Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method

In contact analysis, creating a machined surface model depends on traditional mathematical models, such as statistics and fractal methods. However, these models do not provide an exact representation of the complex information about the machined surface. This raises the need for a method to precisel...

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Autores principales: Pengyang Li, Qiang Liu, Ye Hui, Quandai Wang, Weiping Fu, Yan Li
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Lenguaje:EN
Publicado: Japanese Society of Tribologists 2016
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Acceso en línea:https://doaj.org/article/2f84fbf5e924412391da34c283756376
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spelling oai:doaj.org-article:2f84fbf5e924412391da34c2837563762021-11-05T09:21:50ZAnalysis of Contact Performance of Real Machined Surface Based on Finite Element Method1881-219810.2474/trol.11.61https://doaj.org/article/2f84fbf5e924412391da34c2837563762016-03-01T00:00:00Zhttps://www.jstage.jst.go.jp/article/trol/11/1/11_61/_pdf/-char/enhttps://doaj.org/toc/1881-2198In contact analysis, creating a machined surface model depends on traditional mathematical models, such as statistics and fractal methods. However, these models do not provide an exact representation of the complex information about the machined surface. This raises the need for a method to precisely create the engineering contact surface. This paper solves this problem by measuring the profile of the machined surface, processing position data, inputting position data directly into the finite element software directly by ANSYS parameter design language (APDL) programming and creating a solid model for the real rough surface. Then, statistical analysis of the contact between the rough surface and a rigid flat plane is carried out and relationships for contact area, load, pressure deformation and so on are obtained. Results show that this method used for simulation is promising. From the results, contact deformation was found to exponentially increase with contact pressure, and downward normal contact stiffness exponentially increases with average pressure.Pengyang LiQiang LiuYe HuiQuandai WangWeiping FuYan LiJapanese Society of Tribologistsarticlecontact performancereal machined surfacestiffnessfinite element analysisapdlPhysicsQC1-999Engineering (General). Civil engineering (General)TA1-2040Mechanical engineering and machineryTJ1-1570ChemistryQD1-999ENTribology Online, Vol 11, Iss 1, Pp 61-68 (2016)
institution DOAJ
collection DOAJ
language EN
topic contact performance
real machined surface
stiffness
finite element analysis
apdl
Physics
QC1-999
Engineering (General). Civil engineering (General)
TA1-2040
Mechanical engineering and machinery
TJ1-1570
Chemistry
QD1-999
spellingShingle contact performance
real machined surface
stiffness
finite element analysis
apdl
Physics
QC1-999
Engineering (General). Civil engineering (General)
TA1-2040
Mechanical engineering and machinery
TJ1-1570
Chemistry
QD1-999
Pengyang Li
Qiang Liu
Ye Hui
Quandai Wang
Weiping Fu
Yan Li
Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method
description In contact analysis, creating a machined surface model depends on traditional mathematical models, such as statistics and fractal methods. However, these models do not provide an exact representation of the complex information about the machined surface. This raises the need for a method to precisely create the engineering contact surface. This paper solves this problem by measuring the profile of the machined surface, processing position data, inputting position data directly into the finite element software directly by ANSYS parameter design language (APDL) programming and creating a solid model for the real rough surface. Then, statistical analysis of the contact between the rough surface and a rigid flat plane is carried out and relationships for contact area, load, pressure deformation and so on are obtained. Results show that this method used for simulation is promising. From the results, contact deformation was found to exponentially increase with contact pressure, and downward normal contact stiffness exponentially increases with average pressure.
format article
author Pengyang Li
Qiang Liu
Ye Hui
Quandai Wang
Weiping Fu
Yan Li
author_facet Pengyang Li
Qiang Liu
Ye Hui
Quandai Wang
Weiping Fu
Yan Li
author_sort Pengyang Li
title Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method
title_short Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method
title_full Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method
title_fullStr Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method
title_full_unstemmed Analysis of Contact Performance of Real Machined Surface Based on Finite Element Method
title_sort analysis of contact performance of real machined surface based on finite element method
publisher Japanese Society of Tribologists
publishDate 2016
url https://doaj.org/article/2f84fbf5e924412391da34c283756376
work_keys_str_mv AT pengyangli analysisofcontactperformanceofrealmachinedsurfacebasedonfiniteelementmethod
AT qiangliu analysisofcontactperformanceofrealmachinedsurfacebasedonfiniteelementmethod
AT yehui analysisofcontactperformanceofrealmachinedsurfacebasedonfiniteelementmethod
AT quandaiwang analysisofcontactperformanceofrealmachinedsurfacebasedonfiniteelementmethod
AT weipingfu analysisofcontactperformanceofrealmachinedsurfacebasedonfiniteelementmethod
AT yanli analysisofcontactperformanceofrealmachinedsurfacebasedonfiniteelementmethod
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