潮汐涡轮机在不同淹没水平下的动能回收分析

Q3 Engineering
P. Ouro, P. Stansby, T. Stallard
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引用次数: 0

摘要

潮汐涡轮机通常部署在水深高达50米的海域,以便于部署和快速维护。在这些相对较浅的水深条件下,潮流涡轮机尾流的垂直膨胀受到转子叶片与底层和自由表层的接近程度的限制。这些物理约束可能导致驱动涡轮机后面动量恢复的流动机制发生变化,例如限制垂直速度通量。了解尾流如何根据淹没比恢复,对于设计未来的多排潮汐涡轮机阵列至关重要。在这里,我们采用高保真大涡模拟(LES)和执行器线法(ALM)来表示涡轮机的转子,以分析四个水深值的单底固定潮汐涡轮机后面的平均动能(MKE)的平均流量和传输方程。我们的结果表明,涡轮机叶尖与自由表面的紧密接近可以显著地限制尾流膨胀,非常浅的条件导致对垂直方向上湍流动量交换的MKE补充的贡献有限。相反,在这种浅层条件下,MKE的水平通量在下游尾流的横向边界上增强。我们的研究表明,水深与涡轮机直径之比在未来的潮汐阵列中发挥着相关作用,需要在数值模型中正确考虑,以提供可靠的结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the kinetic energy recovery behind a tidal stream turbine for various submergence levels
Tidal turbines are commonly deployed at sea sites with water depths of up to 50 m to ease their deployment and quick maintenance operations. In these relatively shallow water depth conditions, the vertical expansion of tidal stream turbine wakes is restricted by the proximity of the rotor blades to the bottom bed and free-surface layer. These physical constrains can lead to changes in the flow mechanisms that drive momentum recovery behind the turbines, e.g. limiting the vertical fluxes of velocity. Understanding how the wake recovers depending on the submergence ratio is of utmost importance to designing the future multi-row tidal turbine arrays. Here, we adopt high-fidelity Large-Eddy Simulations (LES) with an Actuator Line Method (ALM) to represent the turbine's rotor to analyse the mean flow and transport equation for mean kinetic energy (MKE) behind a single bottom-fixed tidal turbine for four water depth values. Our results show that the close proximity of the turbine blade tip to the free-surface can notably constrain the wake expansion, with very shallow conditions leading to a limited contribution to the MKE replenishment of the turbulent momentum exchange over the vertical direction. Conversely, under such shallow conditions, the horizontal flux of MKE is enhanced over the lateral boundaries of the downstream wake. Our study evidences that the ratio of water depth to turbine diameter plays a relevant role in future tidal arrays and needs to be correctly accounted for in numerical models to provide reliable results.
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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
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