无线电力传输车辆充电系统磁场发射的实验研究

S. Jeschke, Marcel Olbrich, Michael Kleinen, J. Baerenfaenger
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引用次数: 2

摘要

随着全球电动汽车数量的增加,必须实施适当的充电基础设施,以确保交通运输部门成功的结构转型。通常,传导充电用于使用直流电和高达350千瓦的充电功率进行快速充电,或用于例如11千瓦的私人充电的交流电。此外,无线充电技术正在开发中,以实现充电过程的潜在更高水平的自动化。因此,这项技术必须与自动驾驶功能结合起来考虑,以提供完全自动驾驶的车辆使用。由于这些无线充电系统使用两个空气耦合的平面线圈进行能量传输,工作频率在79 kHz到90 kHz之间,因此电磁发射成为一个重要的问题。特别是9khz ~ 30mhz之间的磁场发射是当前标准化进程的主要焦点。本文研究了无线充电系统的磁场发射,并考虑了干扰电流对磁场产生的影响。除此之外,还研究了测量环境对这些排放的影响。由于测量通常在半消声室中进行,而对于无线充电系统,典型的应用区域是例如,周围有不导电地板和墙壁的停车场,因此执行比较测量以显示环境对测量结果的影响
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Experimental Investigation on Magnetic Field Emissions of Wireless Power Transfer Vehicle Charging Systems
Along with an increasing amount of electrified vehicles worldwide, an appropriate charging infrastructure has to be implemented to ensure a successful structural transformation in the transport sector. Commonly, conducted charging is used for fast charging using direct current and charging powers up to 350 kW or alternating current for e.g. private charging with 11 kW. Furthermore, wireless charging technologies are in development for a potentially higher level of automation of the charging process, especially. Thus, this technology has to be considered in context with automated driving functions, to provide a completely autonomous vehicle usage. As these wireless charging systems use two air-coupled, planar coils for energy transmission at an operating frequency between 79 kHz and 90 kHz, the electromagnetic emissions become an important issue. Especially the magnetic field emissions between 9 kHz and 30 MHz are the main focus of the current standardization process. This work focusses on the magnetic field emissions of a wireless charging system considering the disturbance currents, which are responsible for the field generation. Beside this, the impact of the measurement environment on these emissions is investigated. As the measurements are commonly conducted in a semi-anechoic chamber, while for wireless charging systems the typical area of application is e.g. a parking place with nonconductive floor and walls around, comparative measurements are executed to show the effects of the environment on the measurement results
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