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On the mitigation of detrimental effects via passive flow-control devices in aerodynamic airfoils operating under turbulence and surface degradation effects.pdf (9.020Mb)
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Title
On the mitigation of detrimental effects via passive flow-control devices in aerodynamic airfoils operating under turbulence and surface degradation effects
Author
Zarketa-Astigarraga, AnderORCID
Manzanares Bercial, Raúl
Martínez Cava, Alejandro
Martin-Mayor, AlainORCID
Martinez Agirre, ManexORCID
Penalba, MarkelORCID
Research Group
Mecánica de Fluidos
Other institutions
https://ror.org/03n6nwv02
Version
Postprint
Document type
Journal Article
Language
English
Rights
© AIP
Access
Open access
URI
https://hdl.handle.net/20.500.11984/14660
Publisher’s version
https://doi.org/10.1063/5.0322591
Identificador
https://katalogoa.mondragon.edu/janium-bin/janium_login_opac.pl?find&ficha_no=201540
Published at
Physics of Fluids  Vol. 38 (4). N. art. 044112
Publisher
AIP Publishing
Keywords
Aerodynamic stallings
Airfoils
Boundary layer flow
Boundary layers ... [+]
Aerodynamic stallings
Airfoils
Boundary layer flow
Boundary layers
Flow control
Surface roughness
Turbulence
Wind power
Wind tunnels [-]
Subject (UNESCO Thesaurus)
Fluid mechanics
Thermodynamics
UNESCO Classification
Fluid mechanics
Thermodynamics
Abstract
This work investigates how moderate turbulence and surface roughness jointly affect the aerodynamics of a NACA0021 airfoil operating at transitional Reynolds numbers (Re = 0.8–1.2×105). Wind-tunnel t ... [+]
This work investigates how moderate turbulence and surface roughness jointly affect the aerodynamics of a NACA0021 airfoil operating at transitional Reynolds numbers (Re = 0.8–1.2×105). Wind-tunnel tests were performed under two controlled flow paradigms: a low-disturbance Clean condition and a Combined condition including both freestream turbulence (I ≈3.8%) and leading-edge roughness. In addition to the baseline (Bare) configuration, two unilateral passive-device layouts were tested, with triangular protrusions placed at x/c = 0.25 (PD25) and x/c = 0.5 (PD50). Results show that the Combined inflow linearises the lift curve and softens stall but reduces lift slope and aerodynamic efficiency by up to 60% compared with the Clean baseline. The effect of the passive devices depends on their position and on Re: PD25 can delay stall and recover efficiency at high angles of attack, while PD50 offers only limited or negative impact once the boundary layer becomes fully turbulent. Overall, the findings demonstrate that turbulence– roughness interactions dominate aerodynamic behaviour at transitional scales, and that small passive elements can provide only local improvements. These results underline the need to assess low-Re airfoils under realistic inflow conditions when developing flow-control strategies for distributed or urban wind-energy systems. [-]
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