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An actuator line - immersed boundary method for simulation of multiple tidal turbines

机译:多种潮汐涡轮机的激励器线浸入边界法。

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This work proposes an efficient actuator line - immersed boundary (AL-IB) method to predict the wake of multiple horizontal-axis tidal turbines (HATTs). A sharp IB method with a simple adaptive mesh refinement strategy is used to improve the computational efficiency. The velocity and other scalar fields adjacent to the solid surface are reconstructed by a moving least square (MLS) interpolation. A computationally efficient AL model is applied to represent the rotors by adding source term to the governing equation rather than resolving the fully geometry of the blade. To predict the turbulent wake, the AL-IB method is implemented with an unsteady Reynolds-averaged Navier-Stokes (URANS) solver. Performance of three types of turbulence models, k - omega - SST model, standard and corrected k - omega model are evaluated. An efficient wall function model is proposed for the MLS-IB approach. The accuracy of the present AL-IB method is validated by numerical tests of a single rotor and multiple tandem arranged IFREMER rotors [1,2]. Wake interference of Manchester rotors [3] with side by side arrangement is also investigated numerically. The predicted wake velocity and turbulence intensity (TI) are in reasonably good agreement with the experimental results. (C) 2019 Elsevier Ltd. All rights reserved.
机译:这项工作提出了一种有效的执行器线-浸入边界(AL-IB)方法来预测多个水平轴潮汐涡轮机(HATT)的尾流。使用具有简单自适应网格细化策略的尖锐IB方法来提高计算效率。通过移动最小二乘(MLS)插值重建与固体表面相邻的速度场和其他标量场。通过将源项添加到控制方程中,而不是解析叶片的完整几何形状,可以应用计算有效的AL模型来表示转子。为了预测湍流的尾流,AL-IB方法是使用非稳态雷诺平均Navier-Stokes(URANS)求解器实现的。评估了三种湍流模型的性能,即k-omega-SST模型,标准湍流模型和校正后的k-omega模型。针对MLS-IB方法,提出了一种有效的墙函数模型。通过单个转子和多个串联的IFREMER转子的数值测试[1,2],验证了当前AL-IB方法的准确性。并排研究了曼彻斯特转子[3]并排布置的尾流干扰。预计的尾流速度和湍流强度(TI)与实验结果相当吻合。 (C)2019 Elsevier Ltd.保留所有权利。

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