Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy

Abstract It can be known from a large number of research results that improving the dispersibility of CNTs can effectively optimize the mechanical properties of the corresponding metal matrix composites. However, the crucial issue of increasing the bonding of CNTs and the matrix is still unsolved. I...

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Main Authors: Ning Li, Hong Yan, Qingjie Wu, Zeyu Cao
Format: Article
Language:English
Published: SpringerOpen 2021-02-01
Series:Chinese Journal of Mechanical Engineering
Subjects:
Online Access:https://doi.org/10.1186/s10033-021-00545-8
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spelling doaj-f640a2d34e6240768588d5255b23c4c72021-03-11T11:39:59ZengSpringerOpenChinese Journal of Mechanical Engineering1000-93452192-82582021-02-0134111010.1186/s10033-021-00545-8Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder MetallurgyNing Li0Hong Yan1Qingjie Wu2Zeyu Cao3School of Mechanical Electrical Engineering, Nanchang UniversitySchool of Mechanical Electrical Engineering, Nanchang UniversitySchool of Aviation Manufacturing Engineering, Nanchang Hangkong UniversitySchool of Mechanical Electrical Engineering, Nanchang UniversityAbstract It can be known from a large number of research results that improving the dispersibility of CNTs can effectively optimize the mechanical properties of the corresponding metal matrix composites. However, the crucial issue of increasing the bonding of CNTs and the matrix is still unsolved. In this paper, a novel method was developed to increase interfacial bonding strength by coating titanium oxide (TiO2) on the surface of CNTs. The rare earth Pr and TiO2@CNTs-reinforced AZ91matrix composites were successfully fabricated by powder metallurgy. Hot press sintering and hot extrusion of the milled powder was performed. After hot extrusion, the influence of TiO2@CNTs on the microstructure and mechanical properties of the composites were investigated. The results showed that the coating process can improve the distribution of CNTs in Mg alloy. The CNTs refined the grains of the matrix, and the CNTs were presented throughout the extrusion direction. When the TiO2@CNTs content was 1.0 wt.%, the yield strength (YS), ultimate tensile strength (UTS), and elongation of the alloy attained maximum values. The values were improved by 23.5%, 82.1%, and 40.0%, respectively, when compared with the AZ91 alloy. Good interfacial bonding was achieved, which resulted in an effective tensile loading transfer at the interface. CNTs carried the tensile stress and were observed on the tensile fracture.https://doi.org/10.1186/s10033-021-00545-8Carbon nanotubesTitanium oxideAZ91CoatingRare earth
collection DOAJ
language English
format Article
sources DOAJ
author Ning Li
Hong Yan
Qingjie Wu
Zeyu Cao
spellingShingle Ning Li
Hong Yan
Qingjie Wu
Zeyu Cao
Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy
Chinese Journal of Mechanical Engineering
Carbon nanotubes
Titanium oxide
AZ91
Coating
Rare earth
author_facet Ning Li
Hong Yan
Qingjie Wu
Zeyu Cao
author_sort Ning Li
title Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy
title_short Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy
title_full Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy
title_fullStr Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy
title_full_unstemmed Fabrication of Carbon Nanotubes and Rare Earth Pr Reinforced AZ91 Composites by Powder Metallurgy
title_sort fabrication of carbon nanotubes and rare earth pr reinforced az91 composites by powder metallurgy
publisher SpringerOpen
series Chinese Journal of Mechanical Engineering
issn 1000-9345
2192-8258
publishDate 2021-02-01
description Abstract It can be known from a large number of research results that improving the dispersibility of CNTs can effectively optimize the mechanical properties of the corresponding metal matrix composites. However, the crucial issue of increasing the bonding of CNTs and the matrix is still unsolved. In this paper, a novel method was developed to increase interfacial bonding strength by coating titanium oxide (TiO2) on the surface of CNTs. The rare earth Pr and TiO2@CNTs-reinforced AZ91matrix composites were successfully fabricated by powder metallurgy. Hot press sintering and hot extrusion of the milled powder was performed. After hot extrusion, the influence of TiO2@CNTs on the microstructure and mechanical properties of the composites were investigated. The results showed that the coating process can improve the distribution of CNTs in Mg alloy. The CNTs refined the grains of the matrix, and the CNTs were presented throughout the extrusion direction. When the TiO2@CNTs content was 1.0 wt.%, the yield strength (YS), ultimate tensile strength (UTS), and elongation of the alloy attained maximum values. The values were improved by 23.5%, 82.1%, and 40.0%, respectively, when compared with the AZ91 alloy. Good interfacial bonding was achieved, which resulted in an effective tensile loading transfer at the interface. CNTs carried the tensile stress and were observed on the tensile fracture.
topic Carbon nanotubes
Titanium oxide
AZ91
Coating
Rare earth
url https://doi.org/10.1186/s10033-021-00545-8
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AT hongyan fabricationofcarbonnanotubesandrareearthprreinforcedaz91compositesbypowdermetallurgy
AT qingjiewu fabricationofcarbonnanotubesandrareearthprreinforcedaz91compositesbypowdermetallurgy
AT zeyucao fabricationofcarbonnanotubesandrareearthprreinforcedaz91compositesbypowdermetallurgy
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