Please use this identifier to cite or link to this item: https://hdl.handle.net/10216/105576
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dc.creatorA. M. Afonso
dc.creatorP. J. Oliveira
dc.creatorF. T. Pinho
dc.creatorM. A. Alves
dc.date.accessioned2022-09-14T05:54:50Z-
dc.date.available2022-09-14T05:54:50Z-
dc.date.issued2011
dc.identifier.issn0022-1120
dc.identifier.othersigarra:68619
dc.identifier.urihttps://hdl.handle.net/10216/105576-
dc.description.abstractHigh-elasticity simulations of flows through a two-dimensional (2D) 4 : 1 abrupt contraction and a 4 : 1 three-dimensional square-square abrupt contraction were performed with a finite-volume method implementing the log-conformation formulation, proposed by Fattal & Kupferman (J. Non-Newtonian Fluid Mech., vol. 123, 2004, p. 281) to alleviate the high-Weissenberg-number problem. For the 2D simulations of Boger fluids, modelled by the Oldroyd-B constitutive equation, local flow unsteadiness appears at a relatively low Deborah number (De) of 2.5. Predictions at higher De were possible only with the log-conformation technique and showed that the periodic unsteadiness grows with De leading to an asymmetric flow with alternate back-shedding of vorticity from pulsating upstream recirculating eddies. This is accompanied by a frequency doubling mechanism deteriorating to a chaotic regime at high De. The log-conformation technique provides solutions of accuracy similar to the thoroughly tested standard finite-volume method under steady flow conditions and the onset of a time-dependent solution occurred approximately at the same Deborah number for both formulations. Nevertheless, for Deborah numbers higher than the critical Deborah number, and for which the standard iterative technique diverges, the log-conformation technique continues to provide stable solutions up to quite (impressively) high Deborah numbers, demonstrating its advantages relative to the standard methodology. For the 3D contraction, calculations were restricted to steady flows of Oldroyd-B and Phan-Thien-Tanner (PTT) fluids and very high De were attained (De approximate to 20 for PTT with epsilon = 0.02 and De approximate to 10 000 for PTT with epsilon = 0.25), with prediction of strong vortex enhancement. For the Boger fluid calculations, there was inversion of the secondary flow at high De, as observed experimentally by Sousa et al. (J. Non-Newtonian Fluid Mech., vol. 160, 2009, p. 122).
dc.language.isoeng
dc.rightsrestrictedAccess
dc.subjectEngenharia mecânica
dc.subjectMechanical engineering
dc.titleDynamics of high-Deborah-number entry flows: a numerical study
dc.typeArtigo em Revista Científica Internacional
dc.contributor.uportoFaculdade de Engenharia
dc.identifier.doi10.1017/jfm.2011.84
dc.identifier.authenticusP-002-R4Y
dc.subject.fosCiências da engenharia e tecnologias::Engenharia mecânica
dc.subject.fosEngineering and technology::Mechanical engineering
Appears in Collections:FEUP - Artigo em Revista Científica Internacional

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