Design approach for high efficiency NFC systems with magnetic shielding materials

J. Victoria, P. A. Martinez, A. Suarez, A. Alcarria, Sebastian Mirasol, J. Torres
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引用次数: 1

Abstract

The performance of a Near Field Communication (NFC) antenna may be diminished when it is placed close to any conductive surface such as a metallic case or a battery. This degradation is caused due to the stray magnetic field created by the eddy currents induced on the surface, which is opposite to the intended field generated by the NFC antenna. One of the first solutions that come to mind to designers when facing this problem is the use of high permeability magnetic shielding based on sintered ferrite sheets. This is a good approach but something that is not generally taken into account is that these materials introduce an additional inductance to the NFC antenna. If the permeability of the material is too high (respecting the necessary value for solving the problem), this additional inductance results in shifting the resonance frequency to lower values than the desired (13.56 MHz). Thereby this contribution focuses on the analysis of a ferrite-polymer composite magnetic shielding that provides lower relative permeability (µr = 25) at the communication frequency. This approach is more effective against the presence of a metallic element when there is a gap of some millimeters between the conductive surface and the NFC antenna. Therefore, different thicknesses of the same ferrite-polymer material are evaluated and the effect of introducing this kind of shielding between the conductive surface and the NFC antenna is analyzed from the standpoint of the loop antenna equivalent circuit. The results presented are based on the Smith Chart measurement as well as a simulation model that corroborates the results obtained experimentally.
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采用磁屏蔽材料的高效近场通信系统设计方法
当近场通信(NFC)天线靠近任何导电表面(如金属外壳或电池)时,其性能可能会降低。这种退化是由于在表面上感应涡流产生的杂散磁场引起的,这与NFC天线产生的预期场相反。面对这个问题,设计人员首先想到的解决方案之一是使用基于烧结铁氧体片的高磁导率磁屏蔽。这是一种很好的方法,但通常没有考虑到的是,这些材料会给NFC天线带来额外的电感。如果材料的磁导率太高(考虑到解决问题的必要值),这个额外的电感会导致共振频率移动到比期望的值(13.56 MHz)更低的值。因此,本文的贡献集中在铁氧体-聚合物复合磁屏蔽的分析上,该屏蔽在通信频率下提供较低的相对磁导率(µr = 25)。当导电表面和NFC天线之间有几毫米的间隙时,这种方法对金属元素的存在更有效。因此,对同一种铁氧体聚合物材料的不同厚度进行了评价,并从环形天线等效电路的角度分析了在导电表面与NFC天线之间引入这种屏蔽的效果。本文给出的结果是基于史密斯图测量和一个模拟模型,该模型证实了实验结果。
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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