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Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil

BACKGROUND: Unexpected performance degradation occurs in wind turbine blades due to leading edge defect when suffering from continuous impacts with rain drops, hails, insects, or solid particles during its operation life. To assess this issue, this paper numerically investigates the steady and dynam...

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Detalles Bibliográficos
Autores principales: Wang, Yan, Zheng, Xiaojing, Hu, Ruifeng, Wang, Ping
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Public Library of Science 2016
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5033410/
https://www.ncbi.nlm.nih.gov/pubmed/27658310
http://dx.doi.org/10.1371/journal.pone.0163443
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author Wang, Yan
Zheng, Xiaojing
Hu, Ruifeng
Wang, Ping
author_facet Wang, Yan
Zheng, Xiaojing
Hu, Ruifeng
Wang, Ping
author_sort Wang, Yan
collection PubMed
description BACKGROUND: Unexpected performance degradation occurs in wind turbine blades due to leading edge defect when suffering from continuous impacts with rain drops, hails, insects, or solid particles during its operation life. To assess this issue, this paper numerically investigates the steady and dynamic stall characteristics of an S809 airfoil with various leading edge defects. More leading edge defect sizes and much closer to practical parameters are investigated in the paper. METHODOLOGY: Numerical computation is conducted using the SST k-ω turbulence model, and the method has been validated by comparison with existed published data. In order to ensure the calculation convergence, the residuals for the continuity equation are set to be less than 10(−7) and 10(−6) in steady state and dynamic stall cases. The simulations are conducted with the software ANSYS Fluent 13.0. RESULTS: It is found that the characteristics of aerodynamic coefficients and flow fields are sensitive to leading edge defect both in steady and dynamic conditions. For airfoils with the defect thickness of 6%t(c), leading edge defect has a relative small influence on the aerodynamics of S809 airfoil. For other investigated defect thicknesses, leading edge defect has much greater influence on the flow field structures, pressure coefficients and aerodynamic characteristics of airfoil at relative small defect lengths. For example, the lift coefficients decrease and drag coefficients increase sharply after the appearance of leading edge defect. However, the aerodynamic characteristics could reach a constant value when the defect length is large enough. The flow field, pressure coefficient distribution and aerodynamic coefficients do not change a lot when the defect lengths reach to 0.5%c,1%c, 2%c and 3%c with defect thicknesses of 6%t(c), 12%t(c),18%t(c) and 25%t(c), respectively. In addition, the results also show that the critical defect length/thickness ratio is 0.5, beyond which the aerodynamic characteristics nearly remain unchanged. In dynamic stall, leading edge defect imposes a greater influence on the aerodynamic characteristics of airfoil than steady conditions. By increasing in defect length, it is found that the separated area becomes more intense and moves forward along the suction surface. CONCLUSIONS: Leading edge defect has significant influence on the aerodynamic and flow characteristics of the airfoil, which will reach a stable status with enough large defect size. The leading edge separation bubble, circulation in the defect cavity and intense tailing edge vortex are the main features of flow around defective airfoils.
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spelling pubmed-50334102016-10-10 Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil Wang, Yan Zheng, Xiaojing Hu, Ruifeng Wang, Ping PLoS One Research Article BACKGROUND: Unexpected performance degradation occurs in wind turbine blades due to leading edge defect when suffering from continuous impacts with rain drops, hails, insects, or solid particles during its operation life. To assess this issue, this paper numerically investigates the steady and dynamic stall characteristics of an S809 airfoil with various leading edge defects. More leading edge defect sizes and much closer to practical parameters are investigated in the paper. METHODOLOGY: Numerical computation is conducted using the SST k-ω turbulence model, and the method has been validated by comparison with existed published data. In order to ensure the calculation convergence, the residuals for the continuity equation are set to be less than 10(−7) and 10(−6) in steady state and dynamic stall cases. The simulations are conducted with the software ANSYS Fluent 13.0. RESULTS: It is found that the characteristics of aerodynamic coefficients and flow fields are sensitive to leading edge defect both in steady and dynamic conditions. For airfoils with the defect thickness of 6%t(c), leading edge defect has a relative small influence on the aerodynamics of S809 airfoil. For other investigated defect thicknesses, leading edge defect has much greater influence on the flow field structures, pressure coefficients and aerodynamic characteristics of airfoil at relative small defect lengths. For example, the lift coefficients decrease and drag coefficients increase sharply after the appearance of leading edge defect. However, the aerodynamic characteristics could reach a constant value when the defect length is large enough. The flow field, pressure coefficient distribution and aerodynamic coefficients do not change a lot when the defect lengths reach to 0.5%c,1%c, 2%c and 3%c with defect thicknesses of 6%t(c), 12%t(c),18%t(c) and 25%t(c), respectively. In addition, the results also show that the critical defect length/thickness ratio is 0.5, beyond which the aerodynamic characteristics nearly remain unchanged. In dynamic stall, leading edge defect imposes a greater influence on the aerodynamic characteristics of airfoil than steady conditions. By increasing in defect length, it is found that the separated area becomes more intense and moves forward along the suction surface. CONCLUSIONS: Leading edge defect has significant influence on the aerodynamic and flow characteristics of the airfoil, which will reach a stable status with enough large defect size. The leading edge separation bubble, circulation in the defect cavity and intense tailing edge vortex are the main features of flow around defective airfoils. Public Library of Science 2016-09-22 /pmc/articles/PMC5033410/ /pubmed/27658310 http://dx.doi.org/10.1371/journal.pone.0163443 Text en © 2016 Wang et al http://creativecommons.org/licenses/by/4.0/ This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0/) , which permits unrestricted use, distribution, and reproduction in any medium, provided the original author and source are credited.
spellingShingle Research Article
Wang, Yan
Zheng, Xiaojing
Hu, Ruifeng
Wang, Ping
Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil
title Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil
title_full Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil
title_fullStr Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil
title_full_unstemmed Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil
title_short Effects of Leading Edge Defect on the Aerodynamic and Flow Characteristics of an S809 Airfoil
title_sort effects of leading edge defect on the aerodynamic and flow characteristics of an s809 airfoil
topic Research Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC5033410/
https://www.ncbi.nlm.nih.gov/pubmed/27658310
http://dx.doi.org/10.1371/journal.pone.0163443
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