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A viscoelastic k-epsilon-(v(2))over-bar-f turbulent flow model valid up to the maximum drag reduction limit

Title
A viscoelastic k-epsilon-(v(2))over-bar-f turbulent flow model valid up to the maximum drag reduction limit
Type
Article in International Scientific Journal
Year
2013
Authors
M. Masoudian
(Author)
FEUP
K. Kim
(Author)
Other
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F. T. Pinho
(Author)
FEUP
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R. Sureshkumar
(Author)
Other
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Journal
Vol. 202
Pages: 99-111
ISSN: 0377-0257
Publisher: Elsevier
Other information
Authenticus ID: P-008-FYG
Abstract (EN): A tensorially consistent near-wall four equation model is developed to model turbulent flow of dilute polymer solutions. The model is validated up to the maximum drag reduction limit, by utilizing the data obtained from direct numerical simulations using the finitely extensible nonlinear elastic-Peterlin (FENEP) constitutive model. Eight sets of direct numerical simulation (DNS) data are used to analyze budgets of relevant physical quantities, such as the nonlinear terms in the FENE-P constitutive equation, the turbulent kinetic energy, the wall normal Reynolds stress and dissipation transport. Closures were developed in the framework of the k v2 f model for the viscoelastic stress work, the viscoelastic destruction of the rate of dissipation, the viscoelastic turbulent viscosity, and the interactions between the fluctuating components of the conformation tensor and of the velocity gradient tensor terms. Predicted polymer stress, velocity profiles and turbulent flow characteristics are all in good agreement with the literature, from which six independent DNS data sets were used covering a wide range of rheological and flow parameters, including high Reynolds number flows, and showing significant improvements over the corresponding predictions of other existing models. 2013 Elsevier B.V. All rights reserved.
Language: English
Type (Professor's evaluation): Scientific
No. of pages: 13
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