不同波浪条件下水翼叶片波浪能转换器的数值模拟

J. Lei, E. González, Yingchen Yang, Ying Zhang, Ben Xu
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引用次数: 1

摘要

海浪是一种丰富的可再生能源,其能量密度远高于风。各种WEC技术已经提出或正在开发中。本文建立了升力型转子的二维模型,分析了升力型转子叶片在定常流动和非定常流动下的旋转运动。在稳定流动条件下,对数值模型进行了验证。通过快速傅里叶变换(FFT)分析,确定了频率对流场中产生的涡的主要贡献。并对不同波浪条件下的能量转换效率进行了对比研究。结果表明,能量转换效率在定常流动时达到最大值,而非定常流动时效率不断降低,这在很大程度上是由于振荡导致耗散增加所致。当气流振荡时,周期性工况下转子的转速低于稳定工况下的转速,本研究通过曲线拟合来预测周期平均转速。我们得出的结论是,振荡流的能量转换效率至少可以达到1.6%,但实际海浪的能量转换效率可能会有所不同。期望现有的二维仿真结果能够为波能界做出贡献,特别是在需要进行转子设计和优化的情况下。
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Numerical Simulation of Wave Energy Converter With Hydrofoil Blades Under Various Wave Conditions
Ocean wave is a rich source of renewable energy with much higher power density than winds. Various WEC technologies have been proposed or are under development. In this study, we developed a 2-dimensional (2D) model and analyzed the rotational motion of the lift-type rotor’s blade under steady flow and unsteady flow. The numerical model was validated by experiments under steady flow. Fast Fourier Transform (FFT) analysis was performed to identify the major contribution of frequency in terms of vortexes generated in the flow field. A comparative study was also performed by comparing all the cases in terms of energy conversion efficiency under different wave conditions. It turns out that the efficiency of energy conversion has a maximum value in the steady flow, while the efficiency for unsteady flow keeps decreasing, therefore this is highly due to the increased dissipation because of the oscillating. When the flow is oscillating, the rotational speed of the rotor under periodic condition is lower than the rotational velocity with steady flow, and a curve fitting was performed in this study to predict the periodic average rotational speed. We conclude that for oscillating flow a minimum of 1.6% energy conversion efficiency can be expected, but it may vary for the actual ocean waves. It is expected the current 2D simulation results can contribute to the wave energy community, especially when the rotor design and optimization is required.
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