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Inclusion of a Simple Dynamic Inflow Model in the Blade Element Momentum Theory for Wind Turbine Application

机译:风力机应用叶片要素动量理论中包含简单的动态流入模型

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It is well established that the power generated by a Horizontal-Axis Wind Turbine (HAWT) is a function of the number of blades B, the tip speed ratio λ_r (blade tip speed/wind free-stream velocity) and the lift to drag ratio (C_L/C_D) of the airfoil sections of the blade. The previous studies have shown that Blade Element Momentum (BEM) theory is capable of evaluating the steady-state performance of wind turbines, in particular it can provide a reasonably good estimate of generated power at a given wind speed. However in more realistic applications, wind turbine operating conditions change from time to time due to variations in wind velocity and the aerodynamic forces change to new steady-state values after the wake settles to a new equilibrium whenever changes in operating conditions occur. The goal of this paper is to modify the quasi-steady BEM theory by including a simple dynamic inflow model to capture the unsteady behavior of wind turbines on a larger time scale. The output power of the wind turbines is calculated using the improved BEM method incorporating the inflow model. The computations are performed for the original NREL Phase II and Phase III turbines and the Risoe turbine all employing the S809 airfoil section for the turbine blades. It is shown by a simple example that the improved BEM theory is capable of evaluating the wind turbine performance in practical situations where operating conditions often vary in time.
机译:公认的是,水平轴风力发电机(HAWT)产生的功率是叶片B数量,叶尖速度比λ_r(叶尖速度/风自由流速度)和升阻比的函数。叶片翼型部分的(C_L / C_D)。先前的研究表明,叶片单元动量(BEM)理论能够评估风力涡轮机的稳态性能,特别是它可以在给定风速下提供合理的发电量估计。然而,在更现实的应用中,由于风速的变化,风力涡轮机的运行条件会不时变化,并且一旦运行条件发生变化,在尾流达到新的平衡之后,空气动力就会变为新的稳态值。本文的目的是通过包括一个简单的动态流入模型来捕获较大时间范围内风力涡轮机的非稳态行为,从而修改准稳态BEM理论。使用结合了流入模型的改进的BEM方法来计算风力涡轮机的输出功率。计算是针对原始的NREL II和III期涡轮机以及Risoe涡轮机进行的,所有涡轮机叶片均采用S809翼型截面。通过一个简单的示例表明,改进的BEM理论能够在实际运行条件经常随时间变化的实际情况下评估风力涡轮机的性能。

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