Nanoparticle dispersion, microstructure and thermal effect of multi-doped ZrO2/SiC from sulphate induced electrolyte
- Autores: Fayomi O.S.1,2, Popoola A.P.1, Oloruntoba D.T.1,3
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Afiliações:
- Department of Chemical, Metallurgical and Materials Engineering
- Department of Mechanical Engineering
- Department of Metallurgical and Materials Engineering
- Edição: Volume 52, Nº 3 (2016)
- Páginas: 512-516
- Seção: Nanoscale and Nanostructured Materials and Coatings
- URL: https://journals.rcsi.science/2070-2051/article/view/203036
- DOI: https://doi.org/10.1134/S2070205116030096
- ID: 203036
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Resumo
Effort to improve the hardness and thermal resilient properties of coating for advanced engineering applications has necessitated this study. Zn sulphate electrolyte was induced with ZrO2-SiC composite particulate at varied current density of 1.5 and 2.0 A/cm2 for 10 minutes. The incorporated composite particles of ZrO2/SiC were varied in other to examine their mechanical responses on zinc electrolyte. The coated films were characterised with scanning electron microscope with attached electron dispersion spectroscopy (SEM/EDS) and atomic force microscopy (AFM). The micro-hardness properties of the coated and thermal aged alloy were determined with high diamond micro-hardness tester. The anti-corrosion progression was examined using linear polarization technique in 3.65% NaCl. From the results, the incorporation of the composite matrix was found to impact significantly on the surface and microhardness properties. The co-deposition of composite submicron on the zinc electrolyte revealed that homogenous grain structure was obtained. To this end, a boost in the performance characteristics was attained due to effective co-deposition parameters in the electrolyte.
Sobre autores
O. Fayomi
Department of Chemical, Metallurgical and Materials Engineering; Department of Mechanical Engineering
Autor responsável pela correspondência
Email: Ojosundayfayomi3@gmail.com
República da África do Sul, Pretoria; Ota
A. Popoola
Department of Chemical, Metallurgical and Materials Engineering
Email: Ojosundayfayomi3@gmail.com
República da África do Sul, Pretoria
D. Oloruntoba
Department of Chemical, Metallurgical and Materials Engineering; Department of Metallurgical and Materials Engineering
Email: Ojosundayfayomi3@gmail.com
República da África do Sul, Pretoria; Akure
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