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Novel high-gain hybrid current-driven DC-DC converter topology

机译:新型高增益混合电流驱动的DC-DC转换器拓扑

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A novel high gain current-driven DC-DC converter topology is proposed in this paper. This circuit is aimed for applications which require wide input and output voltage ranges, such as PV micro-inverters, electric vehicle battery chargers etc. As compared to the resonant converters, the size of inductor can be reduced by an order of magnitude and resonant capacitors eliminated, by the use of current-driven topology. These advantages result in increased power density and higher power conversion efficiency of the converter. A major limitation of the current-driven topology is that it can provide a maximum gain of just over unity. Further, this value of maximum gain also depends on the parasitic capacitances of the converter components. These issues make the converter operation more susceptible to component parasitics (such as the transformer inter-turn capacitance), resulting in degraded converter performance. The high-gain current-driven topology, presented in this paper overcomes the disadvantages of the conventional current-driven converter topology, by the introduction of a parallel capacitor at the high voltage side of the transformer winding. Introduction of parallel capacitor provides a two-fold advantage to the conventional current-driven topology. First it makes the effect of parasitic capacitor small so that the control system is not much sensitive to it, and it provides a high gain due to pre-charging of the network inductances at the beginning of each switching cycle. Simulation and experimental results validate the viability of proposed converter topology for applications requiring wide range of input and output voltages.
机译:本文提出了一种新型高增益电流驱动的DC-DC转换器拓扑。该电路旨在用于需要宽输入和输出电压范围的应用,例如PV微逆变器,电动车辆电池充电器等,与谐振转换器相比,电感器的尺寸可以通过幅度和谐振电容器顺序减小通过使用当前驱动的拓扑来消除。这些优点导致功率密度增加和转换器的更高功率转换效率。目前驱动拓扑的主要限制是它可以提供刚刚统一的最大增益。此外,该最大增益值也取决于转换器组件的寄生电容。这些问题使转换器操作更容易受组分寄生菌素(例如变压器匝间电容)的影响,导致转换器性能下降。本文呈现的高增益电流驱动拓扑克服了传统电流驱动转换器拓扑的缺点,通过在变压器绕组的高压侧引入并联电容器来克服传统的电流驱动转换器拓扑的缺点。并联电容引入为传统的电流驱动拓扑提供了两倍的优势。首先,它使得寄生电容器的效果小使得控制系统对其不太敏感,并且由于在每个开关周期的开始时,由于网络电感的预充电,提供了高增益。仿真和实验结果验证了所需转换器拓扑的可行性,用于需要广泛输入和输出电压的应用。

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