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Adapted two-equation turbulence closures for actuator disk RANS simulations of wind & tidal turbine wakes

机译:适应性的两方程式湍流闭塞器,用于风轮机和潮汐机尾流的致动器盘RANS仿真

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Reliable methods for modelling wake recovery within a farm of wind or tidal turbines are critical for obtaining accurate estimates of annual energy production, and for detailed farm layout optimization. These are important objectives for maximizing energy yield while minimizing costs. Computational fluid dynamics (CFD) simulation is rapidly being adopted as a tool for flow modelling in wind and tidal farms, gaining favour over more traditional and simpler empirically-determined wake models. The most practical methodology for CFD simulations of turbine farms uses an actuator disk (AD) representation for each rotor, which imposes the rotor forces by adding source terms to the governing equations rather than explicitly resolving the flow over the turbine blades. It is well understood that when using the AD approach, standard turbulence models tend to predict faster wake recovery than is observed in real flows. Thus, the standard CFD turbulence models must be adapted for use with the AD methodology. Additionally, because of the manner in which the AD approach distributes the rotor forces, it cannot resolve the system of discrete vortices trailed from the blade tips.
机译:建模风电场或潮汐能涡轮机中尾流恢复的可靠方法对于获得准确的年度能源产量估算和详细的发电场布局优化至关重要。这些是在最大程度地降低能耗的同时最大程度提高能源产量的重要目标。计算流体动力学(CFD)模拟正在迅速被用作风能和潮汐流场中流量模型的工具,从而赢得了较传统的和更简单的凭经验确定的尾流模型的青睐。用于涡轮机场的CFD模拟的最实用方法是为每个转子使用执行器盘(AD)表示,通过在控制方程式中添加源项来施加转子力,而不是显式地解析涡轮叶片上的流量。众所周知,当使用AD方法时,标准湍流模型往往比实际流动中的湍流恢复更快。因此,标准的CFD湍流模型必须适合与AD方法一起使用。另外,由于AD方法分配转子力的方式,它无法解决从叶片尖端拖曳的离散涡流系统。

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