Title of article
Effect of Side-Walls on Flapping-Wing PowerGeneration: an Experimental Study
Author/Authors
Karakas ، F. - Istanbul Technical University , Fenercioglu ، I. - Istanbul Technical University
Pages
11
From page
2769
To page
2779
Abstract
Effect of constrained flow is investigated experimentally for a flapping foil power-generator. The flow structures around and in the near wake of a flat plate placed between two side walls are captured via PIV technique with simultaneous direct force measurements in uniform flow at Re = 10 000. The rectangular flat plate oscillates with periodic non-sinusoidal pitching and plunging motions about its 0.44 chord position with stroke reversal times (ΔTR) of 0.1 (rapid reversal) to 0.5 (sinusoidal reversal), phase angles of Φ = 90° and 110°, plunge amplitude of 1.05 chords and pitch amplitude of 73° at a constant reduced frequency of k = 0.8. The non-dimensional distances between the side walls and the oscillating flat plate are dw = 0.1, 0.5 and 1.0. Airfoil rotation speed dictates the strength, evolution and timing of shedding of leading and trailing edge vortices; as the stroke reversal time is decreased, earlier shedding of stronger vortices are observed. Increasing the phase angle between the pitching and plunging motions decreases the power generation efficiency for all cases. The highest power extraction coefficient is acquired for the non-sinusoidal case of ΔTR = 0.4 in free flow. Optimum choice of side-wall distance improves power generation of flapping foils compared to free flow performance, up to 6.52% increase in efficiency is observed for the non-sinusoidal case ΔTR = 0.4 with dw = 0.5, with remarkable enhancements for the sinusoidal case; 27.85% increase is observed with dw = 0.5 and 43.50% increase with dw = 1.0 where both cases outperform the highest power generation efficiency of the finite flat plate with non-sinusoidal flapping motion.
Keywords
Constrained flow , Oscillating foil , Flapping wing , Power generation , PIV.
Journal title
Journal of Applied Fluid Mechanics
Serial Year
2016
Journal title
Journal of Applied Fluid Mechanics
Record number
2465337
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