Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment

Zr3O-ZrC/graphene composite layer was directly in-situ grown on the surface of Zr foil by plasma heat treatment method. The microstructure and component of the as-prepared sample were systematically characterized by X-ray diffraction (XRD), Raman spectrum and scanning electron microscopy (SEM). The...

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Main Authors: CHENG Yifei, LUO Fei, LIU Dabo, ZHOU Haitao, TIAN Ye, LUO Bingwei
Format: Article
Language:zho
Published: Journal of Aeronautical Materials 2020-08-01
Series:Journal of Aeronautical Materials
Subjects:
zrc
Online Access:http://jam.biam.ac.cn/article/doi/10.11868/j.issn.1005-5053.2019.000188
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spelling doaj-40b839c653a14cb19cfe329cadd4d41d2020-12-18T09:30:51ZzhoJournal of Aeronautical MaterialsJournal of Aeronautical Materials1005-50531005-50532020-08-01404192410.11868/j.issn.1005-5053.2019.0001882019-0188Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatmentCHENG Yifei0LUO Fei1LIU Dabo2ZHOU Haitao3TIAN Ye4LUO Bingwei5Department of Steel and Rare-noble Metals,AECC Beijing Institute of Aeronautical Materials, Beijing 100095, ChinaDepartment of Steel and Rare-noble Metals,AECC Beijing Institute of Aeronautical Materials, Beijing 100095, ChinaDepartment of Steel and Rare-noble Metals,AECC Beijing Institute of Aeronautical Materials, Beijing 100095, ChinaDepartment of Steel and Rare-noble Metals,AECC Beijing Institute of Aeronautical Materials, Beijing 100095, ChinaDepartment of Steel and Rare-noble Metals,AECC Beijing Institute of Aeronautical Materials, Beijing 100095, ChinaDepartment of Steel and Rare-noble Metals,AECC Beijing Institute of Aeronautical Materials, Beijing 100095, ChinaZr3O-ZrC/graphene composite layer was directly in-situ grown on the surface of Zr foil by plasma heat treatment method. The microstructure and component of the as-prepared sample were systematically characterized by X-ray diffraction (XRD), Raman spectrum and scanning electron microscopy (SEM). The surface hardness was both characterized by micro hardness tester and nanoindentor. The results show that the composite layer was uniformly distributed on the surface of Zr foil. The surface hardness values of pure Zr foil and Zr/Zr3O-ZrC/graphene composite were 195 HV and 639 HV, respectively. The surface hardness of the TiC/graphene layer can be signi?cantly increased 3.2 times as that of the pure Zr foil surface. Nanoindentor results showed the signi?cantly improved surface hardness could be attributed to the Zr3O-ZrC layers. This study provides a particular heat treatment process for significant reinforcement of Zr and its alloys, and showing its great potential application for the future .http://jam.biam.ac.cn/article/doi/10.11868/j.issn.1005-5053.2019.000188metal zrsurface reinforcementplasmazrcgraphene
collection DOAJ
language zho
format Article
sources DOAJ
author CHENG Yifei
LUO Fei
LIU Dabo
ZHOU Haitao
TIAN Ye
LUO Bingwei
spellingShingle CHENG Yifei
LUO Fei
LIU Dabo
ZHOU Haitao
TIAN Ye
LUO Bingwei
Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment
Journal of Aeronautical Materials
metal zr
surface reinforcement
plasma
zrc
graphene
author_facet CHENG Yifei
LUO Fei
LIU Dabo
ZHOU Haitao
TIAN Ye
LUO Bingwei
author_sort CHENG Yifei
title Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment
title_short Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment
title_full Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment
title_fullStr Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment
title_full_unstemmed Zr3O-ZrC/graphene strengthened layer directly prepared on the surface of metal Zr by plasma heat treatment
title_sort zr3o-zrc/graphene strengthened layer directly prepared on the surface of metal zr by plasma heat treatment
publisher Journal of Aeronautical Materials
series Journal of Aeronautical Materials
issn 1005-5053
1005-5053
publishDate 2020-08-01
description Zr3O-ZrC/graphene composite layer was directly in-situ grown on the surface of Zr foil by plasma heat treatment method. The microstructure and component of the as-prepared sample were systematically characterized by X-ray diffraction (XRD), Raman spectrum and scanning electron microscopy (SEM). The surface hardness was both characterized by micro hardness tester and nanoindentor. The results show that the composite layer was uniformly distributed on the surface of Zr foil. The surface hardness values of pure Zr foil and Zr/Zr3O-ZrC/graphene composite were 195 HV and 639 HV, respectively. The surface hardness of the TiC/graphene layer can be signi?cantly increased 3.2 times as that of the pure Zr foil surface. Nanoindentor results showed the signi?cantly improved surface hardness could be attributed to the Zr3O-ZrC layers. This study provides a particular heat treatment process for significant reinforcement of Zr and its alloys, and showing its great potential application for the future .
topic metal zr
surface reinforcement
plasma
zrc
graphene
url http://jam.biam.ac.cn/article/doi/10.11868/j.issn.1005-5053.2019.000188
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