Publication | Closed Access
Feedback shear layer control for bluff body drag reduction
291
Citations
61
References
2008
Year
AeroacousticsAeronauticsUnsteady FlowEngineeringFlow ControlBluff BodyAerospace EngineeringRequired Actuation EnergyFluid MechanicsMechanical SystemsFlow Control (Data)AeroelasticityAerodynamicsTurbulent FlowVortex Induced VibrationVibration ControlDrag Reduction Strategies
Drag reduction strategies for the turbulent flow around a D-shaped body are examined experimentally and theoretically. A reduced-order vortex model describes the interaction between the shear layer and wake dynamics and guides a path to an efficient feedback control design. The derived feedback controller desynchronizes shear-layer and wake dynamics, thus postponing vortex formation. This actuation is tested in a wind tunnel. The Reynolds number based on the height of the body ranges from 23000 to 70000. We achieve a 40% increase in base pressure associated with a 15% drag reduction employing zero-net-mass-flux actuation. Our controller outperforms other approaches based on open-loop forcing and extremum-seeking feedback strategies in terms of drag reduction, adaptivity, and the required actuation energy.
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