A directional, low-profile zero-phase-shift-line (ZPSL) loop antenna for UHF near-field RFID applications

Q2 Social Sciences
Yunjia Zeng, X. Qing, Zhi Ning Chen
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引用次数: 0

Abstract

A low-profile zero-phase-shift-line (ZPSL) loop antenna is proposed to achieve a directional magnetic near-field distribution for applications in ultra-high frequency (UHF) near-field radio-frequency identification (RFID). The proposed antenna consists of three coaxially-stacked components, including a driven ZPSL loop, a parasitic ZPSL loop, and a metallic plate reflector. Conventional directional antennas that involve metallic plate reflectors require an optimal separation of one-quarter of a wavelength at the operating frequency between the antenna and the plate. Decreasing the separation would result in poor impedance matching as well as a reduction in gain for far-field antennas. To realize a low-profile directional far-field antenna, a novel approach was recently proposed by adding a parasitic strip between a dipole antenna and a metallic plate reflector, such that the phase of the reflected wave can be properly controlled. In this manner, the separation between the antenna and the reflector is reduced to 0.05 of the operating wavelength, while keeping the reflected and the directly radiated fields in phase in the desired direction. In this paper, such an approach is extended to the design of near-field antenna. Because of the geometry of the bi-directional ZSPL loop, the parasitic element is chosen as an aperiodic ZPSL loop that has the same geometry as the driven element to ensure a strong coupling between the two loops. In the design of near-field antennas, the current distributions of the antennas are the decisive factors affecting the near-field distributions. Therefore, the proposed antenna is designed based on the current distributions instead of the phase information as in the case of far-field antennas. The proposed antenna is fabricated and measured, and it proves to be an effective reader antenna for UHF near-field RFID applications.
一种用于UHF近场RFID应用的定向,低轮廓零相移线(ZPSL)环路天线
提出了一种低轮廓零相移线(ZPSL)环形天线,用于实现超高频(UHF)近场射频识别(RFID)应用中的定向磁近场分布。该天线由三个同轴堆叠组件组成,包括驱动ZPSL环路、寄生ZPSL环路和金属板反射器。使用金属板反射器的传统定向天线要求天线和板之间在工作频率上的最佳间隔为波长的四分之一。减小距离会导致远场天线的阻抗匹配不良以及增益降低。为了实现低轮廓的定向远场天线,最近提出了一种新的方法,即在偶极子天线和金属板反射器之间增加寄生条,从而可以适当地控制反射波的相位。这样,天线与反射面之间的距离减小到工作波长的0.05,同时使反射场与直接辐射场在期望的方向上保持同相。本文将这种方法推广到近场天线的设计中。由于双向ZSPL环路的几何形状,因此选择寄生元件作为与驱动元件具有相同几何形状的非周期ZPSL环路,以确保两个环路之间的强耦合。在近场天线的设计中,天线的电流分布是影响近场分布的决定性因素。因此,所提出的天线是基于电流分布而不是像远场天线那样基于相位信息设计的。实验结果表明,该天线是一种适用于超高频近场RFID应用的有效读取天线。
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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来源期刊
Advances in Engineering Education
Advances in Engineering Education Social Sciences-Education
CiteScore
2.90
自引率
0.00%
发文量
8
期刊介绍: The journal publishes articles on a wide variety of topics related to documented advances in engineering education practice. Topics may include but are not limited to innovations in course and curriculum design, teaching, and assessment both within and outside of the classroom that have led to improved student learning.
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