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A Review of Multilevel Inverter Topologies in Electric Vehicles: Current Status and Future Trends

机译:电动汽车多级逆变器拓扑综述:现状与未来趋势

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摘要

Traction inverter, as a critical component in electrified transportation, has been the subject of many research projects in terms of topologies, modulation, and control schemes. Recently, some of the well-known electric vehicle manufacturers have utilized higher-voltage batteries to benefit from lower current, higher power density, and faster charging times. With the ongoing trend toward higher DC-link voltage in electric vehicles, some multilevel structures have been investigated as a feasible and efficient option for replacing the two-level inverters. Higher efficiency, higher power density, better waveform quality, and inherent fault-tolerance are the foremost advantages of multilevel inverters which make them an attractive solution for this application. This paper presents an investigation of the advantages and disadvantages of higher DC-link voltage in traction inverters, as well as a review of the recent research on multilevel inverter topologies for electrified transportation applications. A comparison of multilevel inverters with their two-level counterpart is conducted in terms of efficiency, cost, power density, power quality, reliability, and fault tolerance. Additionally, a comprehensive comparison of different topologies of multilevel inverters is conducted based on the most important criteria in transportation electrification. Future trends and possible research areas are also discussed.
机译:作为电气化运输中的关键组件的牵引逆变器一直是拓扑,调制和控制方案方面的许多研究项目的主题。最近,一些着名的电动车辆制造商已经利用了更高电压电池,从而低于较低的电流,更高的功率密度和更快的充电时间。随着电动车辆中的较高直流链路电压的持续趋势,已经研究了一些多级结构作为更换双层逆变器的可行和有效的选择。效率更高,功率密度更高,波形质量更高,固有的容错是多级逆变器的最重要优点,这使得它们为此应用提供了一种有吸引力的解决方案。本文介绍了牵引反相器中较高的直流电电压的优缺点,以及回顾最近对电气化运输应用的多级逆变器拓扑的研究。在效率,成本,功率密度,功率质量,可靠性和容错方面进行了多级逆变器与其两级对应的比较。另外,基于运输电气化最重要的标准进行多级逆变器的不同拓扑的全面比较。还讨论了未来的趋势和可能的研究领域。

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