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Improving the efficiency of magnetic coupling energy transfer by etching fractal patterns in the shielding metals

机译:通过刻蚀屏蔽金属中的分形图案来提高磁耦合能量传输的效率

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Thin metal sheets are often located in the coupling paths of magnetic coupling energy transfer (MCET) systems. eddy currents in the metals reduce the energy transfer efficiency and can even present safety risks. This paper describes the use of etched fractal patterns in the metals to suppress the eddy currents and improve the efficiency. Simulation and experimental results show that this approach is very effective. The fractal patterns should satisfy three features, namely, breaking the metal edge, etching in the high-intensity magnetic field region, and etching through the metal in the thickness direction. Different fractal patterns lead to different results. By altering the eddy current distribution, the fractal pattern slots reduce the eddy current losses when the metals show resistance effects and suppress the induced magnetic field in the metals when the metals show inductance effects. fractal pattern slots in multilayer high conductivity metals (e.g., Cu) reduce the induced magnetic field intensity significantly. Furthermore, transfer power, transfer efficiency, receiving efficiency, and eddy current losses all increase with the increase of the number of etched layers. These results can benefit MCET by efficient energy transfer and safe use in metal shielded equipment.
机译:薄金属板通常位于磁耦合能量传输(MCET)系统的耦合路径中。金属中的涡流会降低能量传输效率,甚至会带来安全隐患。本文介绍了在金属中使用蚀刻的分形图案来抑制涡流并提高效率。仿真和实验结果表明,该方法非常有效。分形图案应满足三个特征,即破坏金属边缘,在高强度磁场区域中进行蚀刻以及在厚度方向上贯穿金属进行蚀刻。不同的分形模式导致不同的结果。通过改变涡流分布,当金属表现出电阻效应时,分形图案槽可减少涡流损耗,而当金属表现出电感效应时,分形图案槽可抑制金属中的感应磁场。多层高电导率金属(例如Cu)中的分形图案缝隙显着降低了感应磁场强度。此外,随着蚀刻层数的增加,转移功率,转移效率,接收效率和涡流损耗都增加。这些结果可通过有效的能量传输和在金属屏蔽设备中的安全使用而使MCET受益。

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