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Experimental and Computational Investigation of the Flow through an Oscillating-Wing Power Generator

机译:通过振动翼发电机流动的实验和计算研究

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Power extraction from wind and water streams using flapping wings is known to be an alternative method to harvest renewable energy. The vortical flow structures around and in the wake of a NACA0012 airfoil oscillating with non-sinusoidal pitching and plunging motions are investigated using Digital Particle Image Velocimetry (DPIV) and compared with Navier-Stokes computations to give insight into the physics that determine the performance of an oscillating-wing power generator. A plunge amplitude of 1.05 chords, reduced frequency 0.8, pitch amplitude 73°, pivot point at quarter-chord and mid-chord, phase angles of 90° and 110°, and stroke reversal times ΔT_R of 0.1 (rapid reversal) to 0.5 (sinusoidal) are used. It is shown that the vorticity formations are independent of the Reynolds number for the investigated cases (Re = 1100 - 1960). As the airfoil rotation speed during pitch reversals is increased, vortex shedding occurs earlier with higher strength. As the phase angle by which the pitching motion leads the plunging motions is increased, the shed vortex convection distance is also increased. Peak power coefficient (0.86) and efficiency (33%) are found at ΔT_R = 0.3 for mid-chord pivot, with values of power coefficient (0.89) and efficiency (31%) at ΔT_R = 0.5 for quarter-chord pivot. The leading edge vortex interaction with the airfoil and the timing of its formation and convection has the primary role in the time averaged power output.
机译:已知使用拍打翼的风和水流的功率提取是收获可再生能量的替代方法。使用数字粒子图像Velocimetry(DPIV)研究了NaCa0012翼型的涡流结构周围和在NACA0012翼型轴上振荡的涡流结构,并与Navier-Stokes计算进行比较,以了解确定性能的物理学振动翼发电机。 1.05和弦,减小频率0.8,距振幅73°,四分之一和弦,中间弦,相位角为90°和110°的枢转点,以及行程逆转时间ΔT_R为0.1(快速反转)至0.5(使用正弦状)。结果表明,涡流形成与研究病例的雷诺数无关(RE = 1100-1960)。随着螺距逆转期间的翼型转速增加,涡旋脱落更早地发生,强度更高。随着俯仰运动引入浮动运动的相位角增加,SHED涡流对流距离也增加。峰值功率系数(0.86)和效率(33%)在Δt_R= 0.3中找到用于中弦枢转的Δt_R= 0.3,功率系数(0.89)的值和ΔT_R= 0.5的效率(31%),四分之一和弦枢轴。与翼型的前沿涡旋相互作用和其形成和对流的定时具有在时间平均功率输出中的主要作用。

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