Dipole antenna with microstrip technology for WiFi applications under the IEEE 802.11xx standard

Authors

DOI:

https://doi.org/10.59282/reincisol.V3(6)1432-1445

Keywords:

Dipole antenna; Microstrip technology; WiFi applications; 802.11xx standard.

Abstract

This study was conducted with the objective of developing a dipole antenna using microstrip technology for WiFi applications under the 802.11xx standard, in response to the growing need to enhance transmission efficiency in wireless networks. The research arose due to the limitations of traditional antennas in terms of bandwidth, range, and signal reliability. A methodology was employed that included a detailed analysis of WiFi standards, the construction of a microstrip antenna model through 3D simulations, and the evaluation of the antenna in terms of S-parameters, gain, efficiency, and radiation pattern. The results showed that the designed antenna met the required performance standards, offering a maximum gain of 5.2 dBi and a bandwidth of 300 MHz, representing a significant improvement compared to conventional antennas. The conclusions highlight that the developed microstrip antenna not only meets the technical requirements for WiFi applications but also provides a more cost-effective and space-efficient solution in terms of manufacturing, contributing to better connectivity in various environments and underscoring the importance of innovating antenna design to meet the current demands of wireless networks. 

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References

Bahlaouane, I., Belhabib, A., Ibnyaich, S., & Zeroual, A. (2024). Design and Optimization of Microstrip Patch Antenna using Ant Colony Optimization. 2024 International Conference on Global Aeronautical Engineering and Satellite Technology, GAST 2024 - Proceedings. https://doi.org/10.1109/GAST60528.2024.10520747

Capota, C., Halunga, S., Fratu, O., Eugen, S., & Madalin, P. (2021). Security Aspects and Vulnerabilities in Authentication Process WiFi Calling - RF measurements. 2021 IEEE International Black Sea Conference on Communications and Networking, BlackSeaCom 2021. https://doi.org/10.1109/BLACKSEACOM52164.2021.9527884

Deshmukh, A. A., Verma, P., Singh, D., Mohadikar, P., & Ray, K. P. (2017). Key-shaped slot loaded circular microstrip antenna for multi-band and broadband response. 2016 IEEE International Conference on Advanced Networks and Telecommunications Systems, ANTS 2016. https://doi.org/10.1109/ANTS.2016.7947827

Karthik, V., & Rao, T. R. (2014). A microstrip antenna at UWB frequencies for body wearable wireless devices. 2014 IEEE International Conference on Advanced Networks and Telecommunication Systems, ANTS 2014. https://doi.org/10.1109/ANTS.2014.7057231

Soily, S., Mazumder, R. K., & Ali, K. (2016). Design and simulation of two conformal arrays with dual patch and quadruple patch antenna elements. Proceeding - 2015 IEEE International Conference on Antenna Measurements and Applications, IEEE CAMA 2015. https://doi.org/10.1109/CAMA.2015.7428157

Vardhini, P. A. H., & Koteswaramma, N. (2016). Patch antenna design with FR-4 Epoxy substrate for multiband wireless communications using CST Microwave studio. International Conference on Electrical, Electronics, and Optimization Techniques, ICEEOT 2016, 1811–1815. https://doi.org/10.1109/ICEEOT.2016.7755000

Published

2024-08-15

How to Cite

Proaño Bermeo, B. J. ., Yugcha Masapanta, A. H. ., & Núñez Núñez, F. P. . (2024). Dipole antenna with microstrip technology for WiFi applications under the IEEE 802.11xx standard. REINCISOL, 3(6), 1432–1445. https://doi.org/10.59282/reincisol.V3(6)1432-1445
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