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Grid Voltage Synchronization for Distributed Generation Systems under Grid Fault Conditions

机译:电网故障条件下分布式发电系统的电网电压同步

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摘要

The actual grid code requirements for the grid connection of distributed generation systems, mainly wind and PV systems, are becoming very demanding. The Transmission System Operators (TSOs) are especially concerned about the Low Voltage Ride Through requirements. Solutions based on the installation of STATCOMs and DVRs, as well as on advanced control functionalities for the existing power converters of distributed generation plants, have contributed to enhance their response under faulty and distorted scenarios and, hence, to fulfill these requirements. In order to achieve satisfactory results with such systems, it is necessary to count on accurate and fast grid voltage synchronization algorithms, which are able to work under unbalanced and distorted conditions. This paper analyzes the synchronization capability of three advanced synchronization systems: the Decoupled Double Synchronous Reference Frame- Phase-Locked Loop, the Dual Second Order Generalized Integrator- Phase-Locked Loop and the Three-Phase Enhanced Phase-Locked Loop, designed to work under such conditions. Although other systems based on frequency-locked loops have also been developed, PLLs have been chosen due to their link with dq0 controllers. In the following, the different algorithms will be presented and discretized and their performance, will be tested in an experimental setup controlled in order to evaluate their accuracy and implementation features.
机译:分布式发电系统(主要是风能和光伏系统)的电网连接的实际电网规范要求变得非常苛刻。传输系统运营商(TSO)特别关注低电压穿越要求。基于STATCOM和DVR安装以及分布式发电站现有功率转换器的高级控制功能的解决方案,有助于增强它们在故障和失真情况下的响应能力,从而满足这些要求。为了用这样的系统获得满意的结果,必须依靠准确,快速的电网电压同步算法,该算法能够在不平衡和失真的条件下工作。本文分析了三个高级同步系统的同步能力:设计为在以下条件下工作的去耦双同步参考锁相环,双二阶广义积分器锁相环和三相增强锁相环这样的条件。尽管还开发了其他基于锁频环路的系统,但由于它们与dq0控制器链接而选择了PLL。在下文中,将介绍和离散化不同的算法,并在受控的实验装置中测试其性能,以评估其准确性和实现功能。

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