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Numerical simulation of pulsating turbulent channel flow
Author(s) -
Alberto Scotti,
Ugo Piomelli
Publication year - 2001
Publication title -
physics of fluids
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.188
H-Index - 180
eISSN - 1089-7666
pISSN - 1070-6631
DOI - 10.1063/1.1359766
Subject(s) - physics , turbulence , mechanics , pressure gradient , flow (mathematics) , open channel flow , direct numerical simulation , large eddy simulation , turbulence modeling , pipe flow , range (aeronautics) , hele shaw flow , navier–stokes equations , channel (broadcasting) , statistical physics , adverse pressure gradient , classical mechanics , flow separation , compressibility , reynolds number , aerospace engineering , computer science , telecommunications , engineering
Direct and large-eddy simulations of the Navier-Stokes equations are used to study the pulsating flow in a channel. The cases examined span a wide range of frequencies of the driving pressure gradient, and encompass different physical behaviors, from the quasi-Stokes flow observed at high frequencies, to a quasisteady behavior at the lowest ones. The validity of the dynamic Smagorinsky model to study this kind of unsteady flow is established by a posteriori comparison with direct simulations and experimental data. It is shown that the fluctuations generated in the near-wall region by the unsteady pressure gradient do not propagate beyond a certain distance l t from the wall, which can be estimated quite accurately by a simple eddy viscosity argument. No substantial departure from the Stokes regime at very high frequency ~v 1 as high as 0.1! is observed. The time-dependent characteristics of the flow are examined in detail, as well as the topology of the coherent structures. © 2001 American Institute of Physics. @DOI: 10.1063/1.1359766#

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