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Experimental and numerical investigation on wave height and power take-off damping effects on the hydrodynamic performance of an offshore-stationary OWC wave energy converter

机译:波高和取力器阻尼对海上平稳OWC波能转换器水动力性能影响的实验和数值研究

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Wave energy is a viable source of ocean renewable energy and research is being conducted worldwide. The Oscillating Water Column (OWC) device is recognised internationally as one of the most promising types of ocean Wave Energy Converters (WECs). To effectively utilize ocean waves for harvesting more energy, offshore OWC devices need to be deployed in deep-water where waves are more energetic. Therefore, the present paper experimentally investigated the hydrodynamic performance of a 3D offshore-stationary OWC device subjected to a wide range of regular wave conditions of different periods and heights and nonlinear power take-off (PTO) damping conditions simulated by an orifice. The experimental results were also employed to validate a 3D incompressible Computational Fluid Dynamics (CFD) model based on the RANS-VOF approach. It was found that the device capture width ratio decreased as wave height increased, especially for wave frequencies higher than device resonance frequency. However, for low-frequency waves under small PTO damping, there was a noticeable improvement in the device capture width ratio. More importantly, results of this study revealed that even with the changes in the device capture width ratio as wave height doubled, the OWC device could extract more wave energy throughout the whole frequency range tested by a maximum of about 7.7 times, particularly for long waves under small PTO damping. Furthermore, the numerical results from the 3D CFD model were in good agreement with the experiments, while the 2D model provided misleading (overestimating) results for high-frequency waves. (C) 2018 Elsevier Ltd. All rights reserved.
机译:波浪能是海洋可再生能源的可行来源,并且全世界都在进行研究。振荡水柱(OWC)设备是国际公认的最有前途的海浪能量转换器(WEC)类型之一。为了有效地利用海浪来收集更多的能量,需要将近海OWC设备部署在海浪更加活跃的深水中。因此,本文通过实验研究了3D海上平稳OWC装置在不同周期和高度的规则波条件和孔板模拟的非线性取力器(PTO)阻尼条件下的流体力学性能。实验结果还被用来验证基于RANS-VOF方法的3D不可压缩计算流体动力学(CFD)模型。发现随着波高的增加,器件捕获宽度比减小,特别是对于高于器件共振频率的波频率。但是,对于在PTO阻尼较小的情况下的低频波,设备捕获宽度比有显着改善。更重要的是,这项研究的结果表明,即使设备捕获宽度比随波高增加一倍而变化,OWC设备也可以在测试的整个频率范围内提取最多7.7倍的波能,特别是对于长波在较小的PTO阻尼下。此外,来自3D CFD模型的数值结果与实验结果非常吻合,而2D模型为高频波提供了误导性(高估)结果。 (C)2018 Elsevier Ltd.保留所有权利。

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