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首页> 外文期刊>International review of automatic control >Artificial Intelligence Based Controller for Series and Shunt Active Filters for Power Quality Improvement
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Artificial Intelligence Based Controller for Series and Shunt Active Filters for Power Quality Improvement

机译:基于人工智能的串联和并联有源滤波器控制器,用于改善电能质量

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摘要

Neural network based p-q theory control strategy for shunt active power filter and neural network based synchronous reference frame (SRF) theory control strategy for series active power filter are proposed in this paper to compensate power quality issues related to current and voltage respectively through Unified Power Quality Conditioner (UPQC) in three phase four wire (3P4W) distribution system for various balanced/unbalanced loads and balanced/unbalanced/distorted source conditions. The Artificial Neural Network (ANN) controllers are designed to replace the low pass filters (LPF) and proportional-integral controllers of the conventional control strategy. ANN controllers are also implemented to maintain voltage across the capacitor and as a compensator to compensate neutral current under varying conditions of source and load. The proposed control strategies mitigate harmonic/reactive currents and voltage harmonics, ensure balanced and sinusoidal source current from the supply mains that are nearly in phase with the supply voltage. The performance of the UPQC with proposed ANN controllers is validated and investigated through simulations using MATLAB software. The simulation results prove the efficacy of the proposed neural network based control strategy under varying source and load conditions.
机译:提出了基于神经网络的并联有源电力滤波器的pq理论控制策略和基于神经网络的串联有源电力滤波器的同步参考框架(SRF)理论控制策略,以通过统一电能质量分别补偿与电流和电压有关的电能质量问题。三相四线(3P4W)配电系统中的调节器(UPQC),用于各种平衡/不平衡负载和平衡/不平衡/失真源条件。人工神经网络(ANN)控制器旨在代替传统控制策略的低通滤波器(LPF)和比例积分控制器。 ANN控制器还用于维持电容器两端的电压,并作为补偿器在电源和负载变化的条件下补偿中性线电流。提出的控制策略可减轻谐波/无功电流和电压谐波,确保来自与电源电压几乎同相的电源干线的平衡和正弦源电流。通过使用MATLAB软件进行仿真,可以验证和研究带有建议的ANN控制器的UPQC的性能。仿真结果证明了所提出的基于神经网络的控制策略在变化的源和负载条件下的有效性。

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