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dc.creatorChakraborty, S.en
dc.creatorNguyen, P. K.en
dc.creatorRuyer-Quil, C.en
dc.creatorBontozoglou, V.en
dc.date.accessioned2015-11-23T10:24:24Z
dc.date.available2015-11-23T10:24:24Z
dc.date.issued2014
dc.identifier10.1017/jfm.2014.91
dc.identifier.issn0022-1120
dc.identifier.urihttp://hdl.handle.net/11615/26547
dc.description.abstractDirect numerical simulation (DNS) of liquid film flow is used to compute fully developed solitary waves and to compare their characteristics with the predictions of low-dimensional models. Emphasis is placed on the regime of high inertia, where available models provide widely differing results. It is found that the parametric dependence of wave properties on inertia is highly non-trivial, and is satisfactorily approximated only by the four-equation model of Ruyer-Quil & Manneville (Eur. Phys. J. B, vol. 15, 2000, pp. 357-369). Detailed comparison of the asymptotic shapes of upstream and downstream tails is performed, and inherent limitations of all long-wave models are revealed. Local flow reversal in front of the main hump, which has been previously discussed in the literature, is shown to occur for an inertia range bounded from below and from above, and the boundaries are interpreted in terms of the capillary origin of the phenomenon. Computational results are reported for the entire range of Froude numbers, providing benchmark data for all wall inclinations.en
dc.sourceJournal of Fluid Mechanicsen
dc.source.uri<Go to ISI>://WOS:000333907700024
dc.subjectinterfacial flows (free surface)en
dc.subjectcapillary flowsen
dc.subjectlow-Reynolds-numberen
dc.subjectflowsen
dc.subjectFINITE-ELEMENT-METHODen
dc.subjectHIGH REYNOLDS-NUMBERSen
dc.subjectINCLINED PLANESen
dc.subjectNUMERICAL-SIMULATIONen
dc.subjectVERTICAL WALLen
dc.subjectHEAT-TRANSFERen
dc.subjectROLL WAVESen
dc.subjectFLOWSen
dc.subjectTHINen
dc.subjectDYNAMICSen
dc.subjectMechanicsen
dc.subjectPhysics, Fluids & Plasmasen
dc.titleExtreme solitary waves on falling liquid filmsen
dc.typejournalArticleen


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