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A Superconducting Magnetic Energy Storage-Emulator/Battery Supported Dynamic Voltage Restorer

机译:超导磁储能器/电池支持的动态电压恢复器

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This study examines the use of superconducting magnetic and battery hybrid energy storage to compensate grid voltage fluctuations. The superconducting magnetic energy storage system (SMES) has been emulated by a high-current inductor to investigate a system employing both SMES and battery energy storage experimentally. The design of the laboratory prototype is described in detail, which consists of a series-connected three phase voltage source inverter used to regulate ac voltage, and two bidirectional dc/dc converters used to control energy storage system charge and discharge. “DC bus level signaling” and “voltage droop control” have been used to automatically control power from the magnetic energy storage system during short-duration, high-power voltage sags, while the battery is used to provide power during longer term, low-power undervoltages. Energy storage system hybridization is shown to be advantageous by reducing battery peak power demand compared with a battery-only system, and by improving long-term voltage support capability compared with an SMES-only system. Consequently, the SMES/battery hybrid dynamic voltage restorer can support both short-term high-power voltage sags and long-term undervoltages with significantly reduced superconducting material cost compared with an SMES-based system.
机译:这项研究研究了使用超导磁和电池混合储能来补偿电网电压波动。高电流电感器已对超导磁储能系统(SMES)进行了仿真,以实验研究采用SMES和电池储能的系统。详细描述了实验室原型的设计,包括一个用于调节交流电压的串联三相电压源逆变器和两个用于控制储能系统充电和放电的双向dc / dc转换器。 “ DC总线电平信号”和“电压下降控制”已用于在短时高功率电压骤降期间自动控制来自磁能存储系统的功率,而电池则用于长期,低电压时的功率。电源欠压。与仅使用电池的系统相比,通过降低电池峰值功率需求,并通过仅使用SMES的系统相比,提高了长期电压支持能力,表明了储能系统混合是有利的。因此,与基于SMES的系统相比,SMES /电池混合动态电压恢复器可同时支持短期大功率电压骤降和长期欠压,并显着降低了超导材料的成本。

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