Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/99161
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dc.contributorDepartment of Mechanical Engineeringen_US
dc.creatorWang, Cen_US
dc.creatorGsell, Sen_US
dc.creatorD’Ortona, Uen_US
dc.creatorFavier, Jen_US
dc.date.accessioned2023-06-26T01:17:35Z-
dc.date.available2023-06-26T01:17:35Z-
dc.identifier.issn0022-1120en_US
dc.identifier.urihttp://hdl.handle.net/10397/99161-
dc.language.isoenen_US
dc.publisherCambridge University Pressen_US
dc.rights© The Author(s), 2023. Published by Cambridge University Press. This is an Open Access article, distributed under the terms of the Creative Commons Attribution licence (https://creativecommons. org/licenses/by/4.0), which permits unrestricted re-use, distribution, and reproduction in any medium, provided the original work is properly cited.en_US
dc.rightsThe following publication Wang C, Gsell S, D’Ortona U, Favier J. Generalized-Newtonian fluid transport by an instability-driven filament. Journal of Fluid Mechanics. 2023;965:A6 is available at https://doi.org/10.1017/jfm.2023.381.en_US
dc.subjectMicro-organism dynamicsen_US
dc.subjectFlow-structure interactionsen_US
dc.titleGeneralized-Newtonian fluid transport by an instability-driven filamenten_US
dc.typeJournal/Magazine Articleen_US
dc.identifier.volume965en_US
dc.identifier.doi10.1017/jfm.2023.381en_US
dcterms.abstractCilia are micro-scale hair-like organelles. They can exhibit self-sustained oscillations which play crucial roles in flow transport or locomotion. Recent studies have shown that these oscillations can spontaneously emerge from dynamic instability triggered by internal stresses via a Hopf bifurcation. However, the flow transport induced by an instability-driven cilium still remains unclear, especially when the fluid is non-Newtonian. This study aims at bridging these gaps. Specifically, the cilium is modelled as an elastic filament, and its internal actuation is represented by a constant follower force imposed at its tip. Three generalized Newtonian behaviours are considered, i.e. the shear-thinning, Newtonian and shear-thickening behaviours. Effects of four key factors, including the filament zero-stress shape, Reynolds number (Re), follower-force magnitude and fluid rheology, on the filament dynamics, fluid dynamics and flow transport are explored through direct numerical simulation at Re of 0.04 to 5 and through a scaling analysis at Re≈0. The results reveal that even though it is expected that inertia vanishes at Re≪1, inertial forces do alter the filament dynamics and deteriorate the flow transport at Re≥0.04. Regardless of Re, the flow transport can be improved when the flow is shear thinning or when the follower force increases. Furthermore, a linear stability analysis is performed, and the variation of the filament beating frequency, which is closely correlated with the filament dynamics and flow transport, can be predicted.en_US
dcterms.accessRightsopen accessen_US
dcterms.bibliographicCitationJournal of fluid mechanics, 25 June 2023, v. 965, A6en_US
dcterms.isPartOfJournal of fluid mechanicsen_US
dcterms.issued2023-06-25-
dc.identifier.eissn1469-7645en_US
dc.identifier.artnA6en_US
dc.description.validate202306 bckwen_US
dc.description.oaVersion of Recorden_US
dc.identifier.FolderNumbera2124, OA_TA-
dc.identifier.SubFormID46717-
dc.description.fundingSourceOthersen_US
dc.description.fundingTextMACBION project, the Excellence Initiative of Aix-Marseille University A*MIDEX (a French Investissements d’Avenir programme) ; the SINUMER project of the French National Research Agency (grant number ANR-18-CE45-0009-01)en_US
dc.description.pubStatusPublisheden_US
dc.description.TACUP (2024)en_US
dc.description.oaCategoryTAen_US
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