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Compact and Efficient Bipolar Coupler for Wireless Power Chargers: Design and Analysis

机译:紧凑高效的无线充电器双极耦合器:设计与分析

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Compactness and efficiency are the two basic considerations of the wireless battery chargers for electric vehicles (EVs) and plug-in hybrid EVs. The double-sided LCC compensation topology for wireless power transfer (WPT) has been proved to be one of the efficient solutions lately. However, with the increase of the numbers of compensation components, the volume of the system may become larger, which makes it less attractive. To improve the compactness, a bipolar coupler structure with a compensation-integrated feature is proposed. The inductors of the LCC compensation networks are designed as planar-type and attached to the power-transferring main coils. Extra space and magnetic cores for the compensated inductors outside of the coupler are saved. The cost is that extra couplings between the compensated coils (inductors) and the main coils are induced. To validate the feasibility, the proposed coupler is modeled and investigated by 3-D finite-element analysis tool first. The positioning of the compensated coils, the range of the extra couplings, and the tolerance to misalignment are studied. This is followed by the circuit modeling and characteristic analysis of the proposed WPT topology based on the fundamental harmonic approximation. At last, a 600 mm × 600 mm with a nominal 150-mm-gap wireless charger prototype, operated at a resonant frequency of 95 kHz and a rated power of 5.6 kW has been built and tested. A peak efficiency of 95.36% from a dc power source to the battery load is achieved at rated operation condition.
机译:紧凑性和效率是电动汽车(EV)和插电式混合动力电动汽车的无线充电器的两个基本考虑因素。最近,已证明用于无线功率传输(WPT)的双面LCC补偿拓扑是有效的解决方案之一。然而,随着补偿部件数量的增加,系统的体积可能变大,这使其吸引力降低。为了提高紧凑性,提出了一种具有补偿集成特征的双极耦合器结构。 LCC补偿网络的电感器设计为平面型,并连接到功率传输主线圈。节省了耦合器外部用于补偿电感器的额外空间和磁芯。代价是在补偿线圈(电感器)和主线圈之间产生了额外的耦合。为了验证可行性,首先通过3-D有限元分析工具对拟议的耦合器进行建模和研究。研究了补偿线圈的位置,额外耦合的范围以及对不对中的公差。接下来是基于基本谐波近似的拟建WPT拓扑的电路建模和特性分析。最后,已经制造并测试了600mm×600mm的标称150毫米间隙无线充电器原型,其谐振频率为95kHz,额定功率为5.6kW。在额定工作条件下,从直流电源到电池负载的峰值效率达到95.36%。

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