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Artificial neural network-based sensorless control of wind energy conversion system driving a permanent magnet synchronous generator

机译:基于人工神经网络的无传感器控制风能转换系统驱动永磁同步发电机

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Due to the wind characteristic, wind speed measure requires more than one sensor. However, to track the maximum power point of the wind, knowing the wind speed or mechanical speed is necessary. So, the solution is to use a sensorless control. This article is mainly focused on a sensorless control of a wind energy conversion system that employs an artificial neural network observer. The detailed mathematical model of the studied system is presented. It includes a permanent magnet synchronous generator. The contribution of the studied wind energy conversion system is to integrate a three-cell DC–DC converter. For the generation of maximum power from the wind, an algorithm to track the maximum power is developed. Then, to avoid the disadvantages of using sensors, an artificial neural network observer is implemented. The capabilities and contributions of the proposed control scheme are demonstrated by simulation results using MATLAB/Simulink.
机译:由于风特性,风速测量需要多个传感器。 然而,为了跟踪风的最大功率点,知道风速或机械速度是必要的。 因此,解决方案是使用无传感器控制。 本文主要集中在一种风能转换系统的无传感器控制,该系统采用人工神经网络观测器。 提出了研究的详细数学模型。 它包括永磁同步发电机。 研究的风能转换系统的贡献是集成三个单元DC-DC转换器。 为了产生来自风的最大功率,开发了一种跟踪最大功率的算法。 然后,为了避免使用传感器的缺点,实现了人工神经网络观察者。 通过MATLAB / SIMULINK的仿真结果证明了所提出的控制方案的能力和贡献。

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