Blunt-Wavy Combined Trailing Edge for Wind Turbine Blade Inboard Performance Improvement

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Abstract

Aerodynamic performance of wind turbine blade inboard is improved by modifying its trailing edge shape. A combined trailing edge modification design with blunt trailing edge and a span-wise wavy trailing edge is used. Designing blunt trailing edge at the blade inboard makes the flow become more attached than the conventional sharp trailing edge. The span-wise wavy trailing edge breaks up the Karman vortex shedding generated by the blunt trailing edge. The Sandia National Laboratory 100 meter blade, SNL100-03 was used as a baseline model. Rotating blade simulations are performed with the full-scale isolated rotor condition. Aerodynamic performance analysis and aeroacoustic performance analysis of the modified turbine blades are performed. By using the blunt-wavy combined trailing edge modification, the massive flow separation at the inboard of the baseline blade is prevented successfully. Delayed Detached Eddy Simulation (DDES) with a modified laminar-turbulent transition model (Medida - Baeder model) is used for better prediction of flow separation.

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Yang, S. J., & Baeder, J. D. (2018). Blunt-Wavy Combined Trailing Edge for Wind Turbine Blade Inboard Performance Improvement. In Journal of Physics: Conference Series (Vol. 1037). Institute of Physics Publishing. https://doi.org/10.1088/1742-6596/1037/2/022004

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