孤岛交流微电网中电力电子变流器之间的谐波功率共享

A. Milczarek
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引用次数: 5

摘要

随着电力电子变流器(PECs)的使用,可再生能源(RESs)的动态演变导致了许多发电机组在局部系统微电网(MGs)中并联工作的情况。这种由许多小千瓦微源组成的分布式发电系统既要在并网运行模式下为线性和非线性负荷提供电能,又要在孤岛运行模式下提供电能,这就需要更先进的监测和能量管理算法来保证功率平衡和良好的电压质量。孤岛交流微电网的电源管理问题是许多研究中心研究的问题,需要新的解决方案来提高孤岛交流微电网的可靠性。在文献中,最常用的是非线性负载的MG中,谐波功率共享方法的发展还存在空白。谐波功率共享算法需要与有功和无功功率管理算法一起在控制系统中实现,才能得到完整的解决方案。MG中最常用的方法是分层控制结构,其中包括初级级的基本控制回路,独立于每个pec和二级级的外部控制回路,这允许在公共耦合点提高电压幅度和频率,以及pec之间的功率共享。此外,分层控制结构为实现分布式控制算法提供了很好的机会,这种算法可以同时执行许多操作。在此基础上,提出了一种新型的比例谐波功率共享算法。它使谐波功率与有功功率成比例地分担,通过降低所选电流谐波的幅值来改善变换器的输出电流波形。本文介绍了分层下垂控制和无功管理的原理。该方案已与比例无功分担算法一起在仿真研究中实现。为了体现谐波功率共享的优势,将结果与非可控谐波功率进行了比较。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Harmonic power sharing between power electronics converters in islanded AC microgrid
The dynamic evolution of renewable energy sources (RESs) with utilization of power electronics converters (PECs) caused the situation, where many energy generation units works parallel in local systems named microgrids (MGs). This distributed generation systems with many few kW micro-sources have to provide energy for linear and non-linear loads in grid connected mode of operation, but also in islanded mode of operation, which requires more advanced monitoring and energy management algorithms to ensure power balance and good voltage quality. The issues of power management in islanded AC microgrids are studied by many research centres and novel solutions are necessary to improve the reliability of MGs. In literature, there is still a gap for development of harmonic power sharing method in MG with most often used non-linear loads. Together with active and reactive power management algorithms the harmonic power sharing algorithm need to be implemented in control system to obtain complete solutions. The most often used approach in MG is hierarchical control structure, which includes the basic control loops at primary level, independent for each of PECs and outer control loops at secondary level, which allow to improve voltage amplitude and frequency in point of common coupling, as well as power sharing between PECs. Moreover, the hierarchical control structure is a great opportunity to implement a distributed control algorithm, which is able to execute many operations in the same time. Based on this idea, the novel proportional harmonic power sharing algorithm has been developed. It causes the harmonic power sharing between PECs proportionally to active powers, improving the output current waveforms of converters by decreasing the amplitude of selected current harmonics. The principles of hierarchical droop control and reactive power management has been presented in this paper. The developed solution has been implemented in simulation research together with proportional reactive power sharing algorithm. In order to present the advantage of harmonic power sharing, the results have been compared with non-controlled harmonic power.
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