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Long Range Ultra-High Frequency (UHF) Radio Frequency Identification (RFID) Antenna Design

机译:远程超高频(UHF)射频识别(RFID)天线设计

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摘要

There is an ever-increasing demand for radio frequency identification (RFID) tags that are passive, long range, and mountable on multiple surfaces. Currently, RFID technology is utilized in numerous applications such as supply chain management, access control, and public transportation. With the combination of sensory systems in recent years, the applications of RFID technology have been extended beyond tracking and identifying. This extension includes applications such as environmental monitoring and healthcare applications. The available sensory systems usually operate in the medium or high frequency bands and have a low read range. However, the range limitations of these systems are being overcome by the development of RFID sensors focused on utilizing tags in the ultra-high frequency (UHF) band.Generally, RFID tags have to be mounted to the object that is being identified. Often the objects requiring identification are metallic. The inherent properties of metallic objects have substantial effects on nearby electromagnetic radiation; therefore, the operation of the tag antenna is affected when mounted on a metallic surface. This outlines one of the most challenging problems for RFID systems today: the optimization of tag antenna performance in a complex environment.In this research, a novel UHF RFID tag antenna, which has a low profile, long range, and is mountable on metallic surfaces, is designed analytically and simulated using a 3-D electromagnetic simulator, ANSYS HFSS. A microstrip patch antenna is selected as the antenna structure, as patch antennas are low profile and suitable for mounting on metallic surfaces. Matching and theoretical models of the microstrip patch antenna are investigated. Once matching and theory of a microstrip patch antenna is thoroughly understood, a unique design technique using electromagnetic band gap (EBG) structures is explored. This research shows that the utilization of an EBG structure in the patch antenna design yields an improvement in gain, or range, and in the ability to be mounted on multiple metallic surfaces.
机译:对于无源,远距离且可安装在多个表面上的射频识别(RFID)标签的需求不断增长。当前,RFID技术被用于许多应用中,例如供应链管理,访问控制和公共交通。近年来,随着传感系统的结合,RFID技术的应用已扩展到跟踪和识别之外。该扩展包括环境监控和医疗保健应用程序。可用的传感系统通常在中或高频带中运行,并且具有较低的读取范围。但是,通过专注于利用超高频(UHF)频段中的标签的RFID传感器的开发,克服了这些系统的范围限制。通常,必须将RFID标签安装到要识别的物体上。通常,需要识别的物体是金属的。金属物体的固有特性会对附近的电磁辐射产生重大影响。因此,当将标签天线安装在金属表面上时,其操作会受到影响。这概述了当今RFID系统最具挑战性的问题之一:在复杂环境中优化标签天线性能。在这项研究中,一种新颖的UHF RFID标签天线具有低轮廓,长距离且可安装在金属表面上的特点使用3-D电磁仿真器ANSYS HFSS进行分析和仿真。选择微带贴片天线作为天线结构,因为贴片天线外形小巧,适合安装在金属表面上。研究了微带贴片天线的匹配模型和理论模型。一旦对微带贴片天线的匹配和理论有了透彻的了解,便会探索出一种使用电磁带隙(EBG)结构的独特设计技术。这项研究表明,在贴片天线设计中利用EBG结构可以提高增益或范围,并可以将其安装在多个金属表面上。

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    Reynolds Nathan D.;

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  • 年度 2012
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