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Computational Fluid Dynamics Analysis of a Hydrokinetic Turbine Based on Oscillating Hydrofoils

机译:基于振荡水翼的水动力涡轮机的计算流体动力学分析

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摘要

The performance of a new concept of hydrokinetic turbine using oscillating hydrofoils to extract energy from water currents (tidal or gravitational) is investigated using URANS numerical simulations. The numerical predictions are compared with experimental data from a 2 kW prototype, composed of two rectangular oscillating hydrofoils of aspect ratio 7 in a tandem spatial configuration. 3D computational fluid dynamics (CFD) predictions are found to compare favorably with experimental data especially for the case of a single-hydrofoil turbine. The validity of approximating the actual arc-circle trajectory of each hydrofoil by an idealized vertical plunging motion is also addressed by numerical simulations. Furthermore, a sensitivity study of the turbine's performance in relation to fluctuating operating conditions is performed by feeding the simulations with the actual time-varying experimentally recorded conditions. It is found that cycle-averaged values, as the power-extraction efficiency, are little sensitive to perturbations in the foil kinematics and upstream velocity.
机译:使用URANS数值模拟研究了一种新型概念的动水涡轮机的性能,该动水涡轮机使用振荡水翼从水流(潮汐或重力)中提取能量。将数值预测与来自2 kW原型的实验数据进行比较,该原型由两个纵横比为7的矩形振荡水翼串联而成。发现3D计算流体动力学(CFD)预测与实验数据相比具有优势,尤其是对于单水翼涡轮机而言。通过数值模拟还可以解决通过理想化的垂直下垂运动逼近每个水翼的实际圆弧轨迹的有效性。此外,通过向仿真提供实际随时间变化的实验记录条件,可以对涡轮机性能与波动的运行条件之间的关系进行敏感性研究。发现作为功率提取效率的周期平均值对箔片运动学和上游速度的扰动几乎不敏感。

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