The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique

The plasma electrolytic method of oxidation (PEO) is a technique that is increasingly being used in industry to produce protective coatings and other surface treatments. The emphasis is then placed on the dielectric breakdown that repeatedly occurs across the surface of the workpiece. There is signi...

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Autores principales: Jadhav Priya, Bongale Arunkumar, Kumar Satish
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Lenguaje:EN
Publicado: De Gruyter 2021
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Acceso en línea:https://doaj.org/article/b3685515fd594b528e8a09a639ccb38b
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spelling oai:doaj.org-article:b3685515fd594b528e8a09a639ccb38b2021-12-05T14:10:52ZThe effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique0334-89382191-024310.1515/jmbm-2021-0013https://doaj.org/article/b3685515fd594b528e8a09a639ccb38b2021-09-01T00:00:00Zhttps://doi.org/10.1515/jmbm-2021-0013https://doaj.org/toc/0334-8938https://doaj.org/toc/2191-0243The plasma electrolytic method of oxidation (PEO) is a technique that is increasingly being used in industry to produce protective coatings and other surface treatments. The emphasis is then placed on the dielectric breakdown that repeatedly occurs across the surface of the workpiece. There is significant potential for more effective process control. Key study areas include the interrelation of electrical conditions, electrolyte composition, coating microstructure, and growth rates. With specific goals in terms of coating performance and energy efficiency, an attempt is made to identify key points that are likely to simplify this. The research aims to identify the optimized range of input parameters when the oxide layer is formed using the DC supply in the silicate-based electrolyte on Al 6061 substrate. For developing an oxide layer on Al 6061, a silicate-based electrolyte containing Na2SiO3 (10g/L), KOH (2g/L), and KMnO4 3 (g/lit) is applied. At the optimal parameter of DC supply with 190 V and 1.5 A, the maximal adoption of Mn particles was observed to be 34 percent.Jadhav PriyaBongale ArunkumarKumar SatishDe Gruyterarticleplasma electrolytic method of oxidational6061micro arc oxidationMechanical engineering and machineryTJ1-1570ENJournal of the Mechanical Behavior of Materials, Vol 30, Iss 1, Pp 118-129 (2021)
institution DOAJ
collection DOAJ
language EN
topic plasma electrolytic method of oxidation
al6061
micro arc oxidation
Mechanical engineering and machinery
TJ1-1570
spellingShingle plasma electrolytic method of oxidation
al6061
micro arc oxidation
Mechanical engineering and machinery
TJ1-1570
Jadhav Priya
Bongale Arunkumar
Kumar Satish
The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
description The plasma electrolytic method of oxidation (PEO) is a technique that is increasingly being used in industry to produce protective coatings and other surface treatments. The emphasis is then placed on the dielectric breakdown that repeatedly occurs across the surface of the workpiece. There is significant potential for more effective process control. Key study areas include the interrelation of electrical conditions, electrolyte composition, coating microstructure, and growth rates. With specific goals in terms of coating performance and energy efficiency, an attempt is made to identify key points that are likely to simplify this. The research aims to identify the optimized range of input parameters when the oxide layer is formed using the DC supply in the silicate-based electrolyte on Al 6061 substrate. For developing an oxide layer on Al 6061, a silicate-based electrolyte containing Na2SiO3 (10g/L), KOH (2g/L), and KMnO4 3 (g/lit) is applied. At the optimal parameter of DC supply with 190 V and 1.5 A, the maximal adoption of Mn particles was observed to be 34 percent.
format article
author Jadhav Priya
Bongale Arunkumar
Kumar Satish
author_facet Jadhav Priya
Bongale Arunkumar
Kumar Satish
author_sort Jadhav Priya
title The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
title_short The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
title_full The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
title_fullStr The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
title_full_unstemmed The effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
title_sort effects of processing parameters on the formation of oxide layers in aluminium alloys using plasma electrolytic oxidation technique
publisher De Gruyter
publishDate 2021
url https://doaj.org/article/b3685515fd594b528e8a09a639ccb38b
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