DocumentCode
1814868
Title
Reduced-order modeling and control of near-wall turbulent flow
Author
Blossey, Peter N. ; Lumley, John L.
Author_Institution
California Univ., San Diego, La Jolla, CA, USA
Volume
3
fYear
1999
fDate
1999
Firstpage
2851
Abstract
We introduce a new low-dimensional model for the study, simulation and control of near-wall turbulent flow based on the empirical eigenfunctions of the proper orthogonal decomposition (POD). The wall-normal direction is discretized in our model using basis functions derived for the components of velocity as well as the wall-normal vorticity from the POD and the continuity condition, permitting the decoupling of the vertical velocity (roll) and vertical vorticity (streak) modes in our models. The streamwise and spanwise directions are not discretized, permitting some flexibility in the choice of basis functions in these directions. Galerkin projection of the Navier-Stokes equations (in the vertical velocity-vertical vorticity formulation) onto the basis functions yields a set of coupled partial differential equations in the two remaining spatial directions and in time. Modeling of the unresolved, small-scale stresses and the mean velocity profile is required to close the equations. We also discuss our work with the control of near-wall turbulence in simulations of turbulent channel flow in the minimal flow unit. The control focuses on the coherent structures, estimating their strength from the shear stress at the wall and applying control through a time-varying body force. The control is successful in reducing the turbulent skin friction and suppressing the production of turbulence near the wall by the structures
Keywords
Galerkin method; Navier-Stokes equations; channel flow; flow control; multivariable control systems; partial differential equations; reduced order systems; turbulence; vortices; Galerkin projection; Navier-Stokes equations; coupled partial differential equations; empirical eigenfunctions; low-dimensional model; near-wall turbulent flow; proper orthogonal decomposition; reduced-order modeling; shear stress; time-varying body force; turbulent channel flow; turbulent skin friction; vertical velocity; vertical vorticity; wall-normal direction; wall-normal vorticity; Aerodynamics; Eigenvalues and eigenfunctions; Force control; Friction; Kinetic energy; Large-scale systems; Navier-Stokes equations; Production; Skin; Stress control;
fLanguage
English
Publisher
ieee
Conference_Titel
Decision and Control, 1999. Proceedings of the 38th IEEE Conference on
Conference_Location
Phoenix, AZ
ISSN
0191-2216
Print_ISBN
0-7803-5250-5
Type
conf
DOI
10.1109/CDC.1999.831366
Filename
831366
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