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Three tidal turbines in interaction: An experimental study of turbulence intensity effects on wakes and turbine performance

机译:三种潮汐涡轮机相互作用:湍流强度对沼泽和汽轮机性能影响的实验研究

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摘要

The development of marine current turbine arrays depends on the understanding of the interaction effects that exist between turbines in close proximity. Moreover, the ambient turbulence intensity also plays a major role in the behaviour of tidal turbines. Thus it is necessary to take ambient turbulence into account when studying interaction effects between several turbines. In order to highlight these interaction effects, experiments have been carried out in the IFREMER flume tank. These experiments focus on interactions between three horizontal axis turbines. This paper presents the experimental results obtained for three configurations with two ambient turbulence intensity rates.The results are presented in terms of turbine wakes and performance. The wake characterisation presents complex features for the three configurations and the lowest ambient turbulence rate: upstream turbines wakes are still present at the location of the downstream turbine and their wakes can interact or merge, depending on the tested configurations. On the contrary, for the highest turbulence rate, the downstream turbine wake is not affected in his shape by the two upstream ones which are not visible any more. In fact, as already observed in the previous studies of Mycek et al. [1, 2], the wake shape rapidly spreads out in the stream-wise direction behind the turbines. However, the velocity deficit and the turbulence intensity are higher for the downstream turbine comparing to the upstream ones. In terms of performance, one tested case presents an increase of the downstream turbine power production: when this turbine is exactly in the centre of the two upstream turbines and for the lowest turbulence rate only. A small misalignment of the layout axis with respect to the tidal current may result in a decrease of performance at the end. An analysis of the power spectral density functions of the downstream turbine torque and thrust shows that no signature of the upstream turbines can be found in these answers. Furthermore, the same spectral analysis carried out on the velocity measurements shows no signature of the upstream turbines either, from 3 diameters distance. This result is noticeable for the highest and the lowest tested turbulence cases and whatever the turbines configuration is. (C) 2019 Elsevier Ltd. All rights reserved.
机译:海洋电流涡轮机阵列的发展取决于了解涡轮机之间存在近距离的相互作用效应。此外,环境湍流强度也在潮汐涡轮机的行为中起主要作用。因此,在研究多个涡轮机之间的相互作用效应时,必须考虑环境湍流。为了突出这些相互作用效应,在IFREMER FLUME罐中进行了实验。这些实验专注于三个水平轴涡轮机之间的相互作用。本文介绍了三种构造的实验结果,具有两个环境湍流强度率。结果以涡轮机唤醒和性能提出。唤醒表征为三种配置提供复杂的特征和最低的环境湍流速率:上游涡轮机唤醒仍然存在于下游涡轮机的位置,并且它们的唤醒可以根据经过测试的配置而相互作用或合并。相反,对于最高的湍流速率,下游涡轮机唤醒不受其形状的两个上游的突发,这是不再可见的。事实上,正如上一个关于Mycek等人的研究中所观察到的那样。 [1,2],唤醒形状在涡轮机后面的流方向上迅速散布。然而,对于上游涡轮机比较上游涡轮机的速度赤字和湍流强度更高。在性能方面,一个测试的案例提出了下游涡轮机电力生产的增加:当该涡轮机正好在两个上游涡轮机的中心并且仅用于最低的湍流速率。布局轴相对于潮流的小未对准可能导致最终的性能降低。对下游涡轮扭矩和推力的功率谱密度函数的分析表明,可以在这些答案中找到上游涡轮机的签名。此外,在速度测量上执行的相同的光谱分析显示出从3直径距离的上游涡轮机的签名。该结果对于最高和最低测试的湍流情况以及涡轮机配置是什么表示明显的。 (c)2019 Elsevier Ltd.保留所有权利。

著录项

  • 来源
    《Renewable energy》 |2020年第4期|1150-1164|共15页
  • 作者单位

    IFREMER Marine Struct Lab 150 Quai Gambetta F-62200 Boulogne Sur Mer France;

    IFREMER Marine Struct Lab 150 Quai Gambetta F-62200 Boulogne Sur Mer France|Normandie Univ UNIHAVRE CNRS LOMC F-76600 Le Havre France;

    IFREMER Marine Struct Lab 150 Quai Gambetta F-62200 Boulogne Sur Mer France;

    Normandie Univ UNIHAVRE CNRS LOMC F-76600 Le Havre France;

    Normandie Univ UNIHAVRE CNRS LOMC F-76600 Le Havre France|Normandie Univ LMN INSA Rouen F-76000 Rouen France;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Marine current turbine; Performance; Wake; Turbulence; Array interaction; Experiment;

    机译:海洋目前的涡轮机;性能;唤醒;湍流;阵列相互作用;实验;

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