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Simultaneous Microgrid Voltage and Current Harmonics Compensation Using Coordinated Control of Dual-Interfacing Converters

机译:双接口转换器协调控制的同时微电网电压和电流谐波补偿

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摘要

The growing installation of distributed generation (DG) units in low-voltage distribution systems has popularized the concept of nonlinear load harmonic current compensation using multifunctional DG interfacing converters. It is analyzed in this paper that the compensation of local load harmonic current using a single DG interfacing converter may cause the amplification of supply voltage harmonics to sensitive loads, particularly when the main grid voltage is highly distorted. To address this limitation, unlike the operation of conventional unified power quality conditioners with series converter, a new simultaneous supply voltage and grid current harmonic compensation strategy is proposed using coordinated control of two shunt interfacing converters. Specifically, the first converter is responsible for local load supply voltage harmonic suppression. The second converter is used to mitigate the harmonic current produced by the interaction between the first interfacing converter and the local nonlinear load. To realize a simple control of parallel converters, a modified hybrid voltage and current controller is also developed in the paper. By using this proposed controller, the grid voltage phase-locked loop and the detection of the load current and the supply voltage harmonics are unnecessary for both interfacing converters. Thus, the computational load of interfacing converters can be significantly reduced. Simulated and experimental results are captured to validate the performance of the proposed topology and the control strategy.
机译:低压配电系统中分布式发电(DG)单元的安装不断增加,已经普及了使用多功能DG接口转换器进行非线性负载谐波电流补偿的概念。本文分析说,使用单个DG接口转换器补偿本地负载谐波电流可能会导致敏感负载的电源电压谐波放大,尤其是当主电网电压严重失真时。为了解决此限制,与传统的带有串联转换器的统一电能质量调节器的操作不同,提出了使用两个并联接口转换器的协调控制的新的同时供电电压和电网电流谐波补偿策略。具体而言,第一转换器负责本地负载电源电压谐波抑制。第二转换器用于减轻由第一接口转换器和局部非线性负载之间的相互作用产生的谐波电流。为了实现对并联转换器的简单控制,本文还开发了一种改进的混合电压和电流控制器。通过使用此提出的控制器,两个接口转换器都不需要电网电压锁相环以及负载电流和电源电压谐波的检测。因此,可以显着降低接口转换器的计算负荷。捕获了仿真和实验结果,以验证所提出的拓扑和控制策略的性能。

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