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Loss Analysis and Mapping of a SiC MOSFET Based Segmented Two-Level Three-Phase Inverter for EV Traction Systems

机译:基于SiC MOSFET的电动牵引系统分段两电平三相逆变器的损耗分析与映射。

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Emerging wide-bandgap based power semiconductor devices are gaining popularity in power electronic systems for automotive applications with the aim of increased power density, reduced weight and increased efficiency. In this work, loss analysis and mapping of a segmented two-level inverter based on SiC MOSFETs are presented in order to identify the challenges in design of power electronics and electric machines for EV applications. The paper starts with description of the EV traction system that is chosen as the study case, followed by segmented inverter topology, power device selection and sizing. The theoretical switching, conduction and dead-time conduction loss analysis for the SiC MOSFETs in the segmented two-level inverter topology are presented under any given operating condition. The analysis is followed by loss mapping of the motor, inverter and overall EV traction system. The loss maps of the inverter and the motor show that each component has different thermal loading trends under given torque-speed characteristics. Therefore, various operating conditions have to be considered for the design of traction system components to ensure reliability and high performance, which are critical requirements for EV systems.
机译:新兴的基于宽带隙的功率半导体器件在汽车应用的功率电子系统中越来越受欢迎,其目的是提高功率密度,减轻重量和提高效率。在这项工作中,提出了基于SiC MOSFET的分段式两电平逆变器的损耗分析和映射,以识别在电动汽车应用的电力电子和电机设计中面临的挑战。本文首先介绍了作为研究案例选择的EV牵引系统,然后介绍了分段逆变器拓扑,功率器件选择和选型。在任何给定的工作条件下,都给出了分段两电平逆变器拓扑中的SiC MOSFET的理论开关,导通和空载时间导通损耗分析。分析之后是电动机,逆变器和整个EV牵引系统的损耗映射。逆变器和电动机的损耗图表明,在给定的转矩-速度特性下,每个组件的热负荷趋势都不同。因此,牵引系统组件的设计必须考虑各种运行条件,以确保可靠性和高性能,这是电动汽车系统的关键要求。

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