Analysis of asphalt mix surface-tread rubber interaction by using finite element method

The surface texture of the pavement plays a very important role in driving the frictional properties at the tire rubber-pavement interface. Particularly, the hysteretic friction due to viscoelastic deformations of rubber depends mainly on the pavement surface texture. In the present paper, the effec...

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Main Authors: Santosh Kumar Srirangam, Kumar Anupam, Cor Kasbergen, Athanasios (Tom) Scarpas
Format: Article
Language:English
Published: KeAi Communications Co., Ltd. 2017-08-01
Series:Journal of Traffic and Transportation Engineering (English ed. Online)
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2095756417303100
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spelling doaj-6d9496d8611c40c18a53676dfb3b86982021-03-02T09:24:04ZengKeAi Communications Co., Ltd.Journal of Traffic and Transportation Engineering (English ed. Online)2095-75642017-08-014439540210.1016/j.jtte.2017.07.004Analysis of asphalt mix surface-tread rubber interaction by using finite element methodSantosh Kumar Srirangam0Kumar Anupam1Cor Kasbergen2Athanasios (Tom) Scarpas3HSL Constructor Pte Ltd., Singapore 609162, SingaporeFaculty of Civil Engineering and Geosciences, Delft University of Technology, Delft, The NetherlandsFaculty of Civil Engineering and Geosciences, Delft University of Technology, Delft, The NetherlandsFaculty of Civil Engineering and Geosciences, Delft University of Technology, Delft, The NetherlandsThe surface texture of the pavement plays a very important role in driving the frictional properties at the tire rubber-pavement interface. Particularly, the hysteretic friction due to viscoelastic deformations of rubber depends mainly on the pavement surface texture. In the present paper, the effect of micromechanical pavement surface morphology on rubber block friction was brought in by comparing the friction results for three different asphalt mix morphological surfaces, named stone mastic asphalt (SMA), ultra-thin surfacing (UTS) and porous asphalt (PA). The asphalt surface morphologies of these mixes were captured by using an X-ray tomographer, from which the resulting images micromechanical finite element (FE) meshes for SMA, UTS and PA pavements were developed by means of the SimpleWare software. In the FE model, the rubber and asphalt binder were modeled as viscoelastic (VE) materials and the formulation was given in the large deformation framework. FE simulations were then carried out by using contact algorithm between rubber and the road surface. It was observed that the rubber friction inversely varies with the sliding speed and positively varies with the pressure for all the pavement morphological and stiffness conditions. Furthermore, it was observed that the highly porous pavement surface results in large dissipation of energy, hence, large rubber friction which shows that the mix characteristics of pavements have a significant effect on rubber friction.http://www.sciencedirect.com/science/article/pii/S2095756417303100Surface textureHysteretic frictionMicromechanical analysisFinite elementContact
collection DOAJ
language English
format Article
sources DOAJ
author Santosh Kumar Srirangam
Kumar Anupam
Cor Kasbergen
Athanasios (Tom) Scarpas
spellingShingle Santosh Kumar Srirangam
Kumar Anupam
Cor Kasbergen
Athanasios (Tom) Scarpas
Analysis of asphalt mix surface-tread rubber interaction by using finite element method
Journal of Traffic and Transportation Engineering (English ed. Online)
Surface texture
Hysteretic friction
Micromechanical analysis
Finite element
Contact
author_facet Santosh Kumar Srirangam
Kumar Anupam
Cor Kasbergen
Athanasios (Tom) Scarpas
author_sort Santosh Kumar Srirangam
title Analysis of asphalt mix surface-tread rubber interaction by using finite element method
title_short Analysis of asphalt mix surface-tread rubber interaction by using finite element method
title_full Analysis of asphalt mix surface-tread rubber interaction by using finite element method
title_fullStr Analysis of asphalt mix surface-tread rubber interaction by using finite element method
title_full_unstemmed Analysis of asphalt mix surface-tread rubber interaction by using finite element method
title_sort analysis of asphalt mix surface-tread rubber interaction by using finite element method
publisher KeAi Communications Co., Ltd.
series Journal of Traffic and Transportation Engineering (English ed. Online)
issn 2095-7564
publishDate 2017-08-01
description The surface texture of the pavement plays a very important role in driving the frictional properties at the tire rubber-pavement interface. Particularly, the hysteretic friction due to viscoelastic deformations of rubber depends mainly on the pavement surface texture. In the present paper, the effect of micromechanical pavement surface morphology on rubber block friction was brought in by comparing the friction results for three different asphalt mix morphological surfaces, named stone mastic asphalt (SMA), ultra-thin surfacing (UTS) and porous asphalt (PA). The asphalt surface morphologies of these mixes were captured by using an X-ray tomographer, from which the resulting images micromechanical finite element (FE) meshes for SMA, UTS and PA pavements were developed by means of the SimpleWare software. In the FE model, the rubber and asphalt binder were modeled as viscoelastic (VE) materials and the formulation was given in the large deformation framework. FE simulations were then carried out by using contact algorithm between rubber and the road surface. It was observed that the rubber friction inversely varies with the sliding speed and positively varies with the pressure for all the pavement morphological and stiffness conditions. Furthermore, it was observed that the highly porous pavement surface results in large dissipation of energy, hence, large rubber friction which shows that the mix characteristics of pavements have a significant effect on rubber friction.
topic Surface texture
Hysteretic friction
Micromechanical analysis
Finite element
Contact
url http://www.sciencedirect.com/science/article/pii/S2095756417303100
work_keys_str_mv AT santoshkumarsrirangam analysisofasphaltmixsurfacetreadrubberinteractionbyusingfiniteelementmethod
AT kumaranupam analysisofasphaltmixsurfacetreadrubberinteractionbyusingfiniteelementmethod
AT corkasbergen analysisofasphaltmixsurfacetreadrubberinteractionbyusingfiniteelementmethod
AT athanasiostomscarpas analysisofasphaltmixsurfacetreadrubberinteractionbyusingfiniteelementmethod
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