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Combining Computational Fluid Dynamics and Gradient Boosting Regressor for Predicting Force Distribution on Horizontal Axis Wind Turbine

机译:组合计算流体动力学和梯度升压回归对水平轴风力涡轮机的预测力分布

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The blades of the horizontal axis wind turbine (HAWT) are generally subjected to significant forces resulting from the flow field around the blade. These forces are the main contributor of the flow-induced vibrations that pose structural integrity challenges to the blade. The study focuses on the application of the gradient boosting regressor (GBR) for predicting the wind turbine response to a combination of wind speed, angle of attack, and turbulence intensity when the air flows over the rotor blade. In the first step, computational fluid dynamics (CFD) simulations were carried out on a horizontal axis wind turbine to estimate the force distribution on the blade at various wind speeds and the blade’s attack angle. After that, data obtained for two different angles of attack (4° and 8°) from CFD acts as an input dataset for the GBR algorithm, which is trained and tested to obtain the force distribution. An estimated variance score of 0.933 and 0.917 is achieved for 4° and 8°, respectively, thus showing a good agreement with the force distribution obtained from CFD. High prediction accuracy and less time consumption make GBR a suitable alternative for CFD to predict force at various wind velocities for which CFD analysis has not been performed.
机译:水平轴风力涡轮机(HAWT)的叶片通常受到叶片周围的流场产生的显着力。这些力是流动引起的振动的主要因素,其对叶片构成结构完整性挑战的结构完整性挑战。该研究侧重于梯度升压回归(GBR)的应用,以预测风力涡轮机响应风速,迎角和空气在转子叶片上流动时的湍流强度的组合。在第一步中,在水平轴风力涡轮机上进行计算流体动力学(CFD)模拟,以在各种风速和刀片的攻击角度估计刀片上的力分布。之后,从CFD获得两种不同的攻击角度(4°和8°)的数据用作GBR算法的输入数据集,其培训并测试以获得力分布。估计的差异得分为0.933和0.917,分别为4°和8°,从而显示出与从CFD获得的力分布的良好一致性。高预测精度和更少的时间消耗使GBR成为CFD的合适替代方案,以预测尚未进行CFD分析的各种风速处的力。

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