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Adaptive Droop for Control of Multiterminal DC Bus Integrating Energy Storage

机译:自适应下降控制多端直流母线集成储能

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Multiterminal dc (MTDC) systems are drawing a lot of interest lately in applications related to distributed generation, especially in those that integrate wind or photovoltaic (PV) generation with energy storage (ES). Several approaches for controlling the operation of such systems have been proposed in the literature; however, the existing structures are mainly application specific and, thus, can be still improved in order to provide a more generic approach. This paper proposes an improved primary control layer for an MTDC system. The concept is based on the combination of a droop control method and dc bus signaling in order to provide a more generic and flexible solution. In this paper, different droop characteristics are proposed for the various elements connected to the dc bus. All of them are specifically tailored around five operation bands, which depend on the dc bus voltage level. Special attention is paid to the integration of ES: the state of charge (SoC) is considered at the primary control level, yielding a surface characteristic that depends on the SoC and the dc bus voltage. The scaling of the system has been analyzed together with the proposed control strategy and the overall operation has been validated through simulations by considering a 100 kW PV system with energy storage. Experimental results were obtained on a scaled laboratory prototype rated at 10 kW.
机译:多端直流(MTDC)系统最近在与分布式发电相关的应用中引起了很多兴趣,特别是在将风能或光伏(PV)发电与能量存储(ES)集成在一起的应用中。在文献中已经提出了几种控制这种系统运行的方法。但是,现有结构主要针对特定​​应用程序,因此仍可以进行改进以提供更通用的方法。本文提出了一种用于MTDC系统的改进的主控制层。该概念基于下垂控制方法和直流总线信令的组合,以提供更通用,更灵活的解决方案。本文针对连接到直流总线的各种元件提出了不同的下垂特性。所有这些都专门针对五个工作频带而定制,这取决于直流总线电压水平。特别注意ES的集成:电荷状态(SoC)在主要控制级别上考虑,产生的表面特性取决于SoC和dc总线电压。已对系统的缩放比例以及提出的控制策略进行了分析,并通过考虑具有能量存储的100 kW光伏系统,通过仿真验证了整体运行。实验结果是在标定为10 kW的规模化实验室原型上获得的。

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