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dc.contributor.authorLai, Lawrence
dc.contributor.authorLucey, Anthony
dc.contributor.authorElliott, Novak
dc.contributor.editorMichael Stanisic et al
dc.date.accessioned2017-01-30T13:11:48Z
dc.date.available2017-01-30T13:11:48Z
dc.date.created2013-03-24T20:00:31Z
dc.date.issued2012
dc.identifier.citationLai, Lawrence S.H. and Lucey, Anthony D. and Elliott, Novak S.J. 2012. Flow-Induced Deformantions of a Compliant Insert in Channel Flow: from Small to Large Amplitudes, in Stanisic, M. et al. (ed), Proceedings of the International Design Engineering Technical Conferences and Computers and Information in Engineering Conference, Aug 12-15 2012. Chicago, IL, USA: ASME.
dc.identifier.urihttp://hdl.handle.net/20.500.11937/29291
dc.identifier.doi10.1115/DETC2012-70368
dc.description.abstract

In this paper we consider a fluid-conveying channel with a compliant insert undergoing large amplitude flow-induced deformations. The objective is to assess the suitability of an open source finite element library oomph-lib for modelling this system. The fundamental system is relevant to a host of applicationsin both engineered (e.g. flexible-pipes, membrane filters, and general aero-/hydro-elasticity) and biomechanical (e.g. blood flow, airway flow) systems. The structural model uses a geometricallynonlinear formulation of the solid mechanics. Viscous flow is modelled at Reynolds numbers producing unsteady laminar flow. We present a brief summary of previous component validations with oomph-lib. We then focus on the unsteady-state FSI validation by comparing with published results, obtainedusing different computational schemes. This is done for both small-amplitude and large-amplitude wall deformations. Finally, we look at some preliminary energetics analysis of the flexible wall. The validations demonstrate the suitability and versatility of oomph-lib as a modelling and predictive tool. The flexible wall energetics validation show the possibility of understanding system stability through analysis of the flexible wall and fluid energetics.

dc.publisherASME
dc.subjectChannel flow
dc.subjectFlow (Dynamics)
dc.subjectDeformation
dc.titleFlow-Induced Deformantions of a Compliant Insert in Channel Flow: from Small to Large Amplitudes
dc.typeConference Paper
dcterms.source.titleProceedings of the ASME 2012 International Design Engineering Technical Conferences &Computers and Information in Engineering Conference
dcterms.source.seriesProceedings of the ASME 2012 International Design Engineering Technical Conferences &Computers and Information in Engineering Conference
dcterms.source.isbn9780791845042
dcterms.source.conferenceASME 2012 International Design Engineering Technical Conferences & Computers and Information in Engineering Conference
dcterms.source.conference-start-dateAug 12 2012
dcterms.source.conferencelocationChicago, IL, USA
dcterms.source.placeChicago, IL, USA
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curtin.accessStatusFulltext not available


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