一种用于电动汽车单级车载充电器的最小损耗正弦扩展相移调制方法

Jiaqi Yuan;Amirreza Poorfakhraei;Yizhi Zhang;Gaoliang Fang;Ali Emadi
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引用次数: 0

摘要

单级车载充电器(ssobc)因其高功率密度和高可靠性而越来越受到人们的关注。然而,由于单级结构的原因,在保持统一功率因数(PF)的同时,在宽工作范围内实现高效率仍然是一个未解决的问题。困难是双重的。首先,在大工作范围内实现全量程零电压开关(ZVS)是具有挑战性的,这导致了高开关损耗。其次,正弦输入电压导致电感电流过大,增加了导通损耗。为了解决上述问题,本文提出了一种用于ssobc的高PF自适应正弦扩展相移(ASEPS)调制技术,以最大限度地减少功率损耗并提高效率。首先,为了最大限度地减少开关损耗,所提出的扩展相移在二次桥中引入了一个自由度,以扩展ZVS技术的范围和灵活性,特别是在宽工作范围下。然后,结合ZVS条件,提出最小峰值电流优化,使电感电流最小,从而降低导通损耗。在一个6kw的基于碳化硅的SSOBC原型上的实验结果验证了所提出的ASEPS技术与现有脉宽调制相比效率提高了1.7%,与非扩展调制策略相比效率提高了0.6%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Novel Sinusoidal Extended Phase Shift Modulation With Minimal Loss for Single-Stage Onboard Chargers for Electrical Vehicles
Single-stage onboard chargers (SSOBCs) are increasingly gaining attention because of their high power density and reliability. However, achieving high efficiency within a wide operating range while maintaining the unity power factor (PF) remains unsolved due to the single-stage structure. The difficulty is twofold. First, the full-range zero-voltage switching (ZVS) achievement at a wide operating range is challenging, which causes high switching loss. Second, sinusoidal input voltage leads to a high inductor current, which increases conduction loss. To address the aforementioned issues, this article presents an adaptive sinusoidal extended phase shift (ASEPS) modulation technique with a high PF for SSOBCs to minimize power loss and increase efficiency. First, aiming to minimize the switching loss, the proposed extended phase shift introduces one more degree of freedom in the secondary bridge to extend the ZVS technique range and flexibility, especially at a wide operating range. Then, combined with the ZVS condition, the minimal peak current optimization is presented to minimize the inductor current, which reduces conduction loss. Experimental results in a 6-kW silicon carbide-based SSOBC prototype verify that the proposed ASEPS technique increases efficiency by 1.7% compared to the existing pulsewidth modulation and by 0.6% compared to the nonextended modulation strategy.
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