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Optimized capacitive active ripple compensation topology for a 3.7 kW single-phase high power density on-board charger of electric vehicles

机译:优化电容式主动纹波补偿拓扑,用于电动车辆的3.7千瓦单相高功率密度。电动汽车充电器

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摘要

In this paper, a comprehensive investigation of the capacitive active ripple compensation (ARC) techniques is made to conclude which one is optimal to be used in on-board chargers of electric vehicles. Crucial aspects in such an application are: lifetime, volumetric and specific power density (including components' size and the needed cooling solution), and overall efficiency of the charger. As presented in this paper, all capacitive ARC topologies (buck, boost, and buck-boost) have successfully diverted the low-frequency ripple from the dc side with a maximized power density. The ARC circuit consists of two additional switches, a smoothing auxiliary inductor, and a storage auxiliary capacitor. Finally, the buck capacitive ARC topology proves to be the optimal ARC technique for on-board chargers because of its maximal power density, minimal loss behavior and voltage stress, and long lifetime capability as it requires a downsized capacitance to the extent, where film capacitors or ceramic capacitors can replace the normally used bulky electrolytic capacitors. The performance of the three capacitive ARC techniques is proved by simulation results.
机译:在本文中,制定了对电容式主动纹波补偿(ARC)技术的全面研究,以得出结论是在电动汽车车载充电器中使用的最佳。这种应用中的关键方面是:寿命,体积和特定功率密度(包括组件尺寸和所需的冷却液),以及充电器的整体效率。如本文所提出的,所有电容电弧拓扑(降压,升压和降压)已成功将低频纹波与直流侧的低频纹波以最大化的功率密度转移。电弧电路由两个附加开关,平滑辅助电感器和存储辅助电容组成。最后,由于其最大功率密度,最小损耗行为和电压应力以及长的寿命能力,因此,降压电容电弧拓扑证明是用于车载充电器的最佳电弧技术,以及它需要在胶片电容器的范围内需要缩小电容的长寿能力或陶瓷电容器可以代替通常使用的庞大的电解电容器。通过仿真结果证明了三种电容电弧技术的性能。

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