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Three-Phase Bidirectional Buck-Boost Current DC-Link EV Battery Charger Featuring a Wide Output Voltage Range of 200 to 1000V

机译:具有200至1000V宽输出电压范围的三相双向降压-升压电流DC-Link EV电池充电器

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High power EV chargers connected to an AC power distribution bus are employing a three-phase AC/DC Power Factor Correction (PFC) front-end and a series-connected isolated DC/DC converter to efficiently regulate the traction battery voltage and supply the required charging current. In this paper, the component stresses and the design optimization of a novel two-stage three-phase bidirectional buck-boost current DC-link PFC rectifier system, realized solely with SiC power MOSFETs and conveniently requiring only a single magnetic component, are introduced. This topology offers a high efficiency in a wide operating range thanks to the synergetic operation of its two stages, the three-phase buck-type current source rectifier stage and the subsequent three-level boost-type DC/DC-stage, which makes it suitable for on-board as well as off-board charger applications. The calculated voltage and current component stresses of the proposed converter system, considering an output voltage range of 200 to 1000V and up to 10kW of output power, help to identify its operating boundaries, maximizing the utilization of the power semiconductors and of the DC-link inductor. The optimum values of the circuit parameters are selected after evaluating the converter average efficiency $ar eta $ and volumetric power density ρ in the Pareto performance space and analyzing its design space diversity, focusing on the semiconductor losses and on the characteristics of the inductor. Considering typical EV battery charging profiles, i.e. taking both full-load and part-load operation into account, a power converter realization featuring $ar eta = 98.5% $ and ρ =13.9kW/dm3 is achieved.
机译:连接到交流配电总线的大功率EV充电器采用三相AC / DC功率因数校正(PFC)前端和串联的隔离式DC / DC转换器,以有效地调节牵引电池电压并提供所需的电压充电电流。本文介绍了仅采用SiC功率MOSFET即可实现的新型两级三相双向降压-升压电流直流环节PFC整流器系统的组件应力和设计优化,该组件仅需一个磁性组件即可。由于该拓扑的两级(三相降压型电流源整流器级和随后的三级升压型DC / DC级)协同工作,因此该拓扑可在宽范围的工作范围内提供高效率。适用于车载以及车载充电器应用。考虑到200至1000V的输出电压范围和高达10kW的输出功率,拟议的转换器系统的计算出的电压和电流分量应力有助于确定其工作边界,从而最大程度地利用功率半导体和直流母线电感器。在评估帕累托性能空间中的转换器平均效率$ \ bar \ eta $和体积功率密度ρ并分析其设计空间多样性之后,选择电路参数的最佳值,重点是半导体损耗和电感器的特性。考虑到典型的EV电池充电曲线,即同时考虑满负荷和部分负荷运行,功率转换器实现具有$ \ bar \ eta = 98.5 \%$和ρ= 13.9kW / dm 3 已完成。

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