基于无桥半二次增益高功率因数AC-DC变换器的LEVs充电解决方案

Aswin Dilip Kumar, J. Gupta, Bhim Singh
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引用次数: 1

摘要

本文介绍了一种采用无桥半二次电压增益和高功率因数(HPF)交直流变换器的单级无变压器充电器拓扑结构,用于轻型电动汽车(lev)充电系统。为了在高交流输入和低直流输出(lev电池组)之间实现无变压器结构和宽电压增益(特别是降压增益),有效地利用由无桥SEPIC(单端初级电感变换器)和降压变换器组成的集成结构,在电池端实现所需的充电特性,在交流端保持较高的功率因数。无桥以及无变压器的结构,共同有助于减小充电器的尺寸和成本,并提高其整体效率。与现有的SEPIC和Cuk HPF基于交直流变换器的电池充电器不同,该充电系统既保证了交流侧和电池端连续电流特性,又具有在电感电流断续模式(DICM)下工作的自由。连续电流特性大大减小了滤波器的尺寸,并最大限度地减少了相关损耗,而DICM操作使控制简单。此外,DICM操作优化了磁性的体积,并确保半导体器件的零电流开关。最后,通过仿真验证了充电电路的设计、工作模式和性能,并对相应的结果进行了讨论,以进行性能验证。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Bridgeless Semi-Quadratic Gain High Power Factor AC-DC Converter Based LEVs Charging Solution
A charger topology using a single stage and transformer-less design employing bridgeless semi quadratic voltage gain with high power factor (HPF) AC-DC converter, is demonstrated in this paper for the charging system of light electric vehicles (LEVs). In order to achieve transformer-less structure and wide voltage gain (particularly step-down gain) between high AC input and low DC output (LEVs battery packs), an integrated structure comprising of a bridgeless SEPIC (single ended primary inductor converter) and a buck converter, is effectively utilized to achieve desired charging characteristics at the battery end and maintaining high power factor at AC end of the charger. The bridgeless along with the transformer less structure, together helps in reducing the size, and the cost of the charger and to improve its overall efficiency. Unlike existing SEPIC and Cuk HPF AC-DC converter based battery chargers, the presented charging system ensures continuous current characteristic both at AC side and battery end, and also has the freedom of operating in the discontinuous inductor current mode (DICM) operation. The continuous current characteristic considerably reduces the size of filters and minimizes associated losses, whereas the DICM operation enables control simplicity. Further, the DICM operation optimizes the volume of magnetics and ensures zero current switching of semiconductor devices. Lastly, the design, operating modes, and performance of the charging circuitry are verified through simulation and corresponding results are discussed here for performance verification.
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