A Virtual Actuator for Advanced Individual Pitch Control (IPC)

T. Hovgaard, F. Caponetti, J. D. Grunnet
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Abstract

We present a virtual actuator concept for wind turbine control, wherein rotor force and moment references from various controllers are optimally combined to compute individual blade pitch angles. The approach aims to minimize pitch bearing wear, too. The combined references can come from known control algorithms such as speed regulation, tilt-yaw control, tower dampening and helical wake control [3]. We formulate this as an optimization problem which we solve in an MPC fashion, however, instead of the usual prediction horizon over time, we use a discretized azimuth map as our finite horizon. Serving as a unified interface for all control features utilizing individual pitching, the virtual actuator replaces the plethora of multi-blade transformations and gain-scheduling functions in traditional IPC with one coherent function. Users can directly prioritize features and input constraints on actuators and structural loads. Notably, upstream control algorithms provide rotor force or moment references rather than pitch references. Simulations showcase the virtual actuator’s ability to compute intricate pitch trajectories, surpassing the capabilities of conventional IPC methods. Our method yields novel individual pitching which optimally merges conflicting IPC objectives while minimizing actuator wear.
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用于高级单独螺距控制 (IPC) 的虚拟执行器
我们提出了一种用于风力涡轮机控制的虚拟执行器概念,将来自不同控制器的转子力和力矩参考进行优化组合,以计算单个叶片的桨距角。该方法还旨在最大限度地减少变桨轴承磨损。组合参考可来自已知的控制算法,如速度调节、倾斜-偏航控制、塔架阻尼和螺旋尾流控制 [3]。我们将其表述为一个优化问题,并以 MPC 方式加以解决,不过,我们使用离散化的方位角图作为有限视界,而不是通常的时间预测视界。作为利用单个俯仰的所有控制功能的统一界面,虚拟执行器用一个连贯的功能取代了传统 IPC 中大量的多叶片变换和增益调度功能。用户可以直接对功能进行优先排序,并对致动器和结构载荷输入约束条件。值得注意的是,上游控制算法提供的是转子力或力矩参考,而不是螺距参考。模拟展示了虚拟致动器计算复杂变桨轨迹的能力,超越了传统 IPC 方法的能力。我们的方法能产生新颖的单个变桨,优化合并相互冲突的 IPC 目标,同时最大限度地减少致动器磨损。
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CiteScore
1.20
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