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Adaptive Selective Harmonic Minimization Based on ANNs for Cascade Multilevel Inverters With Varying DC Sources

机译:可变直流电源串级多电平逆变器的基于神经网络的自适应选择性谐波最小化

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摘要

A new approach for modulation of an 11-level cascade multilevel inverter using selective harmonic elimination is presented in this paper. The dc sources feeding the multilevel inverter are considered to be varying in time, and the switching angles are adapted to the dc source variation. This method uses genetic algorithms to obtain switching angles offline for different dc source values. Then, artificial neural networks are used to determine the switching angles that correspond to the real-time values of the dc sources for each phase. This implies that each one of the dc sources of this topology can have different values at any time, but the output fundamental voltage will stay constant and the harmonic content will still meet the specifications. The modulating switching angles are updated at each cycle of the output fundamental voltage. This paper gives details on the method in addition to simulation and experimental results.
机译:本文提出了一种采用选择性谐波消除的11级级联多电平逆变器调制的新方法。馈给多电平逆变器的直流电源被认为是随时间变化的,并且开关角度适应于直流电源的变化。该方法使用遗传算法离线获取不同直流源值的开关角度。然后,使用人工神经网络来确定与每个相位的直流电源实时值相对应的开关角度。这意味着该拓扑的每个直流电源在任何时候都可以具有不同的值,但是输出基波电压将保持恒定,并且谐波含量仍将符合规格。调制开关角度在输出基本电压的每个周期更新。除了仿真和实验结果外,本文还介绍了该方法的详细信息。

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