Design and optimization of cancellation coil topologies for a ferrite-less wireless EV charging pad

A. D. Scher, Mostak Mohammad, B. Ozpineci, O. Onar
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引用次数: 2

Abstract

Ferrite cores are widely used in conventional wireless EV charging pads to reduce stray EMF emissions, but they can be brittle, heavy, and expensive. This work furthers the development of ferrite-less wireless charging pads by comparing an active and two distinct passive cancellation coil topologies as candidates to replace the ferrite. Using the software packages FEMM and MATLAB, each topology is optimized to find the best winding positions and radii to minimize leakage at a specified position under the side of the vehicle. The optimized designs are compared for shielding effectiveness, induced current, and efficiency. All three topologies are able to sufficiently reduce the leakage field below the ICNIRP limit of $27\ \mu\mathrm{T}_{\text{rms}}$ with just one turn. Interestingly, we find that an array of simple passive cancellation loops performs similar to the more widely studied passive cancellation coil.
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无铁氧体电动汽车无线充电垫消消线圈拓扑结构设计与优化
铁氧体磁芯广泛用于传统的无线电动汽车充电垫,以减少杂散EMF辐射,但它们可能易碎、重且昂贵。这项工作通过比较有源和两种不同的无源抵消线圈拓扑作为替代铁氧体的候选材料,进一步推动了无铁氧体无线充电垫的发展。利用FEMM和MATLAB软件包对每种拓扑结构进行优化,以找到最佳绕组位置和半径,从而最大限度地减少车辆侧下指定位置的泄漏。对优化后的设计进行了屏蔽效能、感应电流和效率的比较。这三种拓扑结构都能够充分地将泄漏场降低到ICNIRP极限$27\ \mu\ mathm {T}_{\text{rms}}$以下,只需一次转弯。有趣的是,我们发现一组简单的无源抵消回路的性能与更广泛研究的无源抵消线圈相似。
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