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   <ow:Publication rdf:about="oai:ebiltegia.mondragon.edu:20.500.11984/14660">
      <dc:title>On the mitigation of detrimental effects via passive flow-control devices in aerodynamic airfoils operating under turbulence and surface degradation effects</dc:title>
      <dc:creator>Zarketa-Astigarraga, Ander</dc:creator>
      <dc:creator>Manzanares Bercial, Raúl</dc:creator>
      <dc:creator>Martínez Cava, Alejandro</dc:creator>
      <dc:creator>Martin-Mayor, Alain</dc:creator>
      <dc:creator>Martinez Agirre, Manex</dc:creator>
      <dc:creator>Penalba, Markel</dc:creator>
      <dc:subject>Aerodynamic stallings</dc:subject>
      <dc:subject>Airfoils</dc:subject>
      <dc:subject>Boundary layer flow</dc:subject>
      <dc:subject>Boundary layers</dc:subject>
      <dc:subject>Flow control</dc:subject>
      <dc:subject>Surface roughness</dc:subject>
      <dc:subject>Turbulence</dc:subject>
      <dc:subject>Wind power</dc:subject>
      <dc:subject>Wind tunnels</dc:subject>
      <dc:description>This work investigates how moderate turbulence and surface roughness jointly affect the aerodynamics of a NACA0021&#xd;
airfoil operating at transitional Reynolds numbers (Re = 0.8–1.2×105). Wind-tunnel tests were performed under two&#xd;
controlled flow paradigms: a low-disturbance Clean condition and a Combined condition including both freestream&#xd;
turbulence (I ≈3.8%) and leading-edge roughness. In addition to the baseline (Bare) configuration, two unilateral&#xd;
passive-device layouts were tested, with triangular protrusions placed at x/c = 0.25 (PD25) and x/c = 0.5 (PD50).&#xd;
Results show that the Combined inflow linearises the lift curve and softens stall but reduces lift slope and aerodynamic&#xd;
efficiency by up to 60% compared with the Clean baseline. The effect of the passive devices depends on&#xd;
their position and on Re: PD25 can delay stall and recover efficiency at high angles of attack, while PD50 offers only&#xd;
limited or negative impact once the boundary layer becomes fully turbulent. Overall, the findings demonstrate that turbulence–&#xd;
roughness interactions dominate aerodynamic behaviour at transitional scales, and that small passive elements&#xd;
can provide only local improvements. These results underline the need to assess low-Re airfoils under realistic inflow&#xd;
conditions when developing flow-control strategies for distributed or urban wind-energy systems.</dc:description>
      <dc:date>2026-09-04T15:04:39Z</dc:date>
      <dc:date>2026-09-04T15:04:39Z</dc:date>
      <dc:date>2026</dc:date>
      <dc:identifier>1089-7666</dc:identifier>
      <dc:identifier>1070-6631</dc:identifier>
      <dc:identifier>https://hdl.handle.net/20.500.11984/14660</dc:identifier>
      <dc:language>eng</dc:language>
      <dc:rights>© AIP</dc:rights>
      <dc:publisher>AIP Publishing</dc:publisher>
   </ow:Publication>
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