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Application of Hopfield Neural Network for Harmonic Current Estimation and Shunt Compensation

机译:Hopfield神经网络在谐波电流估计和并联补偿中的应用

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Harmonics generated by nonlinear loads pollute the power system and affect the operation of equipment connected to it. Hence, harmonic mitigation is of prime concern to a power system engineer. Artificial Neural Network (ANN) is a nonlinear signal processing technique, which is built from interconnected elementary processors called neurons. In this article, a Hopfield Neural Network (HNN) based control algorithm for shunt compensator in a power distribution system is realized. The Hopfield network is modeled using energy minimization principle and consists of "n" interconnected neurons. The HNN is used to estimate different harmonic components present in distribution system operating with nonlinear loads. It also provides suitable control signals to the shunt compensator for compensation of various power quality issues such as power factor correction, load balancing, and harmonic reduction in the distribution system. Detailed experimental results are presented along with simulation studies on the prototype model developed in the laboratory and these results demonstrate the feasibility of the proposed method of control in DSTATCOM. The comparison of the HNN-based compensation technique with a popular and effective control algorithm based on Least Means Square (LMS) is also presented in this article.
机译:非线性负载产生的谐波会污染电力系统并影响与其连接的设备的运行。因此,谐波缓解是电力系统工程师最关心的问题。人工神经网络(ANN)是一种非线性信号处理技术,它是由称为神经元的互连基本处理器构建而成的。本文实现了一种基于Hopfield神经网络(HNN)的配电系统并联补偿器控制算法。 Hopfield网络是使用能量最小化原理建模的,由“ n”个相互连接的神经元组成。 HNN用于估计在非线性负载下运行的配电系统中存在的不同谐波分量。它还向分流补偿器提供合适的控制信号,以补偿各种电能质量问题,例如功率因数校正,负载平衡和配电系统中的谐波降低。给出了详细的实验结果以及在实验室中开发的原型模型的仿真研究,这些结果证明了DSTATCOM中所提出的控制方法的可行性。本文还介绍了基于HNN的补偿技术与基于最小均方(LMS)的流行且有效的控制算法的比较。

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