Numerical Analysis of Wind Turbine Airfoil Aerodynamic Performance with Leading Edge Bump

Author:

Asli Majid1ORCID,Mashhadi Gholamali Behnam1ORCID,Mesgarpour Tousi Abolghasem1

Affiliation:

1. Center of Excellence on Computational Aerospace Engineering, Aerospace Engineering Department, Amirkabir University of Technology, Tehran, Iran

Abstract

Aerodynamic performance improvement of wind turbine blade is the key process to improve wind turbine performance in electricity generated and energy conversion in renewable energy sources concept. The flow behavior on wind turbine blades profile and the relevant phenomena like stall can be improved by some modifications. In the present paper, Humpback Whales flippers leading edge protuberances model as a novel passive stall control method was investigated on S809 as a thick airfoil. The airfoil was numerically analyzed by CFD method in Reynolds number of 106and aerodynamic coefficients in static angle of attacks were validated with the experimental data reported by Somers in NREL. Therefore, computational results for modified airfoil with sinusoidal wavy leading edge were presented. The results revealed that, at low angles of attacks before the stall region, lift coefficient decreases slightly rather than baseline model. However, the modified airfoil has a smooth stall trend while baseline airfoil lift coefficient decreases sharply due to the separation which occurred on suction side. According to the flow physics over the airfoils, leading edge bumps act as vortex generator so vortices containing high level of momentum make the flow remain attached to the surface of the airfoil at high angle of attack and prevent it from having a deep stall.

Publisher

Hindawi Limited

Subject

General Engineering,General Mathematics

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1. Effect of leading-edge protrusion shapes for passive flow control measure on wind turbine blades;Ocean Engineering;2023-02

2. Application of Leading-Edge Tubercles on Rotor Blades;AIAA Journal;2023-01

3. Bio-inspired optimization of leading edge slat;Aircraft Engineering and Aerospace Technology;2022-12-02

4. Numerical Analysis of Wind Turbine Airfoil Aerodynamic of Wind Turbine Blade;2022 7th International Conference on Mechatronics System and Robots (ICMSR);2022-12

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