Analysis of Al2O3 Nanostructure Using Scanning Microscopy

It has been reported that the size and shape of the pores depend on the structure of the base metal, the type of electrolyte, and the conditions of the anodizing process. The paper presents thin Al2O3 oxide layer formed under hard anodizing conditions on a plate made of EN AW-5251 aluminum alloy. Th...

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Main Authors: Marek Kubica, Władysław Skoneczny, Marek Bara
Format: Article
Language:English
Published: Hindawi-Wiley 2018-01-01
Series:Scanning
Online Access:http://dx.doi.org/10.1155/2018/8459768
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spelling doaj-1bb66575cce24de6b7d33694104ddb132020-11-25T01:11:50ZengHindawi-WileyScanning0161-04571932-87452018-01-01201810.1155/2018/84597688459768Analysis of Al2O3 Nanostructure Using Scanning MicroscopyMarek Kubica0Władysław Skoneczny1Marek Bara2Faculty of Computer Science and Materials Science, University of Silesia, Bankowa 12, Katowice, PolandFaculty of Computer Science and Materials Science, University of Silesia, Bankowa 12, Katowice, PolandFaculty of Computer Science and Materials Science, University of Silesia, Bankowa 12, Katowice, PolandIt has been reported that the size and shape of the pores depend on the structure of the base metal, the type of electrolyte, and the conditions of the anodizing process. The paper presents thin Al2O3 oxide layer formed under hard anodizing conditions on a plate made of EN AW-5251 aluminum alloy. The oxidation of the ceramic layer was carried out for 40–80 minutes in a three-component SAS electrolyte (aqueous solution of acids: sulphuric 33 ml/l, adipic 67 g/l, and oxalic 30 g/l) at a temperature of 293–313 K, and the current density was 200–400 A/m2. Presented images were taken by a scanning microscope. A computer analysis of the binary images of layers showed different shapes of pores. The structure of ceramic Al2O3 layers is one of the main factors determining mechanical properties. The resistance to wear of specimen-oxide coating layer depends on porosity, morphology, and roughness of the ceramic layer surface. A 3D oxide coating model, based on the computer analysis of images from a scanning electron microscope (Philips XL 30 ESEM/EDAX), was proposed.http://dx.doi.org/10.1155/2018/8459768
collection DOAJ
language English
format Article
sources DOAJ
author Marek Kubica
Władysław Skoneczny
Marek Bara
spellingShingle Marek Kubica
Władysław Skoneczny
Marek Bara
Analysis of Al2O3 Nanostructure Using Scanning Microscopy
Scanning
author_facet Marek Kubica
Władysław Skoneczny
Marek Bara
author_sort Marek Kubica
title Analysis of Al2O3 Nanostructure Using Scanning Microscopy
title_short Analysis of Al2O3 Nanostructure Using Scanning Microscopy
title_full Analysis of Al2O3 Nanostructure Using Scanning Microscopy
title_fullStr Analysis of Al2O3 Nanostructure Using Scanning Microscopy
title_full_unstemmed Analysis of Al2O3 Nanostructure Using Scanning Microscopy
title_sort analysis of al2o3 nanostructure using scanning microscopy
publisher Hindawi-Wiley
series Scanning
issn 0161-0457
1932-8745
publishDate 2018-01-01
description It has been reported that the size and shape of the pores depend on the structure of the base metal, the type of electrolyte, and the conditions of the anodizing process. The paper presents thin Al2O3 oxide layer formed under hard anodizing conditions on a plate made of EN AW-5251 aluminum alloy. The oxidation of the ceramic layer was carried out for 40–80 minutes in a three-component SAS electrolyte (aqueous solution of acids: sulphuric 33 ml/l, adipic 67 g/l, and oxalic 30 g/l) at a temperature of 293–313 K, and the current density was 200–400 A/m2. Presented images were taken by a scanning microscope. A computer analysis of the binary images of layers showed different shapes of pores. The structure of ceramic Al2O3 layers is one of the main factors determining mechanical properties. The resistance to wear of specimen-oxide coating layer depends on porosity, morphology, and roughness of the ceramic layer surface. A 3D oxide coating model, based on the computer analysis of images from a scanning electron microscope (Philips XL 30 ESEM/EDAX), was proposed.
url http://dx.doi.org/10.1155/2018/8459768
work_keys_str_mv AT marekkubica analysisofal2o3nanostructureusingscanningmicroscopy
AT władysławskoneczny analysisofal2o3nanostructureusingscanningmicroscopy
AT marekbara analysisofal2o3nanostructureusingscanningmicroscopy
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