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通信网络嵌入式直流微电网阻抗建模
Impedance Modeling of Communication-Network-Embedded DC Microgrid
| 作者 | Boshen Zhang · Fei Gao · Yitong Li · Qipeng Zheng · Muhammad Mansoor Khan · Yunjie Gu |
| 期刊 | IEEE Transactions on Power Systems |
| 出版日期 | 2024年9月 |
| 技术分类 | 储能系统技术 |
| 技术标签 | 储能系统 微电网 |
| 相关度评分 | ★★★★★ 5.0 / 5.0 |
| 关键词 | 直流微电网 阻抗模型 通信网络 阻抗参与分析 稳定性分析 |
语言:
中文摘要
阻抗模型在直流微电网的稳定性分析中具有直观且有效的优势,尤其适用于无法获取详细系统参数的状态空间模型的场景。传统方法通过系统分区在特定端口建立阻抗模型,但在含通信链路的分层控制直流微电网中,子系统划分与端口阻抗建模面临挑战。为此,本文提出一种嵌入通信网络的直流微电网阻抗模型,保留本地控制器与分布式通信动态特性,并采用非对角阵表征装置阻抗。基于该模型,将阻抗参与度分析扩展至含通信链路的分布式系统。通过改进的9节点直流微网、MMC型多端直流电网及20节点交直流混合微网的数值计算与时域仿真,验证了理论分析的正确性。
English Abstract
Impedance model plays an important role in stability analysis of DC microgrids (MGs) with intuitiveness and effectiveness, especially when the state-space models with detailed system parameters are unavailable. Generally, impedance model can be evaluated at a particular port by system partitioning. However, in hierarchically-controlled DC MGs where distributed generators (DGs) are connected with communication links, it is difficult to split the DC MG into subsystems and derive the port impedance models. In this respect, a communication-network-embedded impedance model is proposed for DC MGs that contain distributed communication networks. Compared to state-of-the-art impedance models, the proposed method retains both local controller and distributed communication dynamics with a non-diagonal apparatus impedance matrix. Based on the proposed communication-network-embedded impedance model, the impedance participation analysis is extended to a distributed system with communication links. The theoretical analysis has been illustrated with a DC-powered trolleybus system as a modified 9-bus communication-network-embedded DC MG, an MMC-based multi-terminal DC grid, as well as a larger 20-bus hybrid AC/DC microgrid. Numerical calculations and time-domain simulations are performed to validate the theoretical analysis.
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SunView 深度解读
该通信网络嵌入式阻抗建模技术对阳光电源PowerTitan储能系统和多机并联ST系列储能变流器具有重要应用价值。在分布式储能电站中,多台储能变流器通过CAN/以太网通信实现功率分配与协调控制,传统阻抗分析方法难以准确评估通信延迟对系统稳定性的影响。该研究提出的非对角阻抗矩阵建模方法可精确表征通信链路动态特性,结合阻抗参与度分析可定位薄弱环节,指导ST储能变流器控制参数优化与通信网络冗余设计。该技术同样适用于iSolarCloud云平台远程控制的光储微网系统,可提升分层控制架构下的稳定裕度评估能力,为阳光电源构网型储能系统的工程化应用提供理论支撑。