← 返回
储能系统技术 并网逆变器 储能系统 弱电网并网 ★ 5.0

基于μ综合理论与遗传算法的并网逆变器鲁棒控制方法以应对弱电网下的多重不确定性

Robust Control Method Based on μ-Synthesis Theory and Genetic Algorithm for Grid-Connected Inverter to Cope With Multiple Uncertainties Under Weak Grid

作者 Hao Liu · Tianzhi Fang · Yu Zhang · Zhiheng Lin · Yantao Zhu
期刊 IEEE Journal of Emerging and Selected Topics in Power Electronics
出版日期 2024年10月
技术分类 储能系统技术
技术标签 并网逆变器 储能系统 弱电网并网
相关度评分 ★★★★★ 5.0 / 5.0
关键词 分布式发电系统 并网逆变器 稳定性 μ综合理论 遗传算法
语言:

中文摘要

在可再生能源分布式发电系统中,并网逆变器是发电单元与电网之间的关键接口,其稳定运行至关重要。然而,弱电网下的不确定电网阻抗和控制延迟等多重不确定性常影响系统稳定性。本文采用μ综合理论设计鲁棒控制器,通过智能构造加权函数,兼顾系统的鲁棒性、动态性能与电能质量。为避免控制器阶数过高,提出采用遗传算法优化设计三阶控制器。实验结果验证了所提方法的有效性,相较传统方法具有更优的鲁棒性能。

English Abstract

In the renewable energy-based distributed power generation system (DPGS), the grid-connected inverter is the interface between the generation unit and the grid. Thus, the stable operation of the grid-connected inverter system is crucial. However, the stability of the grid-connected inverter system is often affected by many aspects simultaneously, such as uncertain grid impedance and control delay. To improve the robustness of the system with the multiple uncertainties, the -synthesis theory is adopted in this article. By intelligently constructing the weighting functions, the robustness, dynamic performance, and power quality of the grid-connected inverter system can be taken into account at the same time when designing the controller. Furthermore, to avoid the designed controller being too high to be realized in practice, this article proposes to use a third-order controller, which is optimally designed by engaging the genetic algorithm (GA). Finally, a prototype is fabricated and tested. The experimental results verify the theoretical analysis and merits of the controller designed by the proposed method compared to the controller designed by the traditional method.
S

SunView 深度解读

该μ综合鲁棒控制技术对阳光电源ST系列储能变流器和SG系列光伏逆变器在弱电网并网场景具有重要应用价值。针对偏远地区、海岛微网等弱电网环境,该方法可有效应对电网阻抗波动和控制延迟等多重不确定性,提升PowerTitan大型储能系统的并网稳定性。遗传算法优化的三阶控制器设计思路可降低DSP计算负荷,适合集成到现有控制平台。建议将μ综合理论与阳光现有的GFM/GFL控制策略结合,构建自适应鲁棒控制框架,增强1500V高压系统在复杂电网条件下的鲁棒性能,并可应用于充电桩产品应对配电网薄弱环节的并网挑战。