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Nonlinear aeroelastic modelling for wind turbine blades based on blade element momentum theory and geometrically exact beam theory

机译:基于叶片单元动量理论和几何精确梁理论的风力涡轮机叶片非线性气动弹性建模

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摘要

Due to the increasing size and flexibility of large wind turbine blades, accurate and reliable aeroelastic modelling is playing an important role for the design of large wind turbines. Most existing aeroelastic models are linear models based on assumption of small blade deflections. This assumption is not valid anymore for very flexible blade design because such blades often experience large deflections. In this paper, a novel nonlinear aeroelastic model for large wind turbine blades has been developed by combining BEM (blade element momentum) theory and mixed-form formulation of GEBT (geometrically exact beam theory). The nonlinear aeroelastic model takes account of large blade deflections and thus greatly improves the accuracy of aeroelastic analysis of wind turbine blades. The nonlinear aeroelastic model is implemented in COMSOL Multiphysics and validated with a series of benchmark calculation tests. The results show that good agreement is achieved when compared with experimental data, and its capability of handling large deflections is demonstrated. Finally the nonlinear aeroelastic model is applied to aeroelastic modelling of the parked WindPACT 1.5 MW baseline wind turbine, and reduced flapwise deflection from the nonlinear aeroelastic model is observed compared to the linear aeroelastic code FAST (Fatigue, Aerodynamics, Structures, and Turbulence).
机译:由于大型风力涡轮机叶片尺寸的增加和灵活性的提高,准确可靠的气动弹性建模在大型风力涡轮机的设计中起着重要的作用。大多数现有的气动弹性模型都是基于小叶片挠度假设的线性模型。对于非常灵活的叶片设计,该假设不再有效,因为此类叶片通常会经历较大的挠曲。本文通过结合BEM(叶片单元动量)理论和GEBT(几何精确梁理论)的混合形式公式,开发了一种用于大型风力涡轮机叶片的新型非线性气动弹性模型。非线性气动弹性模型考虑了较大的叶片挠度,因此大大提高了风力涡轮机叶片气动弹性分析的准确性。非线性气动弹性模型在COMSOL Multiphysics中实现,并通过一系列基准计算测试进行了验证。结果表明,与实验数据相比,可以达到很好的一致性,并证明了其处理大挠度的能力。最后,将非线性气动弹性模型应用于停放的WindPACT 1.5 MW基准风力涡轮机的气动弹性模型,与线性气动弹性代码FAST(疲劳,空气动力学,结构和湍流)相比,可以观察到非线性气动弹性模型产生的襟翼偏转减小。

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