Design of Low SAR Wearable Textile Antenna for 5G snd IoT Applications

S. Prasad Jones Christydass*, R. Nandhini **, J. Subhashini ***, A. Sneha ****
*-**** K. Ramakrishnan College of Technology (Autonomous), Samayapuram, Trichy, Tamil Nadu, India.
Periodicity:September - November'2020
DOI : https://doi.org/10.26634/jele.11.1.18141

Abstract

The aim of this paper is to design UWB antenna in textile material (Jean cloth), using sub 6 GHz and WLAN for 5G applications. Based on the developed results, this antenna proves to be an appropriate choice for various wireless applications including WLAN, Bluetooth, WiMAX, and X-band satellite communication systems.

Keywords

IoT and 5G Application, Low Effect.

How to Cite this Article?

Christydass, S. P. J., Nandhini, R., Subhashini, J., and Sneha, A. (2020). Design of Low SAR Wearable Textile Antenna for 5G snd IoT Applications. i-manager's Journal on Electronics Engineering, 11(1), 29-34. https://doi.org/10.26634/jele.11.1.18141

References

[1]. Ahmadihaji, A., Aliakbarian, H., Saaid, N. M., & Soh, P. J. (2020, February). Design and on-body evaluations of a low-cost wearable PIFA for on-body applications. In IOP Conference Series: Materials Science and Engineering (Vol. 767, No. 1, p. 012026). IOP Publishing. https://doi.org/ 10.1088/1757-899X/767/1/012026
[2]. Atanasova, G. L., & Atanasov, N. T. (2020, February). Impact of electromagnetic properties of textile materials on performance of a low-profile wearable antenna backed by a reflector. In 2020, International Workshop on Antenna Technology (iWAT) (pp. 1-4). IEEE.
[3]. Atanasova, G., & Atanasov, N. (2020). Small antennas for wearable sensor networks: impact of the electromagnetic properties of the textiles on antenna performance. Sensors, 20(18), 5157-5178. https://doi.org/10.3390/s20185157
[4]. Camacho-Gomez, C., Sanchez-Montero, R., Martinez-Villanueva, D., Lopez-Espi, P. L., & Salcedo-Sanz, S. (2020). Design of a multi-band microstrip textile patch antenna for LTE and 5G services with the CRO-SL ensemble. Applied Sciences, 10(3), 1168-1184.
[5]. Casula, G. A., Montisci, G., & Rogier, H. (2020). A wearable textile RFID tag based on an eighth-mode substrate integrated waveguide cavity. IEEE Access, 8, 11116-11123.
[6]. Chi, Y. J., Lin, C. H., & Chiu, C. W. (2020). Design and modeling of a wearable textile rectenna array implemented on Cordura fabric for batteryless applications. Journal of Electromagnetic Waves and Applications, 34(13), 1782- 1796. https://doi.org/10.1080/09205071.2020.1787869
[7]. de Cos Gómez, M. E., Fernández Álvarez, H., Flórez Berdasco, A., & Las-Heras Andrés, F. (2020). Paving the Way to Eco-Friendly IoT Antennas: Tencel-Based Ultra-Thin Compact Monopole and Its Applications to ZigBee. Sensors, 20(13), 3658-3672. https://doi.org/10.3390/s201 33658
[8]. Hohmann, B., & Sakamoto, H. (2020). Bending stiffness estimation of creased textile membrane for space structure design. In AIAA Scitech 2020 Forum (p. 1899). https://doi.org/10.2514/6.2020-1899
[9]. Joshi, R., Hussin, E. F. N. M., Soh, P. J., Jamlos, M. F., Lago, H., Al-Hadi, A. A., & Podilchak, S. K. (2020). Dualband, dual-sense textile antenna with AMC backing for localization using GPS and WBAN/WLAN. IEEE Access, 8, 89468-89478.
[10]. Joshi, R., Hussin, E. F. N. M., Soh, P. J., Jamlos, M. F., Lago, H., Al-Hadi, A. A., & Podilchak, S. K. (2020). Dualband, dual-sense textile antenna with AMC backing for localization using GPS and WBAN/WLAN. IEEE Access, 8, 89468-89478.
[11]. Lin, X., Chen, Y., Gong, Z., Seet, B. C., Huang, L., & Lu, Y. (2020). Ultrawideband textile antenna for wearable microwave medical imaging applications. IEEE Transactions on Antennas and Propagation, 68(6), 4238- 4249.
[12]. Liu, H., & Ma, H. (2020, June). Design of Diamond Textile Antenna based on Flexible Material. In 2020, IEEE 4th Information Technology, Networking, Electronic and Automation Control Conference (ITNEC) (Vol. 1, pp. 1672- 1675). IEEE.
[13]. Loss, C., Silveira, T. M., Pinho, P., Salvado, R., & de Carvalho, N. B. (2020, July). Design and Analysis of the Reproducibility of Wearable Textile Antennas. In 2020, 12th International Symposium on Communication Systems, Networks and Digital Signal Processing (CSNDSP) (pp. 1-5). IEEE.
[14]. Mao, C. X., Zhou, Y., Wu, Y., Soewardiman, H., Werner, D. H., & Jur, J. S. (2020). Low-profile strip-loaded textile antenna with enhanced bandwidth and isolation for fullduplex wearable applications. IEEE Transactions on Antennas and Propagation, 68(9), 6527-6537.
[15]. Noor, S., & Ramli, N. (2020). A review of the wearable textile-based antenna using different textile materials for wireless applications. Open Journal of Science and Technology, 3(3), 237-244. https://doi.org/10.31580/ojst.v3 i3.1665
[16]. Pavec, M., Kapetanakis, T. N., Ioannidou, M. P., Nikolopoulos, C. D., Baklezos, A. T., Soukup, R., ... & Vardiambasis, I. O. (2020, September). Implementation of an all-textile bow-tie antenna for the 868 MHz ISM band. In 2020, International Symposium on Electromagnetic Compatibility-EMC EUROPE (pp. 1-3). IEEE.
[17]. Pinapati, S. P., Brittain, J., Caldow, A., & Fumeaux, C. (2020). Planar feeding techniques for wearable textile antennas. IEEE Transactions on Components, Packaging and Manufacturing Technology, 10(7), 1232-1239.
[18]. Potey, P. M., & Tuckley, K. (2020). Design of wearable textile antenna for low back radiation. Journal of Electromagnetic Waves and Applications, 34(2), 235-245. https://doi.org/10.1080/09205071.2019.1699170
[19]. Roy, P. S., Guha, M., & Roy, C. S. (2020, December). Wide band rectangular wearable microstrip ring antenna with textile substrate and its performance after washing. In Journal of Physics: Conference Series (Vol. 1706, No. 1, p. 012072). IOP Publishing.
[20]. Tsolis, A., Michalopoulou, A., & Alexandridis, A. A. (2020). Use of conductive zip and Velcro as a polarisation reconfiguration means of a textile patch antenna. IET Microwaves, Antennas & Propagation, 14(7), 684-693.
[21]. Vidya, C. S. S., Sree, B. B., & Sravanthi, C. (2020, February). A miniaturized on-body textile antenna based on substrate integrated waveguide technology. In 2020, IEEE International Students' Conference on Electrical, Electronics and Computer Science (SCEECS) (pp. 1-3). IEEE.
[22]. Xu, F., Zhang, K., & Qiu, Y. (2020). Light-weight, highgain three-dimensional textile structural composite antenna. Composites Part B: Engineering, 185, 1-8. https:// doi.org/10.1016/j.compositesb.2020.107781
[23]. Yalduz, H., Tabaru, T. E., Kilic, V. T., & Turkmen, M. (2020). Design and analysis of low profile and low SAR fulltextile UWB wearable antenna with metamaterial for WBAN applications. AEU-International Journal of Electronics and Communications, 126, 1-12. https://doi.org/10.1016/j.ae ue.2020.153465
[24]. Yang, H., & Liu, X. (2020). Wearable dual-band and dual-polarized textile antenna for on-and off-body communications. IEEE Antennas and Wireless Propagation Letters, 19(12), 2324-2328.
[25]. Zaidi, N. I., Ali, M. T., Abd Rahman, N. H., Yahya, M. F., & Nordin, M. A. (2020). Analysis on different shape of textile antenna under bending condition for GPS application. Bulletin of Electrical Engineering and Informatics, 9(5), 1964-1970. https://doi.org/10.11591/eei.v9i5.2185
[26]. Zhang, K., Soh, P. J., & Yan, S. (2021). Meta-wearable antennas—A review of metamaterial based antennas in wireless body area networks. Materials, 14(1), 149-155.
If you have access to this article please login to view the article or kindly login to purchase the article

Purchase Instant Access

Single Article

North Americas,UK,
Middle East,Europe
India Rest of world
USD EUR INR USD-ROW
Pdf 35 35 200 20
Online 35 35 200 15
Pdf & Online 35 35 400 25

Options for accessing this content:
  • If you would like institutional access to this content, please recommend the title to your librarian.
    Library Recommendation Form
  • If you already have i-manager's user account: Login above and proceed to purchase the article.
  • New Users: Please register, then proceed to purchase the article.