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An Advanced Actuator Line Method for Wind Energy Applications and Beyond

机译:适用于风能应用的先进执行器线方法

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The actuator line method to represent rotor aerodynamics within computational fluid dynamics has been in use for more than a decade. This method applies a body force to the flow field along rotating lines corresponding to the individual rotor blades and employs tabular airfoil data to compute the force distribution. The actuator line method is attractive because, compared to blade-resolved simulations, the required mesh is much simpler and the computational cost is lower. This work proposes a higher fidelity variant of the actuator line method meant to fill the space between current actuator line and blade-resolved simulations. It contains modifications in two key areas. The first is that of freestream velocity vector estimation along the line, which is necessary to compute the lift and drag along the line using tabular airfoil data. Most current methods rely on point sampling in which the location of sampling is ambiguous. Here we test a velocity sampling method that uses a properly weighted integral over space, removing this ambiguity. The second area of improvement is the function used to project the one-dimensional actuator line force onto the three-dimensional fluid mesh as a body force. We propose and test a projection function that spreads the force over a region that looks something like a real blade with the hope that it will produce the blade local and near wake flow features with more accuracy and higher fidelity. Our goal is that with these two improvements, not only will the flow field predictions be enhanced, but also the spanwise loading will be made more accurate. We refer to this combination of improvements as the advanced actuator line method. We apply these improvements to two different wind turbine cases. Although there is a strong wind energy motivation in our work, these advanced actuator line ideas can also be used in other applications, such as helicopter rotors.
机译:在计算流体动力学中表示转子空气动力学的致动器线法已经使用了十多年。该方法将体力沿着与各个转子叶片相对应的旋转线施加到流场,并采用表格翼型数据来计算力分布。执行器线法之所以具有吸引力,是因为与刀片解析模拟相比,所需的网格更加简单,并且计算成本更低。这项工作提出了一种更高逼真度的执行器线方法,旨在填补当前执行器线和刀片解析模拟之间的空间。它包含两个关键方面的修改。首先是沿线的自由流速度矢量估计,这对于使用表格翼型数据计算沿线的升力和阻力是必要的。当前大多数方法依赖于采样位置不明确的点采样。在这里,我们测试了一种速度采样方法,该方法在空间上使用适当加权的积分,从而消除了这种歧义。改进的第二个方面是用于将一维执行机构线力作为体力投影到三维流体网格上的功能。我们提出并测试了一种投影函数,该函数可以将力分散在看起来像真实叶片的区域上,希望它可以更精确和更高保真度地产生叶片局部和近尾流特征。我们的目标是通过这两个改进,不仅可以增强流场预测,而且可以使跨向载荷更加准确。我们将这种改进的组合称为高级执行器线方法。我们将这些改进应用于两种不同的风力涡轮机案例。尽管我们的工作中有强大的风能动力,但是这些先进的执行器系列构想也可以用于其他应用中,例如直升机旋翼。

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