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Design and test of a new two-stage control scheme for SMES-battery hybrid energy storage systems for microgrid applications

机译:用于微电网应用的SMES电池混合储能系统新的两阶段控制方案的设计和测试

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This paper proposes a novel control scheme for a hybrid energy storage system (HESS) for microgrid applications. The proposed two-stage control method is used to control the HESS to stabilize a microgrid's voltage level and extend battery service lifetime during the coupling/decoupling of a microgrid from the main power grid. The conventional HESS control method (the filtration method) is not suitable to compensate for a microgrid's power demand when it is decoupled from the main grid. This research focuses on using a superconducting magnetic energy storage (SMES) and battery HESS to assist with the microgrid coupling/decoupling process. To compensate for the instantaneous high power demand during decoupling, the battery will need to rapidly discharge. Moreover, batteries have difficulty supporting high discharging rates, which results in ineffective compensation of the power demand. In this paper, the high power density of the SMES system combined with the high energy density of a battery shows good performance on stabilizing microgrid bus voltage during the decoupling process. A novel energy management method for the HESS is proposed to improve the battery performance when the microgird coupled/decoupled from main grid. The sizing design is simplified based on the control methodology. Moreover, a SMES and battery HESS experimental platform is built to validate the proposed control methodology and its reliability.
机译:本文提出了一种用于微电网应用的混合储能系统(HESS)的新型控制方案。所提出的两阶段控制方法用于控制HESS,以在微电网与主电网的耦合/去耦期间稳定微电网的电压水平并延长电池使用寿命。常规的HESS控制方法(过滤方法)不适用于在与主电网分离时补偿微电网的功率需求。这项研究的重点是使用超导磁能存储(SMES)和电池HESS来协助微电网耦合/去耦过程。为了补偿去耦期间的瞬时大功率需求,电池将需要快速放电。此外,电池难以支持高放电率,这导致对功率需求的无效补偿。在本文中,SMES系统的高功率密度与电池的高能量密度相结合,在去耦过程中具有稳定微电网总线电压的良好性能。提出了一种用于HESS的新型能量管理方法,以改善微电网与主电网耦合/解耦时的电池性能。根据控制方法简化了尺寸设计。此外,建立了SMES和电池HESS实验平台来验证所提出的控制方法及其可靠性。

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