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Vibration and power regulation control of a floating wind turbine with hydrostatic transmission

机译:散流传动浮动风力涡轮机的振动和功率调节控制

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We design a blade pitch controller employing linear parameter-varying (LPV) synthesis techniques for a floating hydrostatic wind turbine (HWT) with a barge platform, which is based on the LIDAR (Light Detection and Ranging) preview on the wind speed. The developed control system can simultaneously reduce barge pitch motions and regulate the power in Region 3. These two functions would normally disturb each other if designed separately. The state space model is not affinely dependent on the wind speed thus the LPV controller is obtained by satisfying multiple LMIs evaluated at a set of gridded points within the wind speed range in Region 3. An anti-windup compensation scheme is then used to improve the LPV controller's performance when the pitch undergoes saturation around the rated wind speed. The simulations based on a high-fidelity barge HWT model show that our pitch controller significantly reduces barge pitch motions, loads on blade bearings & tower, and generator power fluctuations, compared with a gain-scheduled PI pitch controller. (c) 2020 Elsevier Ltd. All rights reserved.
机译:我们设计了一种具有线性参数变化(LPV)合成技术的刀片间距控制器,用于浮动静压风力涡轮机(HWT),该驳船平台基于LIDAR(光检测和测距)预览。开发的控制系统可以同时减少驳船俯仰运动并调节区域3中的电力。如果单独设计,这两个功能通常会彼此打扰。状态空间模型并不依赖于风速,因此通过满足在区域3中的风速范围内的一组网格点评价的多个LMI来获得LPV控制器。然后使用抗卷绕补偿方案来改善LPV控制器的性能在俯仰围绕额定风速饱和时。基于高保真驳船HWT模型的模拟表明,与增益预定的PI音调控制器相比,我们的音高控制器显着降低了驳船螺距运动,叶片轴承和塔架上的负载,以及发电机功率波动。 (c)2020 elestvier有限公司保留所有权利。

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