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Selective compensation of voltage harmonics in grid-connected microgrids

机译:并网微电网中电压谐波的选择性补偿

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In this paper, a novel approach is proposed for selective compensation of main voltage harmonics in a grid-connected microgrid. The aim of compensation is to provide a high voltage quality at the point of common coupling (PCC). PCC voltage quality is of great importance due to sensitive loads that may be connected. It is assumed that the voltage harmonics are originated from distortion in grid voltage as well as the harmonic current of the nonlinear loads. Harmonic compensation is achieved through proper control of distributed generators (DGs) interface converters. The compensation effort of each harmonic is shared considering the respective current harmonic supplied by the DGs. The control system of each DG comprises harmonic compensator, fundamental power controllers, voltage and current proportional-resonant controller and virtual impedance loop. Virtual impedance is considered at fundamental frequency to enhance power control and also at harmonic frequencies to improve the nonlinear load sharing among DGs. The control system design is discussed in detail. The presented simulation results demonstrate the effectiveness of the proposed method in compensation of the voltage harmonics to an acceptable level.
机译:本文提出了一种新颖的方法来选择性补偿并网微电网中的主电压谐波。补偿的目的是在公共耦合点(PCC)上提供高质量的电压。由于可能会连接敏感负载,因此PCC电压质量至关重要。假定电压谐波源自电网电压的畸变以及非线性负载的谐波电流。谐波补偿是通过适当控制分布式发电机(DG)接口转换器来实现的。考虑由DG提供的相应电流谐波,可以共享每个谐波的补偿功。每个DG的控制系统包括谐波补偿器,基本功率控制器,电压和电流比例谐振控制器以及虚拟阻抗环路。在基频上考虑虚拟阻抗以增强功率控制,在谐波频率上考虑虚拟阻抗以改善DG之间的非线性负载分配。详细讨论了控制系统的设计。给出的仿真结果证明了该方法在将电压谐波补偿到可接受水平上的有效性。

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