Quality Factor Based Design Guideline for Optimized Inductive Power Transfer

Francesca Grazian, Wenli Shi, T. Soeiro, Jianning Dong, P. V. van Duijsen, P. Bauer
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Abstract

In high-power wireless battery charging that uses inductive power transfer, a considerable amount of power losses are located in the transmitter and receiver coils because they carry high resonant currents and typically have a loose coupling between them which increases eddy current losses. Therefore, the nominal operation needs to be chosen such that the coils' losses are minimized. Additionally, the inverter's semiconductors soft-switching improves both the power conversion efficiency and the electromagnetic compatibility of the system, thus it needs to be safeguarded for a wide operating range. However, depending on the chosen quality factor of the coils, it might happen that the minimum coils' losses and soft-switching are not satisfied at the same time. This paper defines a guideline on the parametric selection of the coils' quality factor such that the optimum operation of both the coils and the resonant converter can be achieved simultaneously. This parametric guideline is proposed for resonant converters implementing the four basic compensation networks: series-series, series-parallel, parallel-series, and parallel-parallel. Finally, circuit examples are provided for an 11 kW wireless battery charging system.
基于质量因子的感应功率传输优化设计准则
在使用感应功率传输的高功率无线电池充电中,相当多的功率损失位于发射器和接收器线圈中,因为它们携带高谐振电流,并且它们之间通常具有松散耦合,这增加了涡流损失。因此,标称操作的选择需要使线圈的损耗最小化。此外,逆变器的半导体软开关提高了功率转换效率和系统的电磁兼容性,因此需要保障其在较宽的工作范围内工作。然而,根据所选择的线圈质量因子,可能会出现线圈的最小损耗和软开关不能同时满足的情况。本文定义了线圈质量因数的参数选择准则,使线圈和谐振变换器同时达到最佳工作状态。该参数准则适用于实现串联-串联、串联-并联、并联-串联和并联-并联四种基本补偿网络的谐振变换器。最后,给出了一个11kw无线电池充电系统的电路实例。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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