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用于全球无线通信系统的柔性可穿戴复合天线。

Flexible Wearable Composite Antennas for Global Wireless Communication Systems.

机构信息

Key Laboratory of Instrumentation Science & Dynamic Measurement, North University of China, Ministry of Education, Taiyuan 030051, China.

School of Instrument and Electronics, North University of China, Taiyuan 030051, China.

出版信息

Sensors (Basel). 2021 Sep 10;21(18):6083. doi: 10.3390/s21186083.

Abstract

Although wearable antennas have made great progress in recent years, how to design high-performance antennas suitable for most wireless communication systems has always been the direction of RF workers. In this paper, a new approach for the design and manufacture of a compact, low-profile, broadband, omni-directional and conformal antenna is presented, including the use of a customized flexible dielectric substrate with high permittivity and low loss tangent to realize the compact sensing antenna. Poly-di-methyl-siloxane (PDMS) is doped a certain proportion of aluminum trioxide (AlO) and Poly-tetra-fluoro-ethylene (PTFE) to investigate the effect of dielectric constant and loss tangent. Through a large number of comparative experiments, data on different doping ratios show that the new doped materials are flexible enough to increase dielectric constant, reduce loss tangent and significantly improve the load resistance capacity. The antenna is configured with a multisection microstrip stepped impedance resonator structure (SIR) to expand the bandwidth. The measured reflection return loss (S11) showed an operating frequency band from 0.99 to 9.41 GHz, with a band ratio of 146%. The antenna covers two important frequency bands, 1.71-2.484 GHz (personal communication system and wireless body area network (WBAN) systems) and 5.15-5.825 GHz (wireless local area network-WLAN)]. It also passed the SAR test for human safety. Therefore, the proposed antenna offers a good chance for full coverage of WLAN and large-scale development of wearable products. It also has potential applications in communication systems, wireless energy acquisition systems and other wireless systems.

摘要

尽管可穿戴天线近年来取得了很大的进展,但如何设计适用于大多数无线通信系统的高性能天线一直是射频工作者的方向。本文提出了一种新的设计和制造方法,用于设计紧凑、低剖面、宽带、全向和共形天线,包括使用具有高介电常数和低损耗正切的定制柔性介电基板来实现紧凑感应天线。聚二甲基硅氧烷(PDMS)中掺杂一定比例的三氧化二铝(AlO)和聚四氟乙烯(PTFE),以研究介电常数和损耗正切的影响。通过大量的对比实验,不同掺杂比例的数据表明,新型掺杂材料具有足够的柔韧性,可以增加介电常数,降低损耗正切,并显著提高负载电阻能力。该天线采用多节微带阶梯阻抗谐振器结构(SIR)来扩展带宽。测量的反射回波损耗(S11)显示工作频率范围为 0.99 至 9.41GHz,带宽比为 146%。该天线覆盖了两个重要的频率带,1.71-2.484GHz(个人通信系统和无线体域网(WBAN)系统)和 5.15-5.825GHz(无线局域网-WLAN)]。它还通过了人体安全 SAR 测试。因此,所提出的天线为 WLAN 的全面覆盖和可穿戴产品的大规模发展提供了良好的机会。它还在通信系统、无线能量收集系统和其他无线系统中具有潜在的应用。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/46b7/8468086/b74f987e1526/sensors-21-06083-g001.jpg

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