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SIMPLE WAKE MODELS FOR TIDAL TURBINES IN FARM ARRANGEMENT

机译:农场布置中潮汐涡轮的简单唤醒模型

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From wind turbines it is known that the wake, induced by a turbine, has a negative impact on the energy production of downstream devices. Basically, the wake is a zone with reduced velocity behind a turbine. Further downstream, the velocity recovers gradually by turbulent mixing with the ambient flow. In order to optimize the design of a tidal farm, the aim of this paper is to find simple relations that can be used to predict the energy output of a given farm configuration. The energy output of a turbine depends on its inflow velocity. Therefore, the strategy is to find a model that is able to predict the velocity field in the tidal farm. Such 'wake models' exist already for wind turbines and thruster- thruster interaction. In this research, the applicability of these wake models to tidal turbines is investigated by comparing their results to reference data of tidal turbines. Only limited measurement data for tidal turbines are available; therefore a CFD model of a tidal turbine is used to generate the reference data. The velocity in the wake is simulated for different conditions with the CFD model. The CFD model is validated with the available data in the literature. The velocity in the wake for a single turbine is predicted accurately for different initial conditions. Modeling of the turbulence showed some discrepancies in the far wake, consequently the wake of turbines in farm configurations is predicted less accurate. Three wake models, selected from the literature, are compared to the CFD simulations of the wake behind a single turbine. The wind turbine wake model of Jensen performed best; the velocity in the wake is calculated accurate for different situations. Mutual interaction of wakes will occur inside tidal farms. Several methods from windturbines theory are used to estimate the velocity in interaction situations. Three basic situations of wake interaction are distinguished: tandem operation, wake interference and overlapping inflow. The interaction methods are tested with CFD reference data for each situation separately. Most methods compared reasonably well; the most suitable interaction methods are selected. A small tidal farm case study is performed to test the combination of wake model and interaction methods. The flow in the cluster of 5 turbines is predicted satisfactorily by the wake model for different inflow velocities. All results indicate that the principle of applying wind turbine wake models to tidal turbine has good potential. However the number of test cases conducted in the thesis is limited and the incorrect turbulence modeling of the CFD model caused some uncertainties for multiple turbine situation..
机译:从风力涡轮机得知,由涡轮机引起的尾流对下游装置的能量产生具有负面影响。基本上,尾流是涡轮机后面速度降低的区域。在更下游,速度通过与环境流的湍流混合逐渐恢复。为了优化潮汐养殖场的设计,本文的目的是找到可以用来预测给定养殖场配置的能量输出的简单关系。涡轮机的能量输出取决于其流入速度。因此,该策略是找到一个能够预测潮汐场中速度场的模型。这样的“唤醒模型”已经存在于风力涡轮机和推进器-推进器相互作用中。在这项研究中,通过将它们的结果与潮汐涡轮机的参考数据进行比较,研究了这些尾流模型对潮汐涡轮机的适用性。仅提供了潮汐涡轮机的有限测量数据。因此,潮汐涡轮机的CFD模型用于生成参考数据。使用CFD模型对不同条件下的尾流速度进行了仿真。使用文献中的可用数据验证了CFD模型。对于不同的初始条件,可以准确预测单个涡轮机的尾流速度。湍流的模型显示出远处的某些差异,因此,预测在农场配置中涡轮机的尾流的准确性较差。从文献中选择的三种尾流模型与单个涡轮机尾流的CFD模拟进行了比较。詹森(Jensen)的风力涡轮机尾流模型表现最佳;在不同情况下,精确计算出尾流中的速度。潮汐场内部将发生苏醒之间的相互影响。风的几种方法 涡轮机理论用于估计相互作用情况下的速度。区分了唤醒交互的三种基本情况:串联操作,唤醒干扰和重叠流入。每种情况的交互方法都使用CFD参考数据进行了测试。大多数方法比较合理;选择最合适的交互方法。进行了一个小型的潮汐农场案例研究,以测试唤醒模型和交互方法的组合。对于不同的流入速度,通过尾流模型可以令人满意地预测5个涡轮机簇中的流量。所有结果表明,将风力涡轮机尾流模型应用于潮汐涡轮机的原理具有良好的潜力。然而,本文进行的测试案例数量有限,CFD模型的湍流建模不正确,导致多涡轮机情况存在一些不确定性。

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