电动汽车动力传动系统两级和多级CHB拓扑结构的比较分析

Akhtar Ali, H. Khalid
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引用次数: 0

摘要

气候变化和化石燃料资源的稀缺导致汽车行业转向环保和可持续的解决方案,即电动汽车(EV)。直流-交流逆变器是电动汽车动力系统的主要组成部分之一。选择合适的逆变器拓扑结构可以实现最佳性能、成本效益和整个动力系统的可靠运行。本文比较了四种用于电动汽车应用的逆变器拓扑,包括广泛使用的基于igbt的两电平逆变器(TLI),技术先进的基于SiC MOSFET的TLI,以及五电平和七电平级联h桥(CHB)逆变器。虽然基于IGBT的tli结构简单,成本效益高,易于控制,但它们具有高谐波失真和损耗。最近的研究主要集中在使用SiC mosfet在tli中,以提高功率密度和效率。CHB逆变器也成为tli的一个有前途的替代品,提供更好的电能质量,更低的电压应力,可扩展性和容错能力。这项工作的比较是基于损耗、成本和热分析,使用PLECS软件进行模拟。结果表明,CHB五电平逆变器拓扑结构具有更好的热性能、更低的总谐波失真(THD)和更低的损耗,是电动汽车动力系统的最佳选择。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comparative Analysis of Two-Level and Multilevel CHB Topologies for EV Drivetrain
The climate change and scarcity of fossil fuel resources has resulted in the shift of automotive industry towards an environment friendly and sustainable solution, i.e. electric vehicle (EV). The DC-AC inverter is one of the main building blocks of EV power train. Selection of an appropriate inverter topology leads to optimal performance, cost effectiveness and reliable operation of the whole power train. This paper compares four inverter topologies for EV applications, including the widely used two-level inverter (TLI) based on IGBTs, technologically advanced SiC MOSFET based TLI, and five and seven-level Cascaded H-Bridge (CHB) inverters. While IGBT -based TLIs are simple, cost-effective, and easy to control, they suffer from high harmonic distortion and losses. Recent research has focused on using SiC MOSFETs in TLIs to improve power density and efficiency. CHB inverters have also emerged as a promising alternative to TLIs, offering better power quality, lower voltage stress, scalability, and fault tolerance capabilities. The comparison in this work is based on losses, cost, and thermal analysis using PLECS software for simulations. Based on the results, it is concluded that the CHB five-level inverter topology is a superior choice for EV powertrains, offering better thermal behavior, reduced total harmonic distortion (THD), and lower losses.
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