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Fault-tolerant Individual Pitch Control using Adaptive Sliding Mode Observer

机译:使用自适应滑模观测器的容错单独俯仰控制

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Due to the increasing size of wind turbines, the unbalanced loads caused by the uneven spatial distribution of wind speed and turbulence are becoming larger and larger. As has been proved, individual pitch control (IPC) can mitigate the blade asymmetric loads greatly in region 3. On the other hand, the pitch actuator faults can affect the pitching performance with slow dynamics, resulting in generator power instability and even deteriorating the unbalanced loads of blades. However, the effects of unbalanced blade loads deterioration caused by pitch actuator faults have not been taken into account by the traditional IPC design. In the present paper, a fault-tolerant control (FTC) strategy using adaptive sliding mode estimation is combined with a traditional IPC system based on two different control methods (Proportional-Integral andH∞loop-shaping). It maintains the nominal pitch performance and removes the negative effects of pitch actuator faults on generator power and unbalanced blade loads perfectly. The effectiveness of the proposed strategy is verified on the 5MW NREL wind turbine system.
机译:由于风力涡轮机的较大量增加,由风速和湍流的不均匀空间分布引起的不平衡载荷变得越来越大。正如已知的那样,单个俯仰控制(IPC)可以在区域3中大大减轻刀片不对称负荷。另一方面,俯仰执行器故障可能会影响慢动力学的俯仰性能,导致发电机功率不稳定,甚至恶化不平衡刀片的负荷。然而,传统的IPC设计尚未考虑由音高致动器故障引起的不平衡刀片负载损坏的影响。在本文中,使用自适应滑模估计的容错控制(FTC)策略基于两种不同的控制方法(比例整体andh∞looping)与传统的IPC系统相结合。它保持了标称间距性能,并完全消除了发电机电源和不平衡刀片负载上的俯仰执行器故障的负面影响。拟议策略的有效性在5MW NREL风力涡轮机系统上验证。

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