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Analysis and Design of a Bidirectional Isolated DC-DC Converter for Fuel Cell and Super-Capacitor Hybrid System

机译:用于燃料电池和超级电容器混合系统的双向隔离式DC-DC变换器的分析与设计

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摘要

Electrical power system in future uninterruptible power supply (UPS) or electrical vehicle (EV) may employ hybrid energy sources, such as fuel cells and super-capacitors. It will be necessary to efficiently draw the energy from these two sources as well as recharge the energy storage elements by the DC bus. In this paper, a bidirectional isolated DC-DC converter controlled by phase-shift and duty cycle for the fuel cell hybrid energy system is analyzed and designed. The proposed topology minimizes the number of switches and their associated gate driver components by using two high frequency transformers which combine a half-bridge circuit and a full-bridge circuit together on the primary side. The voltage doubler circuit is employed on the secondary side. The current-fed input can limit the input current ripple that is favorable for fuel cells. The parasitic capacitance of the switches is used for zero voltage switching (ZVS). Moreover, a phase-shift and duty cycle modulation method is utilized to control the bidirectional power flow flexibly and it also makes the converter operate under a quasi-optimal condition over a wide input voltage range. This paper describes the operation principle of the proposed converter, the ZVS conditions and the quasi-optimal design in depth. The design guidelines and considerations about the transformers and other key components are given. Finally, a 1- kW 30~50-V-input 400-V-output laboratory prototype operating at 100 kHz switching frequency is built and tested to verify the effectiveness of the presented converter.
机译:未来的不间断电源(UPS)或电动汽车(EV)中的电源系统可能会使用混合能源,例如燃料电池和超级电容器。有必要从这两个源中有效地吸收能量,并通过DC总线为储能元件充电。本文分析并设计了一种由相移和占空比控制的双向隔离式DC-DC转换器,用于燃料电池混合能源系统。所提出的拓扑结构通过使用两个高频变压器将开关及其相关的栅极驱动器组件的数量减到最少,该高频变压器在初级侧将半桥电路和全桥电路组合在一起。二次侧采用倍压电路。电流输入可限制对燃料电池有利的输入电流纹波。开关的寄生电容用于零电压开关(ZVS)。此外,利用相移和占空比调制方法来灵活地控制双向功率流,并且还使转换器在宽输入电压范围内的准最佳条件下工作。本文深入介绍了拟议转换器的工作原理,ZVS条件和准最佳设计。给出了有关变压器和其他关键组件的设计准则和注意事项。最后,构建并测试了工作在100 kHz开关频率下的1 kW 30〜50 V输入,400 V输出实验室原型,以验证所提出的转换器的有效性。

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