适用于低压电池充电应用的具有扩展电压传输比的无桥改良型开关电感器 SEPIC 高功率因数整流器

Aswin Dilip Kumar;Jitendra Gupta;Bhim Singh
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引用次数: 0

摘要

本文介绍了一种基于改进型单端初级电感转换器的单级交流-直流转换器,该转换器专为低压电动汽车(LVEV)充电器应用而设计。本文中展示的整流器具有高降压增益,非常适合为低压电动汽车中常见的低压电池组充电。通过在输入端采用无桥接结构和同时操作的开关,该转换器降低了控制的复杂性,并消除了对输入电压极性检测的需求,而这正是传统连续电感电流模式转换器所要求的。转换器的扩展降压增益是通过开关电感器结构实现的,使其能够为低压电池组提供所需的电池充电曲线。在不连续电感电流模式下运行电感器,不仅有利于在电网侧实现固有功率因数校正功能,还能减小磁性元件的尺寸。DICM 工作模式还为开关提供了零电流接通能力,为高频二极管提供了零电流关断能力,从而最大限度地减少了与二极管反向恢复转换相关的损耗。在功率为 450 W 的概念验证测试平台上进行测试期间,该转换器在额定功率下的峰值效率达到 94.2%。此外,输入电流的总谐波失真测量值为 3.4%,在电网中显示出统一的功率因数和良好的电能质量(PQ)指数。这些结果凸显了该转换器在维持适当的电池充电曲线方面的有效性,同时确保了 LVEV 充电应用中的高效率和 PQ 标准。
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 Modified Switched-Inductor SEPIC High Power Factor Rectifier With Extended Voltage Transfer Ratio for Low Voltage Battery Charging Applications
This article presents a modified single-ended primary inductance converter based single-stage ac–dc converter designed specifically for low voltage electric vehicles (LVEVs) charger applications. The rectifier showcases in this article demonstrates a high-step down buck gain, making it ideal for charging low-voltage battery packs commonly found in LVEVs. By utilizing a bridgeless structure at the input side with simultaneously operated switches, the converter reduces control complexity and eliminates the need for input voltage polarity sensing, a requirement in conventional continuous inductor current mode converters. The converter's extended step-down gain is achieved through switched-inductor structures, enabling it to deliver the required battery charging profile for low-voltage battery packs. Operating the inductors in discontinuous inductor current mode not only facilitates intrinsic power factor correction capabilities at the grid side but also reduces the size of magnetic components. DICM operation also provides zero-current turn- on for switches and zero-current turn- off capability for high-frequency diodes, thereby minimizing losses associated with diode reverse-recovery transitions. During testing on a proof-of-concept testbench at a power level of 450 W, the converter demonstrated a peak efficiency of 94.2% at rated power. In addition, the total harmonic distortion in input current was measured at 3.4%, showcasing a unity power factor and good power quality (PQ) indices at the grid. These results highlight the effectiveness of the converter in maintaining proper battery charging profiles while ensuring high efficiency and PQ standards in LVEV charging applications.
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