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Asymmetrical Duty Cycle Control and Decoupled Power Flow Design of a Three-port Bidirectional DC-DC Converter for Fuel Cell Vehicle Application

机译:燃料电池汽车三端口双向DC-DC变换器的非对称占空比控制和解耦潮流设计

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This paper proposes a new asymmetrical duty cycle control method for a three-port bidirectional DC-DC converter with two current-fed ports interfacing with low voltage battery and ultracapacitor in a fuel cell vehicle. Along with the phase shift control managing the power flow between the ports, asymmetric duty cycle is applied to each port to maintain a constant DC bus voltage at low voltage side, which as a result will achieve wide zero-voltage-switching (ZVS) range for each port under varied ultracapacitor and battery voltages. The ZVS range analysis of different duty cycle control methods as well as the circulation power loss between the ports have been analyzed. In addition, the power flow design featuring the reduced coupling factors between the ports have been developed for the three-port bidirectional DC-DC converter. A fuel cell vehicle power train including a 2.5 kW three-port DC-DC converter interfacing a 12 V battery and ultracapacitor was built in the laboratory. The proposed asymmetrical duty cycle control and power flow design was implemented and verified on the hardware test bed under urban driving cycle. The experimental results validated that proposed asymmetrical duty cycle method has higher efficiency than other methods; furthermore, they also validated the reduced coupling factor between phase shift control and duty cycle control.
机译:本文提出了一种新的非对称占空比控制方法,用于燃料电池汽车中具有两个电流馈送端口与低压电池和超级电容器接口的三端口双向DC-DC转换器。除相移控制管理端口之间的功率流外,还对每个端口应用了不对称的占空比,以在低压侧保持恒定的DC总线电压,因此将实现宽的零电压开关(ZVS)范围用于每个端口在不同的超级电容器和电池电压下。分析了不同占空比控制方法的ZVS范围分析以及端口之间的循环功率损耗。此外,已经针对三端口双向DC-DC转换器开发了具有减小端口之间耦合因子的功率流设计。在实验室中建造了一个燃料电池车辆动力总成,该动力总成包括一个连接12 V电池和超级电容器的2.5 kW三端口DC-DC转换器。所提出的非对称占空比控制和功率流设计已在城市行驶周期下的硬件测试台上实现并得到验证。实验结果证明,所提出的非对称占空比方法比其他方法具有更高的效率。此外,他们还验证了相移控制和占空比控制之间减小的耦合因子。

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