacuum atmosphere. The microstructur...

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Main Authors: L.L. Dong, W.T. Huo, M. Ahangarkani, B. Zhang, Y.Q. Zhao, Y.S. Zhang
Format: Article
Language:English
Published: Elsevier 2018-12-01
Series:Materials & Design
Online Access:http://www.sciencedirect.com/science/article/pii/S0264127518308104
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spelling doaj-5e03a70e337e42718266b1550858a2202020-11-25T01:27:36ZengElsevierMaterials & Design0264-12752018-12-0116011961207Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reactionL.L. Dong0W.T. Huo1M. Ahangarkani2B. Zhang3Y.Q. Zhao4Y.S. Zhang5Advanced Materials Research Central, Northwest Institute for Nonferrous Metal Research, Xi'an 710016, ChinaAdvanced Materials Research Central, Northwest Institute for Nonferrous Metal Research, Xi'an 710016, ChinaDepartment of Materials, Malek Ashtar University of Technology, Tehran, IranSchool of Materials Science and Engineering, Xi'an University of Technology, Shaanxi, Xi'an 710048, PR China; Advanced Materials Research Central, Northwest Institute for Nonferrous Metal Research, Xi'an 710016, ChinaAdvanced Materials Research Central, Northwest Institute for Nonferrous Metal Research, Xi'an 710016, ChinaAdvanced Materials Research Central, Northwest Institute for Nonferrous Metal Research, Xi'an 710016, China; Xi’an Rare Metal Materials Institute Co., Ltd, Xi’an, PR China; Corresponding author.In the current study, the reduced graphene oxide (rGO) was introduced into W-Cu composites for in-situ formation of WC particles using one-step thermal reduction and followed by spark plasma sintering reaction at 1050 °C for 10 min under a pressure of 80 MPa in a vacuum atmosphere. The microstructural characteristics, interface structure and mechanical properties of composite were investigated. The results exhibited that the GO flakes were effectively reduced to graphene in the rGO/W-Cu composites powders after reduction in hydrogen at 350 °C for 120 min. The relative density of rGO/W-Cu composites is higher than that of rGO-free composite that is attributed to the formation of some WC phases which can enhance the wettability between W and Cu in the sintering process. The formation of WC interlayer with thickness of about 8 nm at the W/Cu interface suggests that W and C atoms diffuse mutually and accumulate to form the carbides at the W-Cu interfaces in sintered rGO/W-Cu. The formation of WC at the interface can also enhance the interfacial bonding strength of W and Cu matrix. No evidence of W-Cu interfacial separation can be found in fracture surface, demonstrating positive effect of rGO on the interfacial strength of the composite. Keywords: W-Cu composites, Spark plasma sintering, Microstructure, Mechanical properties, Interfacehttp://www.sciencedirect.com/science/article/pii/S0264127518308104
collection DOAJ
language English
format Article
sources DOAJ
author L.L. Dong
W.T. Huo
M. Ahangarkani
B. Zhang
Y.Q. Zhao
Y.S. Zhang
spellingShingle L.L. Dong
W.T. Huo
M. Ahangarkani
B. Zhang
Y.Q. Zhao
Y.S. Zhang
Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction
Materials & Design
author_facet L.L. Dong
W.T. Huo
M. Ahangarkani
B. Zhang
Y.Q. Zhao
Y.S. Zhang
author_sort L.L. Dong
title Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction
title_short Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction
title_full Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction
title_fullStr Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction
title_full_unstemmed Microstructural evaluation and mechanical properties of in-situ WC/W-Cu composites fabricated by rGO/W-Cu spark plasma sintering reaction
title_sort microstructural evaluation and mechanical properties of in-situ wc/w-cu composites fabricated by rgo/w-cu spark plasma sintering reaction
publisher Elsevier
series Materials & Design
issn 0264-1275
publishDate 2018-12-01
description In the current study, the reduced graphene oxide (rGO) was introduced into W-Cu composites for in-situ formation of WC particles using one-step thermal reduction and followed by spark plasma sintering reaction at 1050 °C for 10 min under a pressure of 80 MPa in a vacuum atmosphere. The microstructural characteristics, interface structure and mechanical properties of composite were investigated. The results exhibited that the GO flakes were effectively reduced to graphene in the rGO/W-Cu composites powders after reduction in hydrogen at 350 °C for 120 min. The relative density of rGO/W-Cu composites is higher than that of rGO-free composite that is attributed to the formation of some WC phases which can enhance the wettability between W and Cu in the sintering process. The formation of WC interlayer with thickness of about 8 nm at the W/Cu interface suggests that W and C atoms diffuse mutually and accumulate to form the carbides at the W-Cu interfaces in sintered rGO/W-Cu. The formation of WC at the interface can also enhance the interfacial bonding strength of W and Cu matrix. No evidence of W-Cu interfacial separation can be found in fracture surface, demonstrating positive effect of rGO on the interfacial strength of the composite. Keywords: W-Cu composites, Spark plasma sintering, Microstructure, Mechanical properties, Interface
url http://www.sciencedirect.com/science/article/pii/S0264127518308104
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