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光伏发电技术 储能系统 下垂控制 微电网 ★ 5.0

分扇区改进下垂控制以改善并联升压变换器接口直流微网的电压调节与电流分配

Sector Wise Modified Droop Control to Improve Voltage Regulation and Current Sharing in Parallel Boost Converter Interfaced DC Microgrid

作者 Makireddi Ramana · Subhendu Bikash Santra · Debashis Chatterjee · Yam P. Siwakoti
期刊 IEEE Journal of Emerging and Selected Topics in Power Electronics
出版日期 2024年10月
技术分类 光伏发电技术
技术标签 储能系统 下垂控制 微电网
相关度评分 ★★★★★ 5.0 / 5.0
关键词 直流微电网 电压调节 下垂系数调整 光伏面板 电流分配
语言:

中文摘要

光伏面板接入的多并联升压变换器结合储能接口是构建直流微网的关键。为实现良好的电压调节和比例电流分配,需对各变换器的阻抗特性或下垂系数进行调节。即使采用内外双环控制(外环为带下垂调节的电压模式,内环为电流模式),重载下的电压下垂仍呈现非线性,且负载调节范围受限。该非线性主要源于负载相关的输出阻抗及变换器非理想因素。本文提出一种分扇区的下垂系数调节方法,可在满足电压调节约束的同时扩展变换器的负载运行范围,并优化下垂系数以改善电流分配,降低环流与导通损耗。所提方法在PSIM中仿真,并在1.5 kW、48 V特低电压直流微网实验平台上验证。

English Abstract

Photovoltaic (PV) panel interfaced multiple parallel boost converter with storage interface is essential for forming dc microgrid. Impedance shaping or droop coefficient adjustment of individual converters is essential to achieve better voltage regulation (VR) and proportional current sharing. However, the voltage droop with increased loading is not linear even with dual-loop control, where the outer loop is voltage mode with droop coefficient adjustment and the inner one is a current loop. The loading range is narrow to maintain VR within the limit. This nonlinearity in droop coefficient after certainly, enhanced loading is due to load-dependent converter output impedance and converter nonidealities. In this work, a sector-wise modified droop coefficient adjustment control is proposed which ensures enhanced loading operation of individual converters while maintaining the VR constraints. This article also proposes an optimal droop coefficient, enhancing current distribution, which ultimately decreases circulating current and conduction losses. The proposed control method is simulated in PSIM and experimentally validated in 1.5 kW, 48 V extra low voltage dc (ELVdc) Microgrid Set-Up.
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SunView 深度解读

该分扇区改进下垂控制技术对阳光电源ST系列储能变流器和直流微网产品具有重要应用价值。针对多并联升压变换器的非线性电压下垂和电流分配问题,所提方法可直接应用于PowerTitan储能系统的多模块并联架构,通过动态调节下垂系数优化负载范围和环流抑制。该技术与阳光电源现有的双环控制策略兼容,可提升1500V光伏系统中多MPPT通道的功率均衡性能。分扇区控制思想对iSolarCloud平台的智能调度算法具有启发意义,可改善储能集群的SOC均衡和导通损耗。建议在低压直流微网和户用储能产品中验证该方法的工程化潜力。