定向波传播对WEC器件的影响

E. Faraggiana, J. Chapman, I. Masters
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引用次数: 1

摘要

波浪能转换器(WEC)的性能通常对波浪方向敏感。因此,在数值模拟中考虑多向波的影响是很重要的。海浪的真实表示应考虑特定于WEC部署位置的波高和方向扩展参数。高质量的广义方向分布取决于波的方向和频率。在这里,我们比较了不同频率方向分布情况下WaveSub设备产生的功率、波场和运动。使用不同的模型分布,如均匀余弦第四、Mitsuyasu、Hasselman和Donelan Banner,对定向扩散进行了建模。使用Nemoh计算所有波浪方向的水动力系数。然后,对WEC Sim码进行了扩展,增加了模拟不同用户选择的频率定向扩展的能力。对施加到每个流体动力学体的激振力进行更新,以考虑方向谱的影响。结果表明,产生的功率通常比单向情况低10-20%。该装置的运动表明,在定向扩展模拟中引入了摇摆、滚转和偏航,而与非定向情况相比,产生的波场更加均匀。计算时间明显低于可比CFD方法,这使得该方法特别有效。
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Influence of directional wave spreading on a WEC device
Wave Energy Converter (WEC)  performance is generally sensitive to the wave direction. So, it is important to include the effect of multi-directional waves in numerical modelling. A realistic representation of ocean waves should account for wave height and directional spreading parameters specific to the WEC deployment location. A high quality generalised  directional distribution is dependent on the wave direction and frequency. Here we compare the power produced, the wave field, and the motion of the WaveSub device for different frequency-directional distribution cases. Directional spreading has been modelled using different model distributions such as the uniform cosine fourth, Mitsuyasu, Hasselman and Donelan-Banner. The hydrodynamic coefficients are computed for all wave directions using Nemoh. Then, the WEC-Sim code has been extended to add the capability to simulate different user selected frequency-directional spreading. The excitation force applied to each hydrodynamic body is updated to account for the effect of the directional spectrum. Results show that power produced is generally 10-20% lower than a single direction case. The motion of the device demonstrates the introduction of sway, roll, and yaw for the directional spreading simulations while the resultant wavefield is more uniform compared to the non-directional case. Computational time is significantly lower than comparable CFD approaches and this makes this method particularly effective.
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来源期刊
International Marine Energy Journal
International Marine Energy Journal Engineering-Ocean Engineering
CiteScore
1.70
自引率
0.00%
发文量
24
审稿时长
12 weeks
期刊最新文献
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