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A Two-Bladed Teetering Hub configuration for the DTU 10 MW RWT: loads considerations

机译:用于DTU 10 mW RWT的双叶片摇摆轮毂配置:负载考虑因素

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摘要

As the size of wind turbine rotors continuously grows, the need for innovative solutions that would yield to lighter rotor configurations becomes more urgent. Traditional wind turbine designs have favored the classic three-bladed upwind rotor configuration. This work presents instead a concept study on an alternative downwind two-bladed rotor configuration.The study is based on a model representative of next generation multi-MW wind turbines: the DTU 10-MW Reference Wind Turbine (RWT). As a first design iteration, the aerodynamic characteristics of the original rotor are maintained, and the rotor solidity is kept constant by increasing the blade chord by 50 %. The configuration allows saving 30 % of the rotor weight and material, corresponding to one blade, but implies several complications: lower power output due to increased tip losses effects, and increased load variations. The increase in load variations, and hence in fatigue damage, affects the turbine blades, shaft and tower, and originates from the aerodynamic unbalance on the rotor, as well as from aeroelastic interaction with the tower frequency.To mitigate the load amplification caused by the interaction between the tower frequency and the rotational forcing, the tower mode frequency is lowered with a modified tower stiffness distributions. The loads caused by the aerodynamic unbalance are instead addressed by introducing a teetering hub configuration. The load alleviation potential of the teetering hub, and the required teeter angle range are evaluated for different stiffness values of the teeter bearing.
机译:随着风力涡轮机转子尺寸的不断增长,对创新解决方案的需求变得迫在眉睫,这些解决方案将使转子结构更轻。传统的风力涡轮机设计偏爱经典的三叶片逆风转子配置。这项工作取而代之的是替代顺风两叶转子配置的概念研究,该研究基于代表下一代多兆瓦风力涡轮机的模型:DTU 10兆瓦参考风力涡轮机(RWT)。在第一次设计迭代中,保持原始转子的空气动力学特性,并通过将叶片弦长增加50%,使转子的坚固性保持恒定。该配置可节省相当于一个叶片的30%的转子重量和材料,但是却带来了一些复杂性:由于叶尖损失效应增加而导致的功率输出降低,以及负载变化增加。载荷变化的增加以及由此造成的疲劳损伤会影响涡轮机叶片,轴和塔架,并且起因于转子上的空气动力学不平衡以及与塔架频率的气动弹性相互作用。在塔架频率和旋转力之间相互作用的情况下,通过修改塔架刚度分布来降低塔架模式频率。相反,通过引入摇摆的轮毂配置来解决由空气动力不平衡引起的负载。针对跷跷板轴承的不同刚度值,评估了跷跷板轮毂的减轻负荷的潜力以及所需的跷跷板角度范围。

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