High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel

Surface enhancement of engineering materials is an essential step in improving the service life, mechanical properties and corrosion resistance of any metal. Behavioural effects of SiO2 particulate on the electrodeposition of Zn-Nb2O5 coatings of mild steel were investigated. Bath composition was de...

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Main Authors: A. A. Ayoola, O. S. I. Fayomi, A. P. I. Popoola
Format: Article
Language:English
Published: Taylor & Francis Group 2018-01-01
Series:Cogent Engineering
Subjects:
Online Access:http://dx.doi.org/10.1080/23311916.2018.1540026
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spelling doaj-f9da1a88741148a595b43118b7f9a65c2021-03-02T14:46:48ZengTaylor & Francis GroupCogent Engineering2331-19162018-01-015110.1080/23311916.2018.15400261540026High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steelA. A. Ayoola0O. S. I. Fayomi1A. P. I. Popoola2Covenant UniversityCovenant UniversityTshwane University of TechnologySurface enhancement of engineering materials is an essential step in improving the service life, mechanical properties and corrosion resistance of any metal. Behavioural effects of SiO2 particulate on the electrodeposition of Zn-Nb2O5 coatings of mild steel were investigated. Bath composition was developed through zinc electrolyte solution to produce ZnNb2O5–SiO2 alloy. The adhesion profile, topography and microstructures of the coated samples were analysed using atomic force micrographs (AFM), and JEOL JSM 6390 scanning electron microscope (SEM) coupled with energy dispersive x-ray analyser (EDS micrographs). Emco-test microhardness tester and MTR 300 dry abrasion rig machines were used for the determination of hardness and wear resistance of the coated samples. Results of the research showed that finer microstructure of the Zn-Nb2O5–SiO2 composites obtained was due majorly to the addition of SiO2 particulate. Also, hardness behaviour and wear resistance of Zn-10Nb2O5 coating increased due to incremental addition of SiO2 particulate (up to 10 wt%).http://dx.doi.org/10.1080/23311916.2018.1540026coatingcorrosionelectrodepositionhardnesszn-nb2o5
collection DOAJ
language English
format Article
sources DOAJ
author A. A. Ayoola
O. S. I. Fayomi
A. P. I. Popoola
spellingShingle A. A. Ayoola
O. S. I. Fayomi
A. P. I. Popoola
High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel
Cogent Engineering
coating
corrosion
electrodeposition
hardness
zn-nb2o5
author_facet A. A. Ayoola
O. S. I. Fayomi
A. P. I. Popoola
author_sort A. A. Ayoola
title High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel
title_short High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel
title_full High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel
title_fullStr High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel
title_full_unstemmed High temperature thermal treatment of Zn-10Nb2O5-10SiO2 crystal coatings on mild steel
title_sort high temperature thermal treatment of zn-10nb2o5-10sio2 crystal coatings on mild steel
publisher Taylor & Francis Group
series Cogent Engineering
issn 2331-1916
publishDate 2018-01-01
description Surface enhancement of engineering materials is an essential step in improving the service life, mechanical properties and corrosion resistance of any metal. Behavioural effects of SiO2 particulate on the electrodeposition of Zn-Nb2O5 coatings of mild steel were investigated. Bath composition was developed through zinc electrolyte solution to produce ZnNb2O5–SiO2 alloy. The adhesion profile, topography and microstructures of the coated samples were analysed using atomic force micrographs (AFM), and JEOL JSM 6390 scanning electron microscope (SEM) coupled with energy dispersive x-ray analyser (EDS micrographs). Emco-test microhardness tester and MTR 300 dry abrasion rig machines were used for the determination of hardness and wear resistance of the coated samples. Results of the research showed that finer microstructure of the Zn-Nb2O5–SiO2 composites obtained was due majorly to the addition of SiO2 particulate. Also, hardness behaviour and wear resistance of Zn-10Nb2O5 coating increased due to incremental addition of SiO2 particulate (up to 10 wt%).
topic coating
corrosion
electrodeposition
hardness
zn-nb2o5
url http://dx.doi.org/10.1080/23311916.2018.1540026
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AT apipopoola hightemperaturethermaltreatmentofzn10nb2o510sio2crystalcoatingsonmildsteel
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