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Computationally Inexpensive Approach for Pitch Control of Offshore Wind Turbine on Barge Floating Platform

机译:驳船浮动平台上海上风力涡轮机俯仰控制的计算上廉价的方法

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Offshore floating wind turbine (OFWT) has gained increasing attention during the past decade because of the offshore high-quality wind power and complex load environment. The control system is a tradeoff between power tracking and fatigue load reduction in the above-rated wind speed area. In allusion to the external disturbances and uncertain system parameters of OFWT due to the proximity to load centers and strong wave coupling, this paper proposes a computationally inexpensive robust adaptive control approach with memory-based compensation for blade pitch control. The method is tested and compared with a baseline controller and a conventional individual blade pitch controller with the “NREL offshore 5 MW baseline wind turbine” being mounted on a barge platform run on FAST and Matlab/Simulink, operating in the above-rated condition. It is shown that the advanced control approach is not only robust to complex wind and wave disturbances but adaptive to varying and uncertain system parameters as well. The simulation results demonstrate that the proposed method performs better in reducing power fluctuations, fatigue loads and platform vibration as compared to the conventional individual blade pitch control.
机译:由于海上的高质量风力和复合负荷环境,近年来,海上浮动风力涡轮机(OFWT)在过去十年中取得了越来越长的关注。控制系统是上述风速区域的功率跟踪和疲劳负载之间的折衷。旨在通过WT的外部干扰和不确定的系统参数由于负载中心和强波耦合,提出了一种计算廉价的鲁棒自适应控制方法,具有基于存储器的叶片间距控制的补偿。测试该方法并与基线控制器和传统的单个刀片间距控制器进行比较,其具有在快速和MATLAB / Simulink上运行的驳船平台上安装在驳船平台上的“NRES Offshore 5 MW基线风力涡轮机”,以上述条件运行。结果表明,先进的控制方法不仅坚固地对复杂的风和波浪紊乱,而且对系统参数的变化和不确定的系统参数进行了适应性。仿真结果表明,与传统的单独刀片间距控制相比,所提出的方法在减少功率波动,疲劳负载和平台振动方面更好地执行。

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