一种可抑制谐波和间谐波的智能有源电力滤波器

Ahmadreza Eslami, M. Negnevitsky, E. Franklin, S. Lyden
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引用次数: 0

摘要

谐波和波形失真是高可再生能源发电渗透率和非线性负荷的电力系统的重要电能质量问题。由于电力负荷和设备的高谐波注入,为了电网的有效和正常运行,谐波和间谐波应该得到缓解。本文提出了一种基于自适应线性神经元(Adaline)的智能有源电力滤波器(APF),该滤波器在不需要预先知道谐波阶数和谐波间阶数的情况下,能够实时进行准确的谐波估计和适当的谐波抑制。提出了一种新的模型,并将动量自适应学习用于训练。所提出的APF不仅继承了Adaline APF的高适应性,而且通过在未知频率阶存在时更新权值来弥补其缺点。此外,提出了一种电拓扑,其中一个APF能够减轻连接到两个相邻的共耦合点(PCCs)的非线性负载的谐波。对于径向结构,来自电网的谐波电流被完全缓解,而对于环形结构,只有来自电网一侧的谐波被缓解。研究了高度变化和扭曲的荷载情景。将所提出的APF与文献中最先进的APF进行比较,证明了所提出的智能APF的有效性和适用性。
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An Intelligent Active Power Filter to Mitigate Harmonics and Interharmonics
Harmonics and waveform distortion are substantial power quality concerns for power systems with high penetration of renewable energy generation and non-linear loads. Harmonics and interharmonics should be mitigated for efficient and proper operation of power grids, with high harmonic injection from electric loads and devices. In this paper, an intelligent Active Power Filter (APF) based on Adaptive Linear Neuron (Adaline) is proposed which can provide accurate harmonic estimation and proper mitigation in real-time without any prior knowledge about harmonic/interharmonic orders. A novel formulation is derived, and adaptive learning with momentum is used for training. The proposed APF not only inherits the high adaptability of Adaline APFs but also compensates for their drawbacks by updating weights in the presence of unknown frequency orders. Additionally, an electric topology is proposed where one APF is able to mitigate harmonics of nonlinear loads connected to two adjacent Points of Common Coupling (PCCs). For a radial structure, harmonic currents from the grid are completely mitigated while for a ring structure, only harmonics from one side of the grid are mitigated. Highly varying and distorted load scenarios are studied. Comparison of the proposed APF with the state-of-the- art APFs in the literature proves the effectiveness and suitability of the proposed intelligent APF.
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