首页> 外文会议>2018 IEEE 59th International Scientific Conference on Power and Electrical Engineering of Riga Technical University >Artificial Neural-Network-Based Maximum Power Point Tracking for Photovoltaic Pumping System Using Backstepping Controller
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Artificial Neural-Network-Based Maximum Power Point Tracking for Photovoltaic Pumping System Using Backstepping Controller

机译:基于神经网络的光伏泵送系统最大功率点跟踪

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摘要

This paper investigates a comparative analysis of control methods to achieve an optimal photovoltaic (PV) module output voltage and to track the maximum power point (MPP) of the PV system under variable conditions such as temperature, solar irradiance, and load changes, with the help of an offline trained actificial neural (ANN) network. The trained ANN provides the reference voltage corresponding to the MPP for the feed-forward loop which is responsible for regulation of the solar cell array voltage in MPP. The PV system consists of a solar module and a boost DC/DC converter connected to a DC motor which feeds a centrifugal pump for water pumping. Depending on the voltage error signal, the controllers generate a control signal for the pulse-width modulation (PWM) generator which in turn adjusts the duty cycle of the converter. For this purpose first, the proportional-integral (PI) controller is used. Next controllers are based on backstepping approach and the backstepping with integral action. Different simulation tests using Maltab/Simulink environment are given to demonstrate the efficiency of the controllers in presence of the irradiance perturbations.
机译:本文研究了控制方法的比较分析,以实现最佳的光伏(PV)模块输出电压并跟踪温度,太阳辐照度和负载变化等可变条件下光伏系统的最大功率点(MPP),随着温度的升高,离线训练的主动神经(ANN)网络的帮助。训练后的人工神经网络为前馈回路提供与MPP对应的参考电压,该前馈回路负责调节MPP中的太阳能电池阵列电压。该光伏系统包括一个太阳能模块和一个与直流电动机相连的升压DC / DC转换器,该直流电动机为离心泵供水。取决于电压误差信号,控制器生成用于脉宽调制(PWM)发生器的控制信号,该信号进而调整转换器的占空比。为此,首先使用比例积分(PI)控制器。下一控制器基于后推方法和具有整体作用的后推。给出了使用Maltab / Simulink环境的不同模拟测试,以证明存在辐照扰动时控制器的效率。

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