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Dynamic stall of an experimental wind turbine blade

doi: 10.1063/1.4942001
To understand the complex flow phenomena over wind turbine blades during stall development, a scaled three-dimensional non-rotating blade model is designed to be dynamically similar to a rotating full-scale NREL 5 MW wind turbine blade. A time-resolved particle image velocimetry (PIV) investigation of flow behavior during the stall cycle examines the processes of stall development and flow reattachment. Proper orthogonal decomposition (POD) and vortex detection techniques are applied to the PIV fields to quantify relevant flow characteristics such as vortex size, separation angle, and separation point throughout a dynamic pitching cycle. The behavior of the POD coefficients provides time scales for the transitional stages which are quantified and compared, revealing that transition from attached flow to full stall is delayed to higher angles of attack and occurs at a higher rate than the transition from full stall to attached flow. The instantaneous flow fields are then reconstructed using the first four POD modes to demonstrate their prominent roles throughout the stall cycle and their ability to capture the general separation behavior over the blade surface.
- École Polytechnique Fédérale de Lausanne EPFL Switzerland
- Portland State University United States
- Portland State University United States
Mathematical models, Stalling (Aerodynamics), Mechanical Engineering, Particle image velocimetry, Flow (Fluid dynamics), Orthogonal decompositions, Wind turbines -- Blades
Mathematical models, Stalling (Aerodynamics), Mechanical Engineering, Particle image velocimetry, Flow (Fluid dynamics), Orthogonal decompositions, Wind turbines -- Blades
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