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Parametric Study of an Oscillating Airfoil in a Power-Extraction Regime

AIAA Journal · 2008 · Vol. 46(6) · pp. 1318–1330
Thomas KinseyGuy Dumas

Abstract

A wing that is heaving and pitching simultaneously may extract energy from an oncoming flow, thus acting as a turbine. The theoretical performance of such a concept is investigated here through unsteady two-dimensional laminar-flow simulations using the commercial finite volume computational fluid dynamics code FLUENT. Computations are performed in the heaving reference frame of the airfoil, thus leaving only the pitching motion of the airfoil to be dealt with through a rigid-body mesh rotation and a circular nonconformal sliding interface. Unsteady aerodynamics basics of the oscillating airfoil are first exposed, with a description of the operating regimes. Effects of unsteadiness are stressed and the inadequacy of a quasi-steady approach to take them into account is exposed. We present a mapping of power-extraction efficiency for a single oscillating airfoil in the frequency and pitching-amplitude domain: 0 55deg in which efficiencies are higher than 20%. Results from a parametric study are then provided and discussed. It is found that motion-related parameters such as heaving amplitude and frequency have the strongest effects on airfoil performances, whereas geometry and viscous parameters turn out to play a secondary role.

Fluid Dynamics and Turbulent FlowsBiomimetic flight and propulsion mechanismsWind Energy Research and DevelopmentAirfoilExtraction (chemistry)Parametric statisticsMechanicsAcousticsPhysicsMathematics

Funding

  • Natural Sciences and Engineering Research Council of Canada
Citations
506
FWCI
9.97
field-weighted impact
References
7
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99%
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Cited by
A review on fluid dynamics of flapping foils
Ocean Engineering · 2019 · 275 citations
References
Oscillating foils of high propulsive efficiency
Journal of Fluid Mechanics · 1998 · 1,262 citations
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