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Assessment of load reduction capabilities using passive and active control methods on a 10MW-scale wind turbine

机译:在10MW级风力涡轮机上使用被动和主动控制方法评估负载减少能力

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In the paper, the potential to alleviate wind turbine loads through combined implementation of different passive and active control methods is assessed. Passive control of loads is accomplished through blade designs with build in material and/or geometric bend-twist coupling (BTC). The first is materialized by introducing an offset angle on the plies of the uni-directional material over the spar caps of the blade, while the latter by sweeping the blade elastic axis with respect to the pitch axis. Active control of loads is considered through individual pitch control (IPC) or concurrent use of individual pitch and flap control (IPC+IFC). Different combinations of the abovementioned techniques are tested in the paper with the aim to obtain maximum possible load reduction levels but also confine key design parameters of the various methods within reasonable limits that by no means exceed manufacturing constraints. The performance of the different control options is assessed through aeroelastic simulations for the 10MW DTU Reference Wind Turbine (RWT). A subset of representative fatigue and ultimate design load cases (DLCs) of the IEC is simulated and load reduction levels are assessed with respect to the baseline RWT configuration with no aeroelastic control of loads.
机译:在本文中,评估了通过组合实施不同被动和主动控制方法的混合实施来缓解风力涡轮机负荷的潜力。通过具有材料和/或几何弯曲扭转耦合(BTC)构建的叶片设计来实现负载的被动控制。首先通过在刀片的翼梁盖上在单向材料的层上引入偏移角来实现,而后者通过扫过刀片弹性轴相对于俯仰轴来实现。通过单个音调控制(IPC)或同时使用单个间距和襟翼控制(IPC + IFC)来考虑负载的主动控制。在纸上测试上述技术的不同组合,目的是获得最大可能的负载减少水平,而且在合理的限制内限制各种方法的关键设计参数,绝不是超过制造限制。通过10MW DTU参考风力涡轮机(RWT)的气动弹性来评估不同控制选项的性能。模拟IEC的代表性疲劳和最终设计负载箱(DLC)的子集并相对于基线RWT配置评估负载降低水平,而没有负载的空气弹性控制。

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