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Compact Onboard Single-Phase EV Battery Charger With Novel Low-Frequency Ripple Compensator and Optimum Filter Design

机译:紧凑型车载单相EV电池充电器,具有新型低频纹波补偿器和最佳滤波器设计

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摘要

This paper proposes a novel double-grid-frequency-ripple-reducing technique for electric vehicle (EV) battery charger applications. In 1- EV battery chargers, due to double-frequency ripple, it is not possible to control the current using a single-power-stage approach. Hence, a two-stage approach is used. However, a bulky inductor and a capacitor are required to control the current, which adds to the system's weight and cost. The single-stage charging system described in this paper can charge the battery with almost ripple-free current without using a bulky electrolytic capacitor. At the same time, it can maintain high power factor (PF) and low total harmonic distortion on the input ac side. The proposed ripple compensation solution is realized by an innovative combination of boost and zeta converters connected in series with the battery charger, which reduces the filter capacitor value considerably. This facilitates the use of a film capacitor, which has a much longer life compared with an electrolytic capacitor. Similarly, the value of the filter inductor used in series with the battery is reduced significantly. Battery ripple current is not increased in the process; therefore, the battery life remains unaffected. Representative analytical, simulation, and experimental results are presented.
机译:本文提出了一种用于电动汽车(EV)电池充电器的新型双电网纹波抑制技术。在1-EV电池充电器中,由于存在双频纹波,因此无法使用单功率级方法来控制电流。因此,使用了两阶段方法。然而,需要庞大的电感器和电容器来控制电流,这增加了系统的重量和成本。本文介绍的单级充电系统可以在不使用大容量电解电容器的情况下以几乎无波纹的电流为电池充电。同时,它可以在输入交流侧保持较高的功率因数(PF)和较低的总谐波失真。提出的纹波补偿解决方案是通过与电池充电器串联的升压和zeta转换器的创新组合来实现的,这大大降低了滤波电容器的值。这有利于薄膜电容器的使用,该薄膜电容器的寿命比电解电容器长得多。同样,与电池串联使用的滤波电感的值也大大降低。在此过程中,电池纹波电流不会增加;因此,电池寿命不会受到影响。给出了代表性的分析,模拟和实验结果。

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