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Toward an engineering model for the aerodynamic forces acting on wind turbine blades in quasisteady standstill and blade installation situations

机译:在quasisteady静止和叶片安装情况下,作用于风力涡轮机叶片的空气动力的工程模型

摘要

The crossflow principle is one of the key elements used in engineering models for prediction of the aerodynamic loads on wind turbine blades in standstill or blade installation situations, where the flow direction relative to the wind turbine blade has a component in the direction of the blade span direction. In the present work, the performance of the crossflow principle is assessed on the DTU 10MW reference blade using extensive 3D CFD calculations. Analysis of the computational results shows that there is only a relatively narrow region in which the crossflow principle describes the aerodynamic loading well. In some conditions the deviation of the predicted loadings can be quite significant, having a large influence on for instance the integral aerodynamic moments around the blade centre of mass; which is very important for single blade installation applications. The main features of these deviations, however, have a systematic behaviour on all force components, which in this paper is employed to formulate the first version of an engineering correction method to the crossflow principle applicable for wind turbine blades. The new correction model improves the agreement with CFD results for the key aerodynamic loads in crossflow situations. The general validity of this model for other blade shapes should be investigated in subsequent works.
机译:横流原理是工程模型中用于预测静止或叶片安装情况下风力涡轮机叶片上的空气动力负荷的关键要素之一,其中相对于风力涡轮机叶片的流向在叶片跨度方向上具有分量方向。在当前工作中,使用大量3D CFD计算在DTU 10MW参考叶片上评估了横流原理的性能。对计算结果的分析表明,仅存在一个相对狭窄的区域,在该区域中,横流原理很好地描述了空气动力载荷。在某些情况下,预计载荷的偏差可能非常显着,例如对叶片质心周围的整体空气动力学力矩有很大影响;这对于单刀片安装应用程序非常重要。但是,这些偏差的主要特征是在所有力分量上都有系统的行为,在本文中,这些行为被用来制定适用于风力涡轮机叶片的贯流原理的第一版工程校正方法。新的校正模型改善了与CFD结果在横流情况下关键气动载荷的一致性。此模型对其他叶片形状的一般有效性应在后续工作中进行研究。

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