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储能系统技术 储能系统 三相逆变器 SiC器件 ★ 5.0

一种改进的混合ZVS调制方法用于SiC高频三相逆变器

An Improved Hybrid ZVS Modulation for SiC High-Frequency Three-Phase Inverter

作者 Qunfang Wu · Xinwei Fan · Qin Wang · Xiao Lan
期刊 IEEE Journal of Emerging and Selected Topics in Power Electronics
出版日期 2025年3月
技术分类 储能系统技术
技术标签 储能系统 三相逆变器 SiC器件
相关度评分 ★★★★★ 5.0 / 5.0
关键词 碳化硅三相逆变器 混合零电压开关调制 效率提升 可变电流带控制 样机验证
语言:

中文摘要

近年来,SiC三相逆变器因其优异性能被广泛应用于航空电推进系统,但仍面临高频开关损耗大、效率提升困难等问题。为此,本文提出一种改进的混合零电压开关(ZVS)调制策略,结合变电流滞环控制与钳位调制,在全负载周期内实现ZVS,进一步提升效率。详细分析了每相约120°钳位的控制目标、软开关谐振周期及变电流滞环特性,并阐述了钳位模式与高频调制模式切换的瞬态过程,以最小化附加损耗。实验研制了5 kW/250 kHz原理样机,峰值效率达98.88%,相较现有类似调制方案效率提升0.38%,验证了理论分析与所提调制策略的有效性。

English Abstract

In recent years, SiC three-phase inverters have been widely used in aviation electric propulsion systems due to their advanced performance. However, some challenges remain, such as the power loss at high-frequency switching and difficulty in further improving efficiency. To solve this problem, we proposed an improved hybrid zero-voltage switching (ZVS) modulation for the high-frequency SiC three-phase inverter. It combines the variable current band control with the clamping modulation to achieve the ZVS during the full-line cycle, to further improve the efficiency. In this article, the control target of about 120° clamp per phase and the soft-switching resonant period are analyzed in detail, and the variable current band is discussed. Still, the transient process of switching between the clamping mode and the high-frequency modulation mode is presented, which minimizes the additional power loss. Finally, a 5-kW/250 kHz proof-of-concept prototype was built and it can realize a peak efficiency of 98.88%, and the efficiency of the proposed method can be increased by 0.38% compared with existing similar modulation. All theoretical analyses and proposed modulation strategies are verified by the designed prototype.
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SunView 深度解读

该改进混合ZVS调制技术对阳光电源SiC功率器件应用具有重要价值。250kHz高频运行下实现98.88%峰值效率,可直接应用于ST系列储能变流器的高频化设计,通过减小磁性元件体积提升功率密度。变电流滞环控制结合钳位调制的全周期ZVS实现方案,为SG系列光伏逆变器的SiC升级提供开关损耗优化路径,特别适用于1500V高压系统。该技术在车载OBC充电机中可显著降低高频开关损耗,提升轻载效率。建议将120°钳位控制策略与现有三电平拓扑结合,并在PowerTitan大型储能系统中验证高频软开关技术的工程化应用,推动阳光电源高频化、高效化产品迭代。