Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber

To deepen the understanding of the frictional sliding phenomena of rough surfaces, advances are required in numerical analysis methods at various spatial scales. In this study, to examine the microscopic behavior of a rough asperity contact corresponding to a bulk contact on the macroscopic scale, a...

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Main Authors: Shingo Ozaki, Keishi Mieda, Satoru Maegawa, Ken Nakano
Format: Article
Language:English
Published: Frontiers Media S.A. 2020-05-01
Series:Frontiers in Mechanical Engineering
Subjects:
FEM
Online Access:https://www.frontiersin.org/article/10.3389/fmech.2020.00024/full
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spelling doaj-e55dfed8347a4e57a461cb508e5530142020-11-25T02:02:36ZengFrontiers Media S.A.Frontiers in Mechanical Engineering2297-30792020-05-01610.3389/fmech.2020.00024543212Meso–Macro Coupled Analysis of Pressure-Dependent Friction of RubberShingo Ozaki0Keishi Mieda1Satoru Maegawa2Ken Nakano3Faculty of Engineering, Yokohama National University, Yokohama, JapanFaculty of Engineering, Yokohama National University, Yokohama, JapanDepartment of Electrical and Mechanical Engineering, Nagoya Institute of Technology, Nagoya, JapanFaculty of Environment and Information Science, Yokohama National University, Yokohama, JapanTo deepen the understanding of the frictional sliding phenomena of rough surfaces, advances are required in numerical analysis methods at various spatial scales. In this study, to examine the microscopic behavior of a rough asperity contact corresponding to a bulk contact on the macroscopic scale, a loop-type meso–macro coupled analysis scheme is proposed. A mesoscale numerical model and a macroscopic friction model are required for the proposed multi-scale analysis. A friction model was adopted based on the multipoint contact model for the mesoscale model, and the pressure- and state-dependent elastoplastic analogy friction model was used for the macroscale model. In the proposed meso–macro coupled analysis, the parameter set for the elastoplastic analogy friction model was first identified via a numerical friction test using the mesoscale multipoint contact model assuming various conditions. Then, a macroscale finite element analysis incorporating the elastoplastic analogy friction model was performed for the macroscopic analysis of contact between a rough rubber hemisphere and a smooth plate. Here, the information from the mesoscale rough surfaces were reflected in the macroscale finite element analysis. Finally, a mesoscale localization analysis was performed in which the macroscopic histories of several typical locations were obtained by finite element analysis and used as boundary conditions for the mesoscale model. It is suggested that the microscopic sliding process of rough surfaces represented by the finite element analysis can be examined using the proposed method.https://www.frontiersin.org/article/10.3389/fmech.2020.00024/fullmultiscale analysisreal contact arearoughnessfriction modelFEM
collection DOAJ
language English
format Article
sources DOAJ
author Shingo Ozaki
Keishi Mieda
Satoru Maegawa
Ken Nakano
spellingShingle Shingo Ozaki
Keishi Mieda
Satoru Maegawa
Ken Nakano
Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber
Frontiers in Mechanical Engineering
multiscale analysis
real contact area
roughness
friction model
FEM
author_facet Shingo Ozaki
Keishi Mieda
Satoru Maegawa
Ken Nakano
author_sort Shingo Ozaki
title Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber
title_short Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber
title_full Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber
title_fullStr Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber
title_full_unstemmed Meso–Macro Coupled Analysis of Pressure-Dependent Friction of Rubber
title_sort meso–macro coupled analysis of pressure-dependent friction of rubber
publisher Frontiers Media S.A.
series Frontiers in Mechanical Engineering
issn 2297-3079
publishDate 2020-05-01
description To deepen the understanding of the frictional sliding phenomena of rough surfaces, advances are required in numerical analysis methods at various spatial scales. In this study, to examine the microscopic behavior of a rough asperity contact corresponding to a bulk contact on the macroscopic scale, a loop-type meso–macro coupled analysis scheme is proposed. A mesoscale numerical model and a macroscopic friction model are required for the proposed multi-scale analysis. A friction model was adopted based on the multipoint contact model for the mesoscale model, and the pressure- and state-dependent elastoplastic analogy friction model was used for the macroscale model. In the proposed meso–macro coupled analysis, the parameter set for the elastoplastic analogy friction model was first identified via a numerical friction test using the mesoscale multipoint contact model assuming various conditions. Then, a macroscale finite element analysis incorporating the elastoplastic analogy friction model was performed for the macroscopic analysis of contact between a rough rubber hemisphere and a smooth plate. Here, the information from the mesoscale rough surfaces were reflected in the macroscale finite element analysis. Finally, a mesoscale localization analysis was performed in which the macroscopic histories of several typical locations were obtained by finite element analysis and used as boundary conditions for the mesoscale model. It is suggested that the microscopic sliding process of rough surfaces represented by the finite element analysis can be examined using the proposed method.
topic multiscale analysis
real contact area
roughness
friction model
FEM
url https://www.frontiersin.org/article/10.3389/fmech.2020.00024/full
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AT satorumaegawa mesomacrocoupledanalysisofpressuredependentfrictionofrubber
AT kennakano mesomacrocoupledanalysisofpressuredependentfrictionofrubber
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