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Numerical and experimental study of the effects of load and distance variation on wireless power transfer systems using magnetically coupled resonators

机译:负载和距离变化对使用磁耦合谐振器的无线电力传输系统的影响的数值和实验研究

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This work investigates ways of simulating a series resonant circuit designed to wirelessly transfer power to charge a battery of an electrical vehicle. A common approach assumes the load connected to the power transfer system to be constant and then the wireless link efficiency is studied. In practical engineering applications, however, the load and the distance between coils will vary influencing strongly the efficiency, which may also be affected by the presence of massive conducting or shielding structures in the proximity of the wireless system. Here we study these effects with the help of an equivalent circuit extracted from a full 3D field simulation and correlated with measured results. We reveal that by changing the load resistance the efficiency of the system can be improved, even for a large separation between the two magnetically coupled resonators; however, the maximum efficiency point may not correspond to the maximum power that can be handled by the system. We analyse the primary and secondary voltages and currents in support of the above findings.
机译:这项工作研究了模拟串联谐振电路的方法,该电路设计用于无线传输功率以为电动汽车的电池充电。通用方法假设连接到电力传输系统的负载恒定,然后研究无线链路效率。但是,在实际的工程应用中,负载和线圈之间的距离会发生变化,从而极大地影响效率,这也可能会受到无线系统附近大型导电或屏蔽结构的影响。在这里,我们借助于从完整的3D场仿真中提取的等效电路并与测量结果相关联来研究这些影响。我们发现通过改变负载电阻,即使两个磁耦合谐振器之间的间隔较大,也可以提高系统的效率。但是,最大效率点可能不对应于系统可以处理的最大功率。我们分析一次和二次电压和电流以支持上述发现。

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