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首页> 外文期刊>Electric Power Components and Systems >Implementation Of A Neural-network-basedspace-vector Pulse-width Modulationrnfor A Three-phase Neutral-point Clampedrnhigh-power Factor Converter
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Implementation Of A Neural-network-basedspace-vector Pulse-width Modulationrnfor A Three-phase Neutral-point Clampedrnhigh-power Factor Converter

机译:三相中性点钳位高功率因数变换器的基于神经网络的空间矢量脉宽调制的实现

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摘要

In this article, an artificial neural-network-based implementation of space-vector pulse-width modulation of a three-phase neutral-point clamped bidirectional converter with improved power quality is proposed. The neural-network-based controller offers the advantage of very fast implementation of the space-vector pulse-width modulation algorithm. This makes it possible to use an application-specific integrated circuit chip in place of a digital signal processor. The proposed scheme employs a three-layer feed-forward neural network, which receives the command voltage and angle information at the input and generates symmetrical pulse-width modulation waves for three phases of the converter with the help of a single timer and some simple logic circuits. The neural-network-based modulator distributes the switching states in such a way so as to balance the neutral-point voltage. The data to be used to train the network by a back-propagation algorithm are generated by simulating the conventional space-vector modulation-based converter for simulation and by experimentally running the space-vector modulation-based converter using a digital signal processor for experimentation. The performance of a neutral-point clamped bidirectional rectifier has been evaluated with the artificial neural-network-based modulator. The simulation results obtained are validated experimentally using a digital signal processor(DS1104) ofdSPACE(dSpace, Germany). The results obtained show an excellent performance of the neural-network-based modulator.
机译:在本文中,提出了一种基于人工神经网络的三相中性点钳位双向转换器的空间矢量脉宽调制的实现,具有改善的电能质量。基于神经网络的控制器具有可以非常快速地实现空间矢量脉宽调制算法的优势。这使得可以使用专用集成电路芯片代替数字信号处理器。所提出的方案采用三层前馈神经网络,该网络在输入端接收命令电压和角度信息,并借助单个计时器和一些简单的逻辑为转换器的三相生成对称的脉宽调制波电路。基于神经网络的调制器以平衡中性点电压的方式分配开关状态。通过模拟传统的基于空间矢量调制的转换器进行仿真,以及通过使用数字信号处理器进行实验来运行基于空间矢量调制的转换器,可以生成用于通过反向传播算法训练网络的数据。已使用基于人工神经网络的调制器评估了中性点钳位双向整流器的性能。使用dSPACE(dSpace,德国)的数字信号处理器(DS1104)对所获得的仿真结果进行了实验验证。获得的结果显示了基于神经网络的调制器的出色性能。

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