Near wake evolution of a tidal stream turbine due to asymmetric sheared turbulent inflow with different integral length scales

IF 9 1区 工程技术 Q1 ENERGY & FUELS Renewable Energy Pub Date : 2024-11-06 DOI:10.1016/j.renene.2024.121833
Cong Han, Arindam Banerjee
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Abstract

Tidal stream turbines deployed at highly energetic open water sites are subjected to sheared inflow in the rotor plane. The inflow shear is expected to cause asymmetric loading on the rotor blades and affect the downstream wake. In the current study, two different turbulent inflow conditions, static-high shear and dynamic shear, were generated via an active-grid turbulence generator. A 1:20 scaled three-bladed horizontal axis tidal turbine model was tested in those conditions. The results were compared to a quasi-laminar case with no imposed turbulence or shear. The results show that the high shear reduces the average performance, with a drop of up to 16% in the optimal power coefficient. Besides, the shear profiles increase torque fluctuations and induce significant differences in wake hydrodynamics between the high-speed (upper) and low-speed (lower) regions. The large integral length scales further enhance the load fluctuations perceived by the rotor but have a negligible effect on the mean wake field quantities and the wake recovery. The lower half region featured a faster breakdown of tip vortex structure and a rapid drop of swirl number, a phenomenon conjectured to be a consequence of the strong turbulence intensities and Reynolds stresses in the lower half region. The sheared turbulent inflow also results in a very intensive energy redistribution process towards large-scale, low-frequency motions, which is important to the downstream turbines.
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不同积分长度尺度的非对称剪切湍流流入导致的潮汐流涡轮机近尾流演变
部署在高能开阔水域的潮汐流涡轮机在转子平面上会受到流入切变的影响。预计流入的剪切力会对转子叶片造成不对称载荷,并影响下游尾流。在当前的研究中,通过主动网格湍流发生器产生了两种不同的湍流流入条件,即静态高剪切和动态剪切。1:20 比例的三叶水平轴潮汐涡轮机模型在这些条件下进行了测试。测试结果与没有施加湍流或剪切力的准层流情况进行了比较。结果表明,高剪切力降低了平均性能,最佳功率系数最高下降了 16%。此外,剪切剖面增加了扭矩波动,并导致高速(上部)和低速(下部)区域之间的尾流流体力学存在显著差异。大的积分长度尺度进一步增强了转子感受到的负载波动,但对平均唤醒场量和唤醒恢复的影响可以忽略不计。下半部区域的特征是顶端涡流结构崩溃更快,漩涡数迅速下降,这种现象被推测为下半部区域强湍流强度和雷诺应力的结果。剪切湍流流入也导致了一个非常密集的能量再分配过程,即大规模的低频运动,这对下游涡轮机非常重要。
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来源期刊
Renewable Energy
Renewable Energy 工程技术-能源与燃料
CiteScore
18.40
自引率
9.20%
发文量
1955
审稿时长
6.6 months
期刊介绍: Renewable Energy journal is dedicated to advancing knowledge and disseminating insights on various topics and technologies within renewable energy systems and components. Our mission is to support researchers, engineers, economists, manufacturers, NGOs, associations, and societies in staying updated on new developments in their respective fields and applying alternative energy solutions to current practices. As an international, multidisciplinary journal in renewable energy engineering and research, we strive to be a premier peer-reviewed platform and a trusted source of original research and reviews in the field of renewable energy. Join us in our endeavor to drive innovation and progress in sustainable energy solutions.
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