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Analysis and Evaluation of DC-Link Capacitors for High-Power-Density Electric Vehicle Drive Systems

机译:大功率密度电动汽车驱动系统直流母线电容器的分析和评估

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摘要

In electric vehicle (EV) inverter systems, direct-current-link capacitors, which are bulky, heavy, and susceptible to degradation from self heating, can become a critical obstacle to high power density. This paper presents a comprehensive method for the analysis and comparative evaluation of dc-link capacitor applications to minimize the volume, mass, and capacitance. Models of equivalent series resistance that are valid over a range of frequency and operating temperature are derived and experimentally validated. The root-mean-square values and frequency spectra of the capacitor current are analyzed with respect to three modulation strategies and various operating conditions over practical ranges of load power factor and modulation index in EV drive systems. The modeling and analysis also consider the self-heating process and resulting core temperature of the dc-link capacitors, which impacts their lifetimes. Based on an 80-kW permanent-magnet (PM) motor drive system, the application of electrolytic capacitors and film capacitors has been evaluated by both simulation and experimental tests. The inverter power density is improved from 2.99 kW/L to 13.3 kW/L, without sacrificing the system performance in terms of power loss, core temperature, and lifetime.
机译:在电动汽车(EV)逆变器系统中,体积庞大,笨重且易于因自热而退化的直流链路电容器可能成为阻碍高功率密度的关键因素。本文提出了一种用于分析和比较评估直流链路电容器应用的综合方法,以最小化体积,质量和电容。推导了等效串联电阻模型,该模型在一定频率和工作温度范围内有效,并进行了实验验证。针对三种调制策略以及在EV驱动系统中负载功率因数和调制指数的实际范围内的各种工作条件,分析了电容器电流的均方根值和频谱。建模和分析还考虑了直流链电容器的自加热过程和产生的核心温度,这会影响其寿命。基于80 kW永磁(PM)电机驱动系统,已通过仿真和实验测试对电解电容器和薄膜电容器的应用进行了评估。逆变器的功率密度从2.99 kW / L提高到13.3 kW / L,而不会在功率损耗,铁芯温度和使用寿命方面牺牲系统性能。

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