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Article

Effects of Micro-Tab on the Lift Enhancement of Airfoil S-809 with Trailing-Edge Flap

1
School of Energy and Power Engineering, Huazhong University of Science and Technology, Wuhan 430074, China
2
Key Laboratory of Low-Grade Energy Utilization Technologies and Systems, Chongqing University, Chongqing 400044, China
3
Xi’an Key Laboratory of Clean Energy, Xi’an University of Architecture and Technology, Xi’an 710055, China
*
Author to whom correspondence should be addressed.
Processes 2021, 9(3), 547; https://doi.org/10.3390/pr9030547
Submission received: 24 January 2021 / Revised: 28 February 2021 / Accepted: 1 March 2021 / Published: 19 March 2021

Abstract

Recently, the Trailing-Edge Flap with Micro-Tab (TEF with Micro-Tab) has been exploited to enhance the performance of wind turbine blades. Moreover, it can also be used to generate more lift and delay the onset of stall. This study focused mostly on the use of TEF with Micro-Tab in wind turbine blades using NREL’s S-809 as a model airfoil. In particular, the benefits generated by TEF with Micro-Tab may be of great interest in the design of wind turbine blades. In this paper, an attempt was made to evaluate the influence of TEF with Micro-Tab on the performance of NREL’s S-809 airfoils. Firstly, a computational fluid dynamics (CFD) model for the airfoil NREL’s S-809 was established, and validated by comparison with previous studies and wind tunnel experimental data. Secondly, the effects of the flap position (H) and deflection angle (αF) on the flow behaviors were investigated. As a result, the effect of TEF on air-flow behavior was demonstrated by augmenting the pressure coefficient at the lower surface of the airfoil at flap position 80% chord length (C) and αF = 7.5°. Thirdly, the influence of TEF with Micro-Tab on the flow behaviors of the airfoil NREL’s S-809 was studied and discussed. Different Micro-Tab positions and constant TEF were examined. Finally, the effects of TEF with Micro-Tab on the aerodynamic characteristics of the S-809 with TEF were compared. The results showed that an increase in the maximum lift coefficient by 25% and a delay in the air-flow stall were accomplished due to opposite sign vortices, which was better than the standard airfoil and S-809 with TEF. Therefore, it was deduced that the benefits of TEF with Micro-Tab were apparent, especially at the lower surface of the airfoil. This particularly suggests that the developed model could be used as a new trend to modify the designs of wind turbine blades.
Keywords: computational fluid dynamics (CFD); trailing edge flap (TEF); trailing edge flap with Micro-Tab; deflection angle of the flap (αF); aerodynamic performance computational fluid dynamics (CFD); trailing edge flap (TEF); trailing edge flap with Micro-Tab; deflection angle of the flap (αF); aerodynamic performance

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MDPI and ACS Style

Ye, J.; Salem, S.; Wang, J.; Wang, Y.; Du, Z.; Wang, W. Effects of Micro-Tab on the Lift Enhancement of Airfoil S-809 with Trailing-Edge Flap. Processes 2021, 9, 547. https://doi.org/10.3390/pr9030547

AMA Style

Ye J, Salem S, Wang J, Wang Y, Du Z, Wang W. Effects of Micro-Tab on the Lift Enhancement of Airfoil S-809 with Trailing-Edge Flap. Processes. 2021; 9(3):547. https://doi.org/10.3390/pr9030547

Chicago/Turabian Style

Ye, Jianjun, Shehab Salem, Juan Wang, Yiwen Wang, Zonggang Du, and Wei Wang. 2021. "Effects of Micro-Tab on the Lift Enhancement of Airfoil S-809 with Trailing-Edge Flap" Processes 9, no. 3: 547. https://doi.org/10.3390/pr9030547

APA Style

Ye, J., Salem, S., Wang, J., Wang, Y., Du, Z., & Wang, W. (2021). Effects of Micro-Tab on the Lift Enhancement of Airfoil S-809 with Trailing-Edge Flap. Processes, 9(3), 547. https://doi.org/10.3390/pr9030547

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