Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process

In order to investigate the variation of three-dimensional metal surface topography during fatigue process, a three-dimensional (3D) topography acquisition platform was built with an in situ tensile tester and a three-dimensional profilometer. Q235 steel specimens were chosen as research objects, an...

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Main Authors: Tao Liu, Jingxiong Wu, Jingfa Lei, Xue Wang, Bingqi Zhang, Shu Zhang
Format: Article
Language:English
Published: Hindawi Limited 2021-01-01
Series:Advances in Materials Science and Engineering
Online Access:http://dx.doi.org/10.1155/2021/6680855
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spelling doaj-7ab86e4e25f94696bb018d6ca1d7c7762021-02-15T12:52:55ZengHindawi LimitedAdvances in Materials Science and Engineering1687-84341687-84422021-01-01202110.1155/2021/66808556680855Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue ProcessTao Liu0Jingxiong Wu1Jingfa Lei2Xue Wang3Bingqi Zhang4Shu Zhang5School of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei, Anhui 230601, ChinaSchool of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei, Anhui 230601, ChinaSchool of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei, Anhui 230601, ChinaSchool of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei, Anhui 230601, ChinaSchool of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei, Anhui 230601, ChinaSchool of Mechanical and Electrical Engineering, Anhui Jianzhu University, Hefei, Anhui 230601, ChinaIn order to investigate the variation of three-dimensional metal surface topography during fatigue process, a three-dimensional (3D) topography acquisition platform was built with an in situ tensile tester and a three-dimensional profilometer. Q235 steel specimens were chosen as research objects, and the three-dimensional surface topography information at various stages of fatigue damage was obtained. Through the characterization of three-dimensional roughness, combined with surface height distribution and multifractal analysis, the variations of metal surface topography in the fatigue process were described. Results show that the arithmetic mean deviation of the surface (Sa), the width of the multifractal spectrum (Δα), and the mean value of surface height distribution (μ) and its standard deviation (δ) increase nonlinearly with the increase of fatigue cycles. The rate of fatigue damage is slow in the early stage and high in the middle and late stages. The surface height distribution amplitude (A) decreases with the increase of fatigue cycles, which indicates that the height data concentration decreases, and the metal surface becomes uneven. The Bayesian data fusion method was applied to establish a nonlinear mapping between the topography features and the damage, with the above five characteristic parameters (Sa, Δα, A, μ, and δ) as the data layer. Finally, a surface topography feature fusion method is proposed, and a case study is conducted to verify its applicability. The research results can provide reference for fatigue damage assessment.http://dx.doi.org/10.1155/2021/6680855
collection DOAJ
language English
format Article
sources DOAJ
author Tao Liu
Jingxiong Wu
Jingfa Lei
Xue Wang
Bingqi Zhang
Shu Zhang
spellingShingle Tao Liu
Jingxiong Wu
Jingfa Lei
Xue Wang
Bingqi Zhang
Shu Zhang
Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process
Advances in Materials Science and Engineering
author_facet Tao Liu
Jingxiong Wu
Jingfa Lei
Xue Wang
Bingqi Zhang
Shu Zhang
author_sort Tao Liu
title Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process
title_short Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process
title_full Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process
title_fullStr Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process
title_full_unstemmed Multifeature Extraction of Three-Dimensional Topography of Carbon Steel Specimen during Fatigue Process
title_sort multifeature extraction of three-dimensional topography of carbon steel specimen during fatigue process
publisher Hindawi Limited
series Advances in Materials Science and Engineering
issn 1687-8434
1687-8442
publishDate 2021-01-01
description In order to investigate the variation of three-dimensional metal surface topography during fatigue process, a three-dimensional (3D) topography acquisition platform was built with an in situ tensile tester and a three-dimensional profilometer. Q235 steel specimens were chosen as research objects, and the three-dimensional surface topography information at various stages of fatigue damage was obtained. Through the characterization of three-dimensional roughness, combined with surface height distribution and multifractal analysis, the variations of metal surface topography in the fatigue process were described. Results show that the arithmetic mean deviation of the surface (Sa), the width of the multifractal spectrum (Δα), and the mean value of surface height distribution (μ) and its standard deviation (δ) increase nonlinearly with the increase of fatigue cycles. The rate of fatigue damage is slow in the early stage and high in the middle and late stages. The surface height distribution amplitude (A) decreases with the increase of fatigue cycles, which indicates that the height data concentration decreases, and the metal surface becomes uneven. The Bayesian data fusion method was applied to establish a nonlinear mapping between the topography features and the damage, with the above five characteristic parameters (Sa, Δα, A, μ, and δ) as the data layer. Finally, a surface topography feature fusion method is proposed, and a case study is conducted to verify its applicability. The research results can provide reference for fatigue damage assessment.
url http://dx.doi.org/10.1155/2021/6680855
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