丰田RAV4电动汽车大功率无线充电系统开发与集成

O. Onar, S. Campbell, L. Seiber, C. White, M. Chinthavali
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引用次数: 43

摘要

有几种无线充电方法正在开发中,或者可以作为轻型汽车市场的售后选择。然而,详细介绍车辆集成的研究并不多,特别是完全集成的车辆应用。本文介绍了基于大功率(>10 kW)无线电力传输(WPT)的丰田RAV4电动汽车(EV)充电系统的开发、实现和整车集成。介绍了该系统的功率级,包括带功率因数校正的前端有源整流器(PFC)、高频逆变器、高频隔离变压器、耦合线圈、车侧全桥整流器和滤波器、车用蓄电池等控制系统的设计规范和控制系统。介绍了整个无线充电系统的工作原理和控制系统。还定义了系统的物理限制,这些限制将阻止系统在更高级别上运行。给出了不匹配(可互操作)线圈和匹配线圈两种情况下的系统性能。在集成车辆上进行了实验,得到的结果证明了系统的性能,包括匹配和互操作的初级和次级线圈的逐级效率。
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A high-power wireless charging system development and integration for a Toyota RAV4 electric vehicle
Several wireless charging methods are under development or available as an aftermarket option in the light-duty automotive market. However, there are not many studies detailing the vehicle integrations, particularly a fully integrated vehicle application. This paper presents the development, implementation, and vehicle integration of a high-power (>10 kW) wireless power transfer (WPT)-based electric vehicle (EV) charging system for a Toyota RAV4 vehicle. The power stages of the system are introduced with the design specifications and control systems including the active front-end rectifier with power factor correction (PFC), high frequency power inverter, high frequency isolation transformer, coupling coils, vehicle side full-bridge rectifier and filter, and the vehicle battery. The operating principles of the overall wireless charging system as well as the control system are presented. The physical limitations of the system are also defined that would prevent the system from operating at higher levels. The system performance is shown for two cases including unmatched (interoperable) and matched coils. The experiments are carried out using the integrated vehicle and the results are obtained to demonstrate the system performance including the stage-by-stage efficiencies with matched and interoperable primary and secondary coils.
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