Tajin Md Abu Saleh, Amanatides Chelsea E, Dion Genevieve, Dandekar Kapil R
Department of Electrical and Computer Engineering, Drexel University, Philadelphia, PA 19104 USA.
Center for Functional Fabrics, Drexel University, Philadelphia, PA 19104 USA.
IEEE Internet Things J. 2021 Sep 1;8(17):13763-13773. doi: 10.1109/jiot.2021.3068198. Epub 2021 Mar 23.
One of the major challenges faced by passive on-body wireless Internet of Things (IoT) sensors is the absorption of radiated power by tissues in the human body. We present a battery-less, wearable knitted Ultra High Frequency (UHF, 902-928 MHz) Radio Frequency Identification (RFID) compression sensor (Bellypatch) antenna and show its applicability as an on-body respiratory monitor. The antenna radiation efficiency is satisfactory in both free-space and on-body operations. We extract RF (Radio Frequency) sheet resistance values of three knitted silver-coated nylon fabric candidates at 913 MHz. The best type of fabric is selected based on the extracted RF sheet resistance. Simulated and measured performance of the antenna confirm suitability for on-body applications. The proposed Bellypatch antenna is used to measure the breathing activity of a programmable infant patient emulator mannequin (SimBaby) and a human subject. The antenna is highly sensitive to respiratory compression and relaxation. Fluctuations in the backscatter power level/Received Signal Strength Indicator (RSSI) in both cases range from 6 dB to 15 dB. The improved on-body read range of the proposed sensor antenna is 5.8 m, about 10 times higher than its predecessor wearable knitted strain sensing Bellyband antenna (0.6 m). The maximum simulated Specific Absorption Rate (SAR) on a human torso model is 0.25 W/kg, lower than the maximum allowable limit of 1.6 W/kg.
无源人体无线物联网(IoT)传感器面临的主要挑战之一是人体组织对辐射功率的吸收。我们展示了一种无电池、可穿戴的针织超高频(UHF,902 - 928 MHz)射频识别(RFID)压缩传感器(腹贴式)天线,并展示了其作为人体呼吸监测器的适用性。该天线在自由空间和人体上的操作中辐射效率都令人满意。我们在913 MHz下提取了三种针织镀银尼龙织物候选材料的射频(RF)薄层电阻值。根据提取的射频薄层电阻选择最佳的织物类型。天线的模拟和测量性能证实了其适用于人体应用。所提出的腹贴式天线用于测量可编程婴儿患者模拟器人体模型(SimBaby)和人体受试者的呼吸活动。该天线对呼吸压缩和放松高度敏感。在这两种情况下,反向散射功率电平/接收信号强度指示符(RSSI)的波动范围为6 dB至15 dB。所提出的传感器天线在人体上的改进读取范围为5.8 m,约为其前身可穿戴针织应变传感腹带天线(0.6 m)的10倍。在人体躯干模型上模拟的最大比吸收率(SAR)为0.25 W/kg,低于1.6 W/kg的最大允许限值。