Saïd Douhi, Adil Eddiai, Omar Cherkaoui, M’hammed Mazroui
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The antenna was fabricated using a felt fabric substrate and e-textile conductive materials, providing excellent flexibility, lightweight properties, and seamless integration into garments. The fabricated prototype, measuring 80 mm × 57 mm × 1 mm, achieved a measured impedance bandwidth of 118% (1.78–7 GHz). The gain varies between 2.17 dBi and 8.9 dBi, while the efficiency ranges from 85 to 97% over the operational frequency range, making this antenna a promising candidate for high-data-rate and efficient communication links. Structural deformation tests confirmed the antenna’s stable performance under mechanical stress and human body loading. Additionally, the simulated specific absorption rate (SAR) values remained within FCC limits, validating the antenna’s safety for wearable applications. A potential healthcare application involves integrating the antenna into a doctor’s chest badge, which could replace manual card swiping, improve convenience, and reduce bacterial contamination risks. 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引用次数: 0
摘要
可穿戴电子设备在各个领域的日益普及,推动了对柔性射频(RF)天线的重大研究,以克服传统金属基天线的局限性。对轻便、灵活和低调设计的需求凸显了便携式电子产品创新解决方案的必要性。这项工作提出了一种用于可穿戴应用的紧凑型宽带全向单极天线,包含一个开槽地平面,以增强阻抗带宽和全向辐射特性。天线设计采用计算机仿真技术(CST)软件进行开发,并通过ANSYS HFSS进行验证,结果表明两种仿真软件的结果非常吻合。该天线由毛毡基材和电子纺织导电材料制成,具有优异的柔韧性、轻质性能和与服装的无缝集成。制作的原型尺寸为80 mm × 57 mm × 1 mm,测量阻抗带宽为118% (1.78-7 GHz)。增益在2.17 dBi和8.9 dBi之间变化,而在工作频率范围内的效率范围从85%到97%,使该天线成为高数据速率和高效通信链路的有希望的候选者。结构变形试验证实了天线在机械应力和人体载荷下的稳定性能。此外,模拟的特定吸收率(SAR)值保持在FCC限制内,验证了天线在可穿戴应用中的安全性。一个潜在的医疗保健应用包括将天线集成到医生的胸卡中,这可以取代人工刷卡,提高便利性,并减少细菌污染的风险。总的来说,这种天线为推进可穿戴通信系统和医疗技术提供了巨大的潜力。
Design of a compact, highly flexible, high-performance wideband all-textile antenna for wearable and portable IoT devices
The increasing adoption of wearable electronic devices across various sectors has driven significant research into flexible radio frequency (RF) antennas to overcome the limitations of traditional metal-based antennas. The demand for lightweight, flexible, and low-profile designs highlights the necessity for innovative solutions in portable electronics. This work proposes a compact, broadband omnidirectional monopole antenna for wearable applications, incorporating a slotted ground plane to enhance both impedance bandwidth and omnidirectional radiation characteristics. The antenna design was developed using Computer Simulation Technology (CST) software and validated through ANSYS HFSS, demonstrating strong agreement between the results from both simulation software. The antenna was fabricated using a felt fabric substrate and e-textile conductive materials, providing excellent flexibility, lightweight properties, and seamless integration into garments. The fabricated prototype, measuring 80 mm × 57 mm × 1 mm, achieved a measured impedance bandwidth of 118% (1.78–7 GHz). The gain varies between 2.17 dBi and 8.9 dBi, while the efficiency ranges from 85 to 97% over the operational frequency range, making this antenna a promising candidate for high-data-rate and efficient communication links. Structural deformation tests confirmed the antenna’s stable performance under mechanical stress and human body loading. Additionally, the simulated specific absorption rate (SAR) values remained within FCC limits, validating the antenna’s safety for wearable applications. A potential healthcare application involves integrating the antenna into a doctor’s chest badge, which could replace manual card swiping, improve convenience, and reduce bacterial contamination risks. Overall, this antenna offers significant potential for advancing wearable communication systems and medical technology.
期刊介绍:
Applied Physics A publishes experimental and theoretical investigations in applied physics as regular articles, rapid communications, and invited papers. The distinguished 30-member Board of Editors reflects the interdisciplinary approach of the journal and ensures the highest quality of peer review.