首页> 外文期刊>Iranian Journal of Science and Technology, Transactions of Electrical Engineering >Artificial Neural Network-Based Pi-Controlled Reduced Switch Cascaded Multilevel Inverter Operation in Wind Energy Conversion System with Solid-State Transformer
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Artificial Neural Network-Based Pi-Controlled Reduced Switch Cascaded Multilevel Inverter Operation in Wind Energy Conversion System with Solid-State Transformer

机译:固态变压器的风能转换系统中基于人工神经网络的Pi控制的降压开关级联多电平逆变器运行

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摘要

In this manuscript, artificial neural network PI (ANN-PI)-based controller is presented for a reduced switch cascaded multilevel inverter (RSCMLI) applied to wind energy conversion system (WECS) integrated with a solid-state transformer (SST). To improve the power quality by harmonic reduction, a seven-level RSCMLI is proposed. The utility-side parameters and the dc-link voltage of the inverter are regulated by fuzzy logic and ANN-PI-based controller, respectively. For better operational benefits, SST is applied in the distribution system instead of grid-side converter. The two objectives such as real power control and the reactive power support are provided by the machine interface converter and grid interface converter components of SST, respectively, particularly under insufficient wind energy generation condition. The proposed approach performs seamless fault ride through operation, by following the standard grid code requirements of WECS even under symmetrical and unsymmetrical fault condition. The efficacy of the proposed approach is validated by comparing the results with the PI-controlled conventional inverter under normal, symmetrical and unsymmetrical fault mode of operation.
机译:在此手稿中,针对减少的开关级联多电平逆变器(RSCMLI),提出了基于人工神经网络PI(ANN-PI)的控制器,该逆变器应用于集成了固态变压器(SST)的风能转换系统(WECS)。为了通过降低谐波来改善电能质量,提出了一种七电平的RSCMLI。逆变器的市电侧参数和直流母线电压分别由模糊逻辑和基于ANN-PI的控制器进行调节。为了获得更好的运行效益,在配电系统中应采用SST代替电网侧变流器。 SST的机器接口转换器和电网接口转换器组件分别提供了两个目标,例如有功功率控制和无功功率支持,特别是在风能发电不足的情况下。通过遵循WECS的标准网格规范要求,即使在对称和非对称故障条件下,提出的方法也可以实现无缝故障穿越。通过将结果与PI控制的常规逆变器在正常,对称和非对称故障操作模式下进行比较,可以验证所提出方法的有效性。

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