15 兆瓦浮式海上风力涡轮机的激光雷达辅助前馈单独变桨控制

IF 4 3区 工程技术 Q3 ENERGY & FUELS Wind Energy Pub Date : 2024-01-10 DOI:10.1002/we.2891
A. Russell, M. Collu, A. McDonald, P. Thies, Aidan M. Keane, A. R. Quayle
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引用次数: 0

摘要

机舱安装的前向光探测和测距(激光雷达)技术可在高于额定风速的条件下协助进行叶片俯仰控制,从而实现浮式海上风力涡轮机(FOWT)的转子速度调节和减载。由于转子掠过区域的风廓线存在差异,大型风力涡轮机的结构负载可能会出现显著变化。这些载荷波动可以通过单个变桨控制(IPC)来缓解。本文介绍了一种新颖的激光雷达辅助前馈 IPC 方法,该方法使用每个叶片的转子方位角位置来分配来自多波束激光雷达的单个变桨指令。在这项研究中,对 OpenFAST 风机建模软件的源代码进行了修改,以实现激光雷达模拟和激光雷达辅助控制。激光雷达仿真修改已被美国国家可再生能源实验室(NREL)接受,目前已应用于 OpenFAST 3.5 版以后的版本中。对 15 兆瓦 FOWT 进行了上述额定风速范围内的模拟。在平均风速为 17 ms-1 的湍流风场下,激光雷达辅助前馈 IPC 可将 FOWT 关键参数的均方根误差和标准偏差降低 54%。相对于基线反馈控制器,前馈工控机比前馈集体俯仰控制最多提高了 12%。转子速度标准偏差和范围的减小可实现塔筒结构的优化,而载荷变化的减小则可减少涡轮机部件的疲劳损坏,从而降低维护成本。
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LIDAR‐assisted feedforward individual pitch control of a 15 MW floating offshore wind turbine
Nacelle‐mounted, forward‐facing light detection and ranging (LIDAR) technology can deliver benefits to rotor speed regulation and loading reductions of floating offshore wind turbines (FOWTs) when assisting with blade pitch control in above‐rated wind speed conditions. Large‐scale wind turbines may be subject to significant variations in structural loads due to differences in the wind profile across the rotor‐swept area. These loading fluctuations can be mitigated by individual pitch control (IPC). This paper presents a novel LIDAR‐assisted feedforward IPC approach that uses each blade's rotor azimuth position to allocate an individual pitch command from a multi‐beam LIDAR. In this study, the source code of OpenFAST wind turbine modelling software was modified to enable LIDAR simulation and LIDAR‐assisted control. The LIDAR simulation modifications were accepted by the National Renewable Energy Laboratory (NREL) and are now present within OpenFAST releases from v3.5 onwards. Simulations of a 15 MW FOWT were performed across the above‐rated wind spectrum. Under a turbulent wind field with an average wind speed of 17 ms−1, the LIDAR‐assisted feedforward IPC delivered up to 54% reductions in the root mean squared errors and standard deviations of key FOWT parameters. Feedforward IPC delivered enhancements of up to 12% over feedforward collective pitch control, relative to the baseline feedback controller. The reductions to the standard deviation and range of the rotor speed may enable structural optimization of the tower, while the reductions in the variations of the loadings present an opportunity for reduced fatigue damage on turbine components and, consequently, a reduction in maintenance expenditure.
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来源期刊
Wind Energy
Wind Energy 工程技术-工程:机械
CiteScore
9.60
自引率
7.30%
发文量
0
审稿时长
6 months
期刊介绍: Wind Energy offers a major forum for the reporting of advances in this rapidly developing technology with the goal of realising the world-wide potential to harness clean energy from land-based and offshore wind. The journal aims to reach all those with an interest in this field from academic research, industrial development through to applications, including individual wind turbines and components, wind farms and integration of wind power plants. Contributions across the spectrum of scientific and engineering disciplines concerned with the advancement of wind power capture, conversion, integration and utilisation technologies are essential features of the journal.
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