The multipole nature of the extraneous field of a magnetic field wireless power transfer system

J. Mclean, R. Sutton
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引用次数: 8

Abstract

Because efficiency is paramount, magnetic field wireless power transfer (MF-WPT) systems are tuned in a manner similar to some tuned linear transformers, such as IF transformers, in which the primary and secondary circuits are each tuned to the same resonant frequency (synchronous tuning) and then the load resistance adjusted for critical coupling. This causes the primary and secondary currents to be 90° out of phase with one another. The phase difference gives rise to a unique extraneous electromagnetic field consisting primarily of contributions from a magnetic dipole and a linear magnetic quadrupole. At great distance, the dipole moment contribution dominates. However, in the immediate vicinity of the system, the contribution from the quadrupole moment can dominate and thus there exists a certain distance from the system (dependent on direction) at which the dipole and quadrupole contributions are of the same order. We determine this distance for typical MF-WPT designs at ground level and find that the contribution of the dipole moment dominates the magnetic field at distances frequently specified in EMC standards, e.g. 3 and 10 meters. This conclusion has implications for characterization procedures which involve the the measurement of only the magnetic dipole moment.
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磁场无线电力传输系统外场的多极特性
由于效率是最重要的,磁场无线电力传输(MF-WPT)系统的调谐方式类似于一些调谐线性变压器,例如中频变压器,其中初级和次级电路分别调谐到相同的谐振频率(同步调谐),然后根据临界耦合调整负载电阻。这导致初级和次级电流彼此相位差为90°。相位差产生了一个独特的外来电磁场,主要由磁偶极子和线性磁四极子组成。在远距离上,偶极矩的贡献占主导地位。然而,在系统的邻近区域,四极矩的贡献可以占主导地位,因此与系统存在一定距离(取决于方向),在此距离上偶极矩和四极矩的贡献具有相同的量级。我们确定了地面上典型的MF-WPT设计的这个距离,并发现偶极矩的贡献在EMC标准中经常规定的距离(例如3米和10米)上占主导地位。这一结论对仅测量磁偶极矩的表征程序具有启示意义。
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