Wideband Wearable antenna for Biomedical Telemetry applications

被引:0
|
作者
Smida A. [1 ,2 ]
Iqbal A. [3 ,4 ]
alazemi a.J. [5 ]
Waly M.I. [6 ,7 ]
Ghayoula R. [8 ,9 ]
Kim S. [6 ]
机构
[1] Department of Medical Equipment Technology, College of applied Medical Sciences, Majmaah University, alMajmaah
[2] Unit of Research in High Frequency Electronic Circuits and Systems, Faculty of Mathematical, Physical, and Natural Sciences of Tunis, Tunis El Manar University, Tunis
[3] Centre for Wireless Technology, Faculty of Engineering, Multimedia University, Cyberjaya
[4] Department of Electrical Engineering, CECOS, University of IT and Emerging Sciences, Peshawar
[5] Department of Electrical Engineering, Faculty of Engineering and Petroleum, Kuwait University, Kuwait
[6] School of Electrical Engineering, University of Ulsan, Ulsan
[7] Department of Biomedical Engineering and System, Higher Institute of Engineering, El Shorouk academy, al Shorouk
[8] Department of Electrical and Computer Engineering, Laval University, Quebec, G1V0a6, QC
[9] Unit of Research in High Frequency Electronic Circuits and Systems, Faculty of Mathematical, Physical and Natural Sciences of Tunis, Tunis El Manar Manar University, Tunis
基金
新加坡国家研究基金会;
关键词
biomedical antenna; flexible antenna; On-body antenna; SaR; wearable antenna; wideband antenna;
D O I
10.1109/aCCESS.2020.2967413
中图分类号
学科分类号
摘要
This paper presents a wideband, low-profile and semi-flexible antenna for wearable biomedical telemetry applications. The antenna is designed on a semi-flexible material of RT/duroid 5880 ( epsilon _{r} = 2.2 , tan delta = 0.0004 ) with an overall dimensions of 17 mm times25 mm times0.787 mm ( 0.2lambda _{circ }times 0.29lambda _{circ }times 0.009lambda _{circ } ). a conventional rectangular patch is modified by adding rectangular slots to lower the resonant frequency, and the partial ground plane is modified to enhance the operational bandwidth. The final antenna model operates at 2.4 GHz with a 10-dB bandwidth (fractional bandwidth) of 1380 MHz (59.7 % at the centre frequency of 2.4 GHz). The proposed antenna maintains high gain (2.50 dBi at 2.4 GHz) and efficiency (93 % at 2.4 GHz). It is proved from the simulations and experimental results that the antenna has negligible effects in terms of reflection coefficient, bandwidth, gain, and efficiency when it is bent. Moreover, the antenna is simulated and experimentally tested in proximity of the human body, which shows good performance. The proposed wideband antenna is a promising candidate for compact wearable biomedical devices. © 2013 IEEE.
引用
收藏
页码:15687 / 15694
页数:7
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