用于FCEV的多相交错升压转换器拓扑结构的性能分析

P. Garg, V. V. Kumar, Shubham Kumar
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引用次数: 1

摘要

本文研究了用于燃料电池电动汽车系统的多相交错升压变换器拓扑结构的性能。燃料电池(FC)具有低电压、大电流的特点。燃料电池堆的输出电压必须增加到大约400V / 700V才能适用于电机驱动系统。因此,DC/DC升压转换器对于燃料电池堆与车辆直流母线的接口至关重要。由于体积限制和其他性能要求,期望FC连接的DC/DC变换器具有高功率密度、低重量、高效率和良好的热性能。此外,维持FC的输出纹波对其延长寿命至关重要。交错升压变换器(IBC)拓扑结构可以满足FCEV应用的所有这些要求。因此,本文对几种适合燃料电池汽车传动系统的交错拓扑结构进行了性能比较。观察到六相IBC优于其他两种变体,即两相和四相IBC。分析了三种拓扑结构的输出电压、输入电流和损耗。对闭环控制算法的设计进行了详细的讨论。给出了在MATLAB环境下进行的大量仿真结果。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Performance Analysis of Multiphase Interleaved boost converter topologies for FCEV applications
This paper investigates the performance of multiphase interleaved boost converter topologies for fuel cell electric vehicle (FCEV) system. Fuel cells (FC) have a low voltage and high current characteristics. The output voltage of a fuel cell stack must be increased to approximately 400V$\sim$700V to be suitable for the motor drive system. Therefore, a DC/DC step-up converter is crucial for interfacing fuel cell stack with the DC bus of the vehicle.Owing to the volumetric constraints and other performance requirements, the FC connected DC/DC converter is expected to possess high power density, low weight, high efficiency and good thermal performance. Further, it is of paramount importance to maintain the output current ripple of FC for its enhanced life span. Interleaved boost converter (IBC) topologies are found to satisfy all these requirements of FCEV application. Hence in this paper, a performance comparison of few interleaved topologies appropriate for FCEV drive train is presented. It is observed that six phase IBC is superior to other two variants namely two phase and four phase IBC. The output voltage, input current and losses are analysed for all the three topologies. The design of the closed loop control algorithm is discussed lucidly. The results of extensive simulations carried out in MATLAB environment are presented.
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