An Intelligent Coordinated Control Scheme for Full-Mode Smooth Operation of Parallel Energy Storage System

IF 5.4 2区 工程技术 Q2 ENERGY & FUELS IEEE Transactions on Energy Conversion Pub Date : 2025-02-17 DOI:10.1109/TEC.2025.3542486
Hongyang Qing;Chunjiang Zhang;Jingyuan Xu;Hao He;Xiaoqiang Guo
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Abstract

In this paper, an intelligent coordinated control scheme is proposed for the full-mode smooth operation of the parallel energy storage system (ESS). The proposed scheme includes a power intelligent control loop and a voltage and current coordinated control loop. The intelligent power control loop can automatically adjust the ESS to grid-following control or grid-forming control to obtain optimal operation according to the grid-connected or islanded mode. The voltage and current coordinated control loop can automatically coordinate the gain of the controller during the mode transition between grid-connected and islanded modes, so as to achieve smooth mode transition. Especially for the unintentional islanding, the proposed intelligent limiter can adaptively adjust the limiting value to obtain the optimal voltage reference, so that ESS can quickly respond to the optimal voltage control. The proposed scheme can significantly reduce the voltage and power impact caused by conventional unintentional islanding, thus ensuring the smooth off-grid of the system. The mechanism analysis and parameter design of the proposed scheme are carried out. Finally, the experimental results show that the proposed scheme can achieve the full-mode smooth operation of grid-connection and islanding and their mutual transition.
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并联储能系统全模式平稳运行的智能协调控制方案
针对并联储能系统的全模式平稳运行,提出了一种智能协调控制方案。该方案包括一个功率智能控制回路和一个电压电流协调控制回路。智能功率控制回路可根据并网或孤岛模式自动调整ESS为随网控制或成网控制,以获得最优运行。电压电流协调控制回路能够自动协调控制器在并网模式和孤岛模式之间的模式转换过程中的增益,从而实现平稳的模式转换。特别是对于意外孤岛,提出的智能限幅器可以自适应调整限幅值以获得最优电压基准,使ESS能够快速响应最优电压控制。该方案可显著降低常规非故意孤岛对电压和功率的影响,保证系统顺利离网。对该方案进行了机理分析和参数设计。最后,实验结果表明,该方案能够实现并网和孤岛的全模式平滑运行及相互过渡。
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来源期刊
IEEE Transactions on Energy Conversion
IEEE Transactions on Energy Conversion 工程技术-工程:电子与电气
CiteScore
11.10
自引率
10.20%
发文量
230
审稿时长
4.2 months
期刊介绍: The IEEE Transactions on Energy Conversion includes in its venue the research, development, design, application, construction, installation, operation, analysis and control of electric power generating and energy storage equipment (along with conventional, cogeneration, nuclear, distributed or renewable sources, central station and grid connection). The scope also includes electromechanical energy conversion, electric machinery, devices, systems and facilities for the safe, reliable, and economic generation and utilization of electrical energy for general industrial, commercial, public, and domestic consumption of electrical energy.
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