Differential Power Processing Based Control Framework for Multiple Battery Energy Storage Systems in DC Microgrids

IF 8.6 1区 工程技术 Q1 ENERGY & FUELS IEEE Transactions on Sustainable Energy Pub Date : 2024-07-01 DOI:10.1109/TSTE.2024.3421358
Jialei Su;Kang Li
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Abstract

Multiple battery energy storage systems (BESSs) have been widely used in the DC microgrids to balance generation and demand. To achieve this, the BESS converters need to deliver the full required input/output power imposed on BESSs under the conventional BESS-DC bus configuration, which often demands high power ratings for the converters, hence leads to high installation cost as well as high power losses. To reduce the power ratings for BESS converters while delivering the same power from BESSs, this paper proposes a new differential power processing (DPP) based control framework where the DPP techniques and BESSs are firstly combined without losing the following control objectives, namely, the accurate current-sharing and state of charge (SoC) balance of BESSs as well as DC bus voltage regulation. This is achieved first by introducing inverted bidirectional buck converters to function as a front-end converter and DPP converters. Then, a virtual state variable combining BESS output current and its SoC is proposed, based on which a consensus control strategy is proposed. The stability of the proposed DPP-based control framework is also analyzed. Finally, the real-time hardware-in-loop (HIL) tests confirm the effectiveness of the proposed control framework, showing that the proposed DPP-based control framework reduces the power ratings of the converters to less than 20 $\%$ of BESS converters used in conventional BESS-DC bus configuration even in the worst operating scenario, while delivering the same required power from BESSs, paving a way for an innovative BESS DC microgrid design with much down-sized converters for BESSs.
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基于差分功率处理的直流微电网多电池储能系统控制框架
多个电池储能系统(BESS)已广泛应用于直流微电网,以平衡发电和需求。为实现这一目标,在传统的 BESS-DC 总线配置下,BESS 转换器需要提供 BESS 所需的全部输入/输出功率,这通常要求转换器具有很高的额定功率,从而导致高安装成本和高功率损耗。为了降低 BESS 转换器的额定功率,同时从 BESS 提供相同的功率,本文提出了一种新的基于差分功率处理(DPP)的控制框架,首先将 DPP 技术和 BESS 结合起来,同时不失去以下控制目标,即 BESS 的精确分流和电荷状态(SoC)平衡以及直流母线电压调节。为此,首先要引入反向双向降压转换器,作为前端转换器和 DPP 转换器。然后,提出了一个结合 BESS 输出电流及其 SoC 的虚拟状态变量,并在此基础上提出了一种共识控制策略。此外,还分析了所提出的基于 DPP 的控制框架的稳定性。最后,实时硬件在环(HIL)测试证实了所提控制框架的有效性,表明所提基于 DPP 的控制框架即使在最坏的运行情况下,也能将转换器的额定功率降至传统 BESS-DC 总线配置中所用 BESS 转换器的 20% 以下,同时还能从 BESS 提供所需的相同功率,从而为创新的 BESS 直流微电网设计铺平了道路,并大大缩小了 BESS 转换器的尺寸。
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来源期刊
IEEE Transactions on Sustainable Energy
IEEE Transactions on Sustainable Energy ENERGY & FUELS-ENGINEERING, ELECTRICAL & ELECTRONIC
CiteScore
21.40
自引率
5.70%
发文量
215
审稿时长
5 months
期刊介绍: The IEEE Transactions on Sustainable Energy serves as a pivotal platform for sharing groundbreaking research findings on sustainable energy systems, with a focus on their seamless integration into power transmission and/or distribution grids. The journal showcases original research spanning the design, implementation, grid-integration, and control of sustainable energy technologies and systems. Additionally, the Transactions warmly welcomes manuscripts addressing the design, implementation, and evaluation of power systems influenced by sustainable energy systems and devices.
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