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An artificial neural network-based real time maximum power tracking controller for connecting a PV system to the grid

机译:基于人工神经网络的实时最大功率跟踪控制器,用于将PV系统连接到网格

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This work deals with the application of a neural network-based controller for tracking the point of maximum power of a photovoltaic (PV) system interconnected to the utility grid. The neural network is used to identify, in real time, the voltage for maximum output power of the system. The controller, through the information supplied by the neural network, generates a control signal that will be applied to a DC/DC (boost) converter in such a way to take the voltage of the system to a value which guarantees the operation of the PV system at maximum power. The boost converter duty-cycle is generated by a PI controller based on the information supplied by the neural network. In order to connect the PV system to the electric distribution system a three-phase voltage source inverter (VSI) is used operating with optimized sinusoidal PWM strategy with harmonics elimination at the output voltage up to the 17/sup th/ harmonic. The inverter uses IGBT as power switches, and is microcontroller operated.
机译:这与用于跟踪光伏(PV)系统的最大功率点处的基于神经网络的控制器的应用工作涉及互连到公用电网。神经网络被用于识别,在实时下,系统的最大输出功率的电压。的控制器,通过由神经网络提供的信息,产生将被应用到一个DC / DC(升压)转换器以这样的方式取系统的电压,以保证了PV的操作的值的控制信号系统在最大功率。该升压转换器的占空比由PI控制器基于由神经网络提供的信息生成。为了将PV系统连接到配电系统的三相电压源逆变器(VSI)是在输出电压达到17 / SUP TH /谐波使用的操作具有优化的正弦波PWM策略与谐波消除。的逆变器使用的IGBT作为功率开关,并且是由微控制器操作。

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