Design and Enhancement of Microstrip Patch Antenna Utilizing Mushroom Like-EBG for 5G Communications

Author:

Alsudani Ahlam, ,Marhoon Hamzah M.

Abstract

Besides the considerable rise in wireless network usage and network-connected apps, this causes congestion, leading to a drop in data transmission speed. As a result of their high bandwidth availability and high data transfer speed, network operators recommended switching to higher frequencies. In communications via distance, the antenna plays a significant role in the transmission of the electrical radiated signal or the receiving of the electromagnetic signal. Many antennas can be utilized, one of which is the Microstrip Patch (MP) antenna. These antennas are very prevalent for their ease of configuration and design. On the other hand, it suffers from a lack of gain. In this research article, an MP antenna and MP antenna array are introduced and designed based on computer simulation technology antenna modelling software for 5G based-28 GHz applications. In order to optimise and enhance the simulated MP antenna parameters, the mushroom-like Electromagnetic Band Gap (EBG) is embedded with the MP antenna and MP antenna array to eliminate the presence of the surface waves that affecting negatively on the antenna gain. According to the simulation results, the gain is enhanced after utilising the mushroom-like EBG to be 6.48 dBi and significantly after applying the array configuration to be 11.9 dBi.

Publisher

Engineering and Technology Publishing

Cited by 3 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Low-Loss UWB mm-Wave Monopole Antenna Using Patch Size Enhancement for Next-Generation (5G and Beyond) Communications;Journal of Infrared, Millimeter, and Terahertz Waves;2023-10-19

2. Microstrip lowpass-bandpass triplexer with flat channels and low insertion losses: Design and fabrication for multi-service wireless communication systems;AEU - International Journal of Electronics and Communications;2023-10

3. Design and Simulation of a High Gain Microstrip Patch Antenna for 5G Communication Systems;2023 International Conference on Engineering, Science and Advanced Technology (ICESAT);2023-06-21

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