Numerical modelling of flexible pavement incorporating cross‑anisotropic material properties Part I : Surface circular loading

dc.contributor.authorMaina, J.W. (James)
dc.contributor.authorKawana, Futoshi
dc.contributor.authorMatsui, Kunihito
dc.contributor.emailjames.maina@up.ac.zaen_ZA
dc.date.accessioned2018-07-25T12:08:37Z
dc.date.available2018-07-25T12:08:37Z
dc.date.issued2017-03
dc.descriptionThis research study was part of the revision of the SAPDM, a project sponsored by the South African National Roads Agency SOC Ltd (SANRAL) and the Council for Scientific and Industrial Research (CSIR).en_ZA
dc.description.abstractAccurate numerical modelling of the behaviour of road pavement layers is an important requirement for the design and evaluation of road pavements. This modelling includes the prediction of pavement performance under the action of traffic loading and environmental factors. Depending on the complexity of the models, properties of pavement layers that may be considered are wide-ranging – from linear or nonlinear elastic to cross-anisotropic through to linear visco-elasto-plastic. Some properties, such as cross-anisotropic, are not only related to placement and compaction of the pavement layers, but are also inherent to the materials used. Other properties, such as linear visco-elasto-plastic, are specific to asphalt concrete and depend on the speed and magnitude of traffic loading, as well as the environment (temperature) in which the road is located. This paper presents basic theoretical derivation of numerical modelling of a flexible pavement considering cross-anisotropic material properties (with isotropic properties as a special case). The solutions derived in this paper are based on Hankel transformation of Navier’s equations. The accuracy and validity of the solutions are verified through comparisons with a proprietary finite element method (FEM) package. For this purpose, a pavement structure composed of five main layers constituted by isotropic and cross-anisotropic (also known as transversely isotropic) material properties is analysed. In order to vary some of the layer properties with depth, the main layers were sub-layered, resulting in a 17-layer pavement system.en_ZA
dc.description.departmentCivil Engineeringen_ZA
dc.description.librarianam2018en_ZA
dc.description.sponsorshipThe National Research Foundation (NRF)en_ZA
dc.description.urihttp://www.journals.co.za/ej/ejour_civileng.htmlen_ZA
dc.identifier.citationMaina JW, Kawana F, Matsui K. Numerical modelling of flexible pavement incorporating cross-anisotropic material properties – Part I: Surface circular loading. J. S. Afr. Inst. Civ. Eng. 2017:59(1), Art. #1366, 6 pages. http://dx.DOI.org/ 10.17159/2309-8775/2017/v59n1a3.en_ZA
dc.identifier.issn1021-2019 (online)
dc.identifier.other10.17159/2309-8775/2017/v59n1a3
dc.identifier.urihttp://hdl.handle.net/2263/65978
dc.language.isoenen_ZA
dc.publisherSouth African Institution of Civil Engineeringen_ZA
dc.rights© 2017. The Authors. Licensee: AOSIS OpenJournals. This article is licensed under the Creative Commons Attribution 4.0 International (CC BY 4.0) license.en_ZA
dc.subjectPavementen_ZA
dc.subjectLinear-elastic analysisen_ZA
dc.subjectTransversely isotropicen_ZA
dc.subjectCross‑anisotropyen_ZA
dc.subjectIsotropicen_ZA
dc.subjectCircular loadingen_ZA
dc.subject.otherEngineering, built environment and information technology articles SDG-09
dc.subject.otherSDG-09: Industry, innovation and infrastructure
dc.titleNumerical modelling of flexible pavement incorporating cross‑anisotropic material properties Part I : Surface circular loadingen_ZA
dc.typeArticleen_ZA

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