Numerical Investigation Into the Energy Extraction Characteristics of Parallel Dual-Foil Turbine

W. Jiang, Yulu Wang, Yonghui Xie, Di Zhang
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Abstract

A new concept of power generator using two oscillating foils in parallel configuration to extract energy from fluid is proposed and numerically tested in the present study. The theoretical performance of the turbine in this form is investigated through unsteady two-dimensional laminar-flow Navier-Stokes simulations. The effect of the interaction between the two foils is studied at different pitching amplitudes and phase differences between the two foils. The energy extraction performance, instantaneous force coefficients and flow details are compared between single foil and dual foils, and thus the mechanism of performance improvement by wing-in-ground effect is revealed. Two different kinds of asymmetric sinusoidal motions are utilized to further improve the performance of the turbine. Numerical results indicate that anti-phase mode can achieve higher power coefficient than the in-phase mode. The contracted passage under anti-phase mode helps produce larger lift force and power coefficient. The maximum power coefficient per foil for anti-phase dual foils is 1.4% higher than that of single foil. The asymmetric sinusoidal pitching motion in phase can improve the synchronization between plunging velocity and lift force and thus further enhance the energy extraction performance by 1.3%. Besides, the pitching motion with asymmetric amplitude also can increase the power coefficient somehow, but the improvement is very limited.
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平行双翼涡轮能量提取特性的数值研究
本文提出了一种利用两片振荡箔并联结构从流体中提取能量的发电机的新概念,并进行了数值试验。通过非定常二维层流Navier-Stokes模拟,研究了这种形式下涡轮的理论性能。在不同俯仰幅值和不同相位差的情况下,研究了两种箔片相互作用的影响。通过对单翼和双翼的能量提取性能、瞬时力系数和流动细节的比较,揭示了翼入地效应提高性能的机理。利用两种不同的非对称正弦运动来进一步提高涡轮的性能。数值结果表明,反相模式比同相模式能获得更高的功率系数。反相模式下的收缩通道有助于产生较大的升力和功率系数。反相双箔的单箔最大功率系数比单箔高1.4%。非对称正弦相位俯仰运动改善了俯冲速度和升力之间的同步,进一步提高了1.3%的能量提取性能。此外,非对称振幅俯仰运动也能在一定程度上提高动力系数,但提高幅度非常有限。
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