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Flow structures and shear-stress predictions in the turbulent channel flow over an anisotropic porous wall

Le Clainche, Soleidad (författare)
School of Aerospace Engineering, Universidad Politécnica de Madrid, E-28040 Madrid, Spain
Rosti, Marco E. (författare)
KTH,Linné Flow Center, FLOW,SeRC - Swedish e-Science Research Centre
Brandt, Luca (författare)
KTH,Linné Flow Center, FLOW,SeRC - Swedish e-Science Research Centre
 (creator_code:org_t)
IOP Publishing, 2020
2020
Engelska.
Ingår i: Journal of Physics. - : IOP Publishing. ; , s. 012016-
  • Konferensbidrag (refereegranskat)
Abstract Ämnesord
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  • This article identifies the main coherent structures driving the flow dynamics in the turbulent channel flow over anisotropic porous walls. Two different cases have been analyzed where the drag increases or decreases with respect to a channel with isotropic porous walls. Higher order dynamic mode decomposition (HODMD) is applied to analyze these data, identifying 20 and 15 high amplitude modes in the drag increasing (DI) and drag reducing (DR) cases, respectively, which well reflects the largest flow complexity in the former case. The frequency of 13 modes and the three-dimensional structure of the modes are similar in the DR and DI cases, suggesting the need of using more complex analyses to deepen our physical insight of these flows. The spatio-temporal HODMD analysis identifies a periodic solution along the spanwise direction (as imposed by the boundary conditions). The wavenumbers related to the modes with highest amplitude are β = 0 and β = 3 (Lz = 2 3 π ). The rollers, groups of spanwise correlated structures, are mostly identified in the DI case near the wall, with β = 0, while the presence of the streaks, streamwise correlated structures are mostly identified in the DR case. Although, in areas far away from the wall it is possible to identify these two types of structures with β = 3 in both cases, depending on the temporal frequency of the DMD modes, the rollers and the streaks are related to high and low frequency DMD modes, respectively. Finally, a model is constructed to predict the temporal evolution of the wall shear, using the 6 most relevant DMD modes interacting near the channel wall: 6 low frequency modes for DR and 3 low and 3 high frequency modes for DI. In the DR case the wall shear is predicted for almost 300 time units with relative error ∼ 2%, however, this error is larger in the DI case, ∼ 6%, suggesting the need of using a larger number of modes to represent this more complex flow.

Ämnesord

TEKNIK OCH TEKNOLOGIER  -- Maskinteknik -- Strömningsmekanik och akustik (hsv//swe)
ENGINEERING AND TECHNOLOGY  -- Mechanical Engineering -- Fluid Mechanics and Acoustics (hsv//eng)

Nyckelord

Anisotropy
Channel flow
Drag reduction
Rollers (machine components)
Shear stress
Turbulence
Wall flow
Coherent structure
High-frequency mode
Higher-order dynamics
Low-frequency modes
Temporal evolution
Temporal frequency
Three-dimensional structure
Turbulent channel flows
Shear flow

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Av författaren/redakt...
Le Clainche, Sol ...
Rosti, Marco E.
Brandt, Luca
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TEKNIK OCH TEKNOLOGIER
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