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Topology and Magnetics Optimisation for a 100-kW Bi-Directional DC-DC Converter

机译:100 kW双向DC-DC转换器的拓扑和磁学优化

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Modern applications of high-power DC-DC converters can be found in the renewable energy, energy storage, and automotive industries, where they are used for on-board power trains and rapid charging systems for Electric Vehicles (EV). This paper presents an investigation into the optimisation of a high-power bi-directional DC-DC interleaved converter suitable for high-performance EV applications. Three topologies are considered for comparison - the three- and four-phase interleaved converter with discrete inductors (3P-DI and 4P- DI), and the four-phase interleaved converter with three Interphase Transformers (4P-IPT). The different topologies are compared through a comprehensive multi-objective design optimisation procedure for a 100 kW 300-750 V case study. It is shown that the 4P-IPT offers lower volume and higher efficiency than the 3P-DI and 4P-DI across a wide range of switching frequencies, with reductions in weight of up to 50% being possible at low switching frequencies. It is then demonstrated that magnetic cores with higher temperature limits and lower gap losses may enable the discrete inductor topologies to be competitive with the 4P-IPT in terms of power density and efficiency.
机译:大功率DC-DC转换器的现代应用可以在可再生能源,能源存储和汽车行业中找到,它们用于车载动力总成和电动汽车(EV)的快速充电系统。本文对适用于高性能EV应用的大功率双向DC-DC交错转换器的优化进行了研究。为了比较,考虑了三种拓扑结构-具有分立电感器的三相和四相交错式转换器(3P-DI和4P-DI)以及具有三个相间变压器的四相交错式转换器(4P-IPT)。通过针对100 kW 300-750 V案例研究的全面多目标设计优化程序,比较了不同的拓扑。结果表明,在广泛的开关频率范围内,4P-IPT的体积和效率均高于3P-DI和4P-DI,在低开关频率下,重量可减轻多达50%。然后证明,具有更高温度限制和更低间隙损耗的磁芯可以使分立电感器拓扑在功率密度和效率方面与4P-IPT竞争。

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