Numerical Analysis of Leading-Edge Roughness Effects on the Aerodynamic Performance of a Thick Wind Turbine Airfoil

Author:

Zhang Wei1,Ma Kuichao2ORCID,Cai Chang34,Sun Xiangyu34ORCID,Zhang Jun2,Zhong Xiaohui345ORCID,Rong Xiaomin34,Li Qing’an345

Affiliation:

1. Institute of Engineering and Technology, Hangzhou Huadian Engineering Consulting Co., Ltd., Hangzhou 310030, China

2. New Energy Research Center, Huadian Electric Power Research Institute Co., Ltd., Hangzhou 310030, China

3. Institute of Engineering Thermophysics, Chinese Academy of Sciences, Beijing 100190, China

4. The Key Laboratory of Wind Energy Utilization of Chinese Academy of Sciences, Beijing 100190, China

5. School of Engineering Science, University of Chinese Academy of Sciences, Beijing 100049, China

Abstract

The aerodynamic performance of wind turbine airfoils is crucial for the efficiency and reliability of wind energy systems, with leading-edge roughness significantly impacting blade performance. This study conducts numerical simulations on the DU 00-W-401 airfoil to investigate the effects of leading-edge roughness. Results reveal that the rough airfoil exhibits a distinctive “N”-shaped lift coefficient curve. The formation mechanism of this nonlinear lift curve is primarily attributed to the development of the trailing-edge separation vortex and variations in the adverse pressure gradient from the maximum thickness position to the trailing-edge confluence. The impact of different roughness heights is further investigated. It is discovered that when the roughness height is higher than 0.3 mm, the boundary layer can be considered fully turbulent, and the lift curve shows the “N” shape stably. When the roughness height is between 0.07 mm and 0.1 mm, a transitional state can be observed, with several saltation points in the lift curve. The main characteristics of different flow regimes based on different lift curve segments are summarized. This research enhances the understanding of the effects of leading-edge roughness on the aerodynamic performance of a thick wind turbine airfoil, and the simulation method for considering the effect of leading-edge roughness is practical to be applied on large-scale wind turbine blade to estimate the aerodynamic performance under rough leading-edge conditions, thereby supporting advancements in wind turbine technology and promoting the broader adoption of renewable energy.

Funder

National Key R&D Program of China

National Natural Science Foundation of China

High-tech industrialization special fund project of scientific and technological cooperation between Jilin Province and Chinese Academy of Sciences

State Scholarship Fund of China Scholarship Council

Publisher

MDPI AG

Reference25 articles.

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3. Wind Tunnel Aerodynamic Tests of Six Airfoils for Use on Small Wind Turbines;Selig;J. Sol. Energy Eng.,2004

4. A Review of Aerodynamic Models for Wind Turbines;Buhl;Renew. Energy,2005

5. Tangler, J.L., and Somers, D.M. (1995). NREL Airfoil Families for HAWTs, National Renewable Energy Laboratory (NREL). No. NREL/TP-442-7109.

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