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Array sub-loops reader antenna for HF RFID tracking

机译:阵列子回路读取器天线,用于HF RFID跟踪

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摘要

This paper focuses on tracking and objects identification by means of High Frequency magnetic coupling RFID (Radio Frequency IDentification) at 13, 56 MHz. The coil of the used RFID tags corresponds to 1.9% of the reader coil surface (120×160 cm2). To increase the size ratio between the two coils, we proposed the use of multiple twisted loops antenna. The reader antenna is consequently divided into four sub-loops, corresponding to 8% of the surface of each one of the sub-loops area. According to the principle of twisted loop antenna, the nearest sub-loops are feed by current in opposite phase (complementary loops principle), and. This structure creates a strength curvature of magnetic field lines between each two of them, improving the magnetic coupling for vertical magnetic dipoles. In contrast, the structure presents at its center a null of magnetic field intensity due to the symmetry. To avoid this inconvenient a resonator is added to the structure to broke the symmetry and modify the magnetic field distribution. Its positioning is studied to optimize RFID detection in different angular and lateral positioning of the tag. Simulations and measurements of the proposed design with and without resonator are presented in the different parts of this paper.
机译:本文着重于通过13、56 MHz的高频磁耦合RFID(射频识别)进行跟踪和物体识别。所使用的RFID标签的线圈占读取器线圈表面的1.9%(120×160 cm 2 )。为了增加两个线圈之间的尺寸比,我们提出了使用多重扭曲回路天线的方法。因此,读取器天线被分为四个子环路,分别对应于每个子环路区域面积的8%。根据双绞线天线原理,最近的子环路由反相的电流馈入(互补环路原理)。这种结构在它们每两个之间产生了磁力线的强度曲率,从而改善了垂直磁偶极子的磁耦合。相反,由于对称性,该结构在其中心呈现零磁场强度。为了避免这种不便,将谐振器添加到结构中以破坏对称性并修改磁场分布。研究了其定位,以优化标签在不同角度和横向位置上的RFID检测。本文不同部分分别介绍了采用和不采用谐振器的拟议设计的仿真和测量结果。

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