Ultra-wide band flexible antenna applicable for dual-band on-body communications

被引:7
作者
Hassan, Walaa M. [1 ]
Saad, Ayman Ayd R. [2 ]
Ibrahim, Ahmed A. [3 ]
机构
[1] Elect Res Inst ERI, Microwave Engn Dept, Cairo 11843, Egypt
[2] Telecom Egypt, Kosseir Radio, Kosseir 84712, Egypt
[3] Minia Univ, Commun & Elect Engn Dept, Al Minya, Egypt
关键词
Artificial magnetic conductor (AMC); flexible and wearable antennas; medical applications; printed monopole; specific absorption rate (SAR); MONOPOLE ANTENNA; COMPACT; DESIGN;
D O I
10.1017/S1759078722000514
中图分类号
TM [电工技术]; TN [电子技术、通信技术];
学科分类号
0808 ; 0809 ;
摘要
In this article, an ultra-wideband printed flexible monopole antenna is proposed for indoor wireless communications. A flexible Rogers RO3003 is used as a substrate, and its performance is estimated for a flat state and when subject to bending along the y-axis. A 2.45 and 5.8 GHz dual-band textile artificial magnetic conductor (AMC) surface consisting of a 4 x 4 unit-cell array was integrated into antenna design with optimum separation distance to extend its potential applications to wearable on-body communications. The specific absorption rate (SAR) levels were numerically investigated using the Hugo human voxel model at both frequencies to evaluate the on-body safety level. Detailed analysis is presented for antenna designs of flat and bent states in free space and on the human body. The proposed UWB flexible antenna has the size of 41 x 38 x 0.25 mm (0.33 lambda(0) x 0.31 lambda(0) x 0.002 lambda(0) at 2.45 GHz). It was added at a distance of 3 mm above a textile AMC surface of 99 x 99 mm. The integrated model is fabricated and experimentally characterized. Measured data and numerical results show that the impedance matching and radiation characteristics are slightly affected by introducing the bending and human body loading. With these remarkable features, the integrated model can be utilized for wireless indoor and wearable applications.
引用
收藏
页码:609 / 622
页数:14
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