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A Neural Network based MPPT controller for variable speed Wind Energy Conversion Systems

机译:基于神经网络的MPPT控制器,用于变速风能转换系统

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In this paper, an Artificial Neural Network (ANN) based Maximum Power Point Tracking (MPPT) controller for Wind Energy Conversion Systems (WECS) is proposed, that achieves fast and reliable tracking of the optimum rotational speed of the turbine and accomplishes maximum power harvesting from the incident wind. The proposed control system can be implemented on any WECS and requires minimum training for the ANN as well as a small number of artificial neurons. During the training of the ANN, the WECS needs to operate simultaneously with a wind measurement system, until a sufficient amount of data is collected on all operating regions of the wind turbine and the wind turbine characteristics are determined. Next, the ANN is trained, having the rotational speed of the shaft and the power output of the generator as input signals. As a result, the wind turbine can be driven to the optimum rotor speed very fast and with high precision so as the MPPT controller can follow the fast dynamics of the wind speed. Several simulation results are presented for the validation of the effectiveness of the suggested MPPT control scheme and demonstrate the operational improvements.
机译:本文提出了一种基于人工神经网络(ANN)的风能转换系统(WECS)最大功率点跟踪(MPPT)控制器,该控制器可快速可靠地跟踪涡轮的最佳转速,并实现最大的功率收集从入射风中。所提出的控制系统可以在任何WECS上实现,并且需要对ANN以及最少数量的人工神经元进行最少的培训。在人工神经网络的训练过程中,WECS需要与风力测量系统同时运行,直到在风力涡轮机的所有运行区域上收集到足够的数据并确定了风力涡轮机的特性为止。接下来,以轴的转速和发电机的功率输出作为输入信号来训练ANN。结果,风力涡轮机可以非常快速且高精度地驱动到最佳转子速度,因此MPPT控制器可以跟随风速的快速变化。给出了几个仿真结果,以验证所建议的MPPT控制方案的有效性,并演示了操作上的改进。

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