TR
EN
Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications
Öz
This study presents a metamaterial based flexible coplanar antenna designed to operate close to the human model in the 2.45 GHz operation frequency band. Firstly, the reflection values and radiation pattern of the suggested antenna were analyzed. After obtaining good results, electromagnetic band gap (EBG) structure that is a kind of metamaterials was designed. Secondly, the EBG and the antenna was combined to form an integrated structure. At the same time, a human model was designed for the integrated structure. Conductive textile fabrics such as pure copper polyester taffeta fabric and felt were used for coplanar antenna and EBG design, respectively. Finally, the specific absorption rate (SAR) values of the coplanar wearable antenna and the integrated model were separately computed. As a result, the proposed EBG structure effectively reduced the SAR value of the integrated model. It was seen that the SAR value of integrated model was suitable with the standard threshold. The originality of the work lies in the use of wearable textile materials and making calculation by applying bend to the proposed structure. In addition, the sharp drop in SAR value from 31.8 to 0.0344 W/kg is remarkable when compared to many studies in the literature. The proposed integrated design has potentials to be applied to many research areas such as the military systems, health applications, and e-textile technologies.
Anahtar Kelimeler
Destekleyen Kurum
Uşak Üniversitesi
Proje Numarası
2018/SOSB003
Teşekkür
This study was supported by Usak University Scientific Research Foundation (Project Number: 2018/SOSB003)
Kaynakça
- Abdulhameed MK, Isa MSB, Zakaria Z, Ibrahim IM, Mohsen MK, Attiah ML, Dinar AM, 2020. Enhanced performance of compact 2×2 antenna array with electromagnetic band‐gap. Microwave and Optical Technology Letters, 62(2): 875-886.
- Afridi A, Ullah S, Khan S, Ahmed A, Khalil AH, Tarar MA, 2013. Design of Dual Band Wearable Antenna Using Metamaterials. Journal of Microwave Power and Electromagnetic Energy, 47(2), 126-137. Akgol O, Altintas O, Dalkilinc EE, Unal E, Karaaslan M, Sabah C, 2017. Metamaterial absorber-based multisensor applications using a meander-line resonator. Optical Engineering, 56(8): 087104.
- Akgol O, Bağmancı M, Karaaslan M, Ünal E, 2017. Broad band MA-based on three-type resonator having resistor for microwave energy harvesting. Journal of Microwave Power and Electromagnetic Energy, 51(2): 134-149.
- Almoneef T, Ramahi OM, 2014. A 3-Dimensional Stacked Metamaterial Arrays For Electromagnetic Energy Harvesting. Progress In Electromagnetics Research, 146: 109-115.
- Alu A, Engheta N, 2008. Plasmonic and metamaterial cloaking: Physical mechanisms and potentials. Journal of Optics A: Pure and Applied Optics, 10(9): 093002
- Bağmancı M, Karaaslan M, Ünal E, Akgol O, Bakır M, Sabah C, 2019. Solar energy harvesting with ultra-broadband metamaterial absorber. International Journal of Modern Physics B, 33(08): 1950056.
- Bağmancı M, Karaaslan M, Ünal E, Akgol O, Karadağ F, Sabah C, 2017. Broad-band polarization-independent metamaterial absorber for solar energy harvesting applications. Physica E: Low-dimensional Systems and Nanostructures, 90: 1-6
- Bakır M, Karaaslan M, Dincer F, Delihacioglu K, Sabah C, 2015. Perfect metamaterial absorber-based energy harvesting and sensor applications in the industrial, scientific, and medical band. Optical Engineering, 54(9): 097102.
Ayrıntılar
Birincil Dil
İngilizce
Konular
Metroloji,Uygulamalı ve Endüstriyel Fizik, Elektrik Mühendisliği
Bölüm
Araştırma Makalesi
Yayımlanma Tarihi
15 Aralık 2020
Gönderilme Tarihi
13 Şubat 2020
Kabul Tarihi
18 Haziran 2020
Yayımlandığı Sayı
Yıl 2020 Cilt: 10 Sayı: 4
APA
Tetik, G., & Tetik, E. (2020). Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications. Journal of the Institute of Science and Technology, 10(4), 2541-2550. https://doi.org/10.21597/jist.689005
AMA
1.Tetik G, Tetik E. Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications. Iğdır Üniv. Fen Bil Enst. Der. 2020;10(4):2541-2550. doi:10.21597/jist.689005
Chicago
Tetik, Gamze, ve Erkan Tetik. 2020. “Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications”. Journal of the Institute of Science and Technology 10 (4): 2541-50. https://doi.org/10.21597/jist.689005.
EndNote
Tetik G, Tetik E (01 Aralık 2020) Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications. Journal of the Institute of Science and Technology 10 4 2541–2550.
IEEE
[1]G. Tetik ve E. Tetik, “Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications”, Iğdır Üniv. Fen Bil Enst. Der., c. 10, sy 4, ss. 2541–2550, Ara. 2020, doi: 10.21597/jist.689005.
ISNAD
Tetik, Gamze - Tetik, Erkan. “Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications”. Journal of the Institute of Science and Technology 10/4 (01 Aralık 2020): 2541-2550. https://doi.org/10.21597/jist.689005.
JAMA
1.Tetik G, Tetik E. Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications. Iğdır Üniv. Fen Bil Enst. Der. 2020;10:2541–2550.
MLA
Tetik, Gamze, ve Erkan Tetik. “Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications”. Journal of the Institute of Science and Technology, c. 10, sy 4, Aralık 2020, ss. 2541-50, doi:10.21597/jist.689005.
Vancouver
1.Gamze Tetik, Erkan Tetik. Metamaterial based Flexible Coplanar Antenna Design and Simulation for Human Body Applications. Iğdır Üniv. Fen Bil Enst. Der. 01 Aralık 2020;10(4):2541-50. doi:10.21597/jist.689005
Cited By
Design, Analysis and Applications of Wearable Antennas: A Review
IEEE Access
https://doi.org/10.1109/ACCESS.2023.3243292Wideband U‐Shaped Wearable Antenna With Defected Ground Structure for Biomedical Wearables
International Journal of Antennas and Propagation
https://doi.org/10.1155/ijap/3445660