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A Compact Linear Microstrip Patch Beamformer Antenna Array for Millimeter-Wave Future Communication
Muhammad Asfar Saeed1, Emenike Raymond Obi2, Augustine O Nwajana1
1School of Engineering, University of Greenwich, Chatham Maritime, Kent ME4 4TB, UK.
Sensors (Basel, Switzerland)
|July 13, 2024
Summary
This study presents a compact microstrip patch antenna array designed for 5G and beyond (B5G) applications. The antenna offers high gain and broad coverage, addressing 5G
Area of Science:
- Electrical Engineering
- Antenna Theory
- Wireless Communications
Background:
- Current 4G and LTE networks face limitations in data speed and latency due to increasing user demand.
- Fifth-generation (5G) and beyond (B5G) wireless systems require advanced antenna solutions to overcome these challenges.
- Compact and efficient antenna designs are critical for the widespread implementation of 5G technology.
Purpose of the Study:
- To propose and design a compact microstrip patch antenna array for 5G and B5G applications.
- To evaluate the antenna's performance characteristics, including gain, bandwidth, and suitability for high-frequency operation.
- To present a cost-effective antenna solution with broad coverage for future wireless communication systems.
Main Methods:
- Design of a six-element microstrip patch antenna array using a microstrip line feeding technique.
- Selection of ROGER 3003 as the dielectric material for its advanced and environmentally friendly properties.
- Simulation and evaluation of the antenna's performance at a resonating frequency of 28.8 GHz.
Main Results:
- The designed antenna array achieved a -10 dB impedance bandwidth of 1 GHz.
- A high gain of 9.19 dBi was obtained at the resonating frequency.
- The antenna exhibits compact dimensions, cost-effectiveness, and broad impedance and radiation coverage.
Conclusions:
- The proposed microstrip patch antenna array is a viable candidate for 5G and future communication applications.
- The antenna's design addresses the need for compact, high-performance solutions in next-generation wireless networks.
- The use of ROGER 3003 material ensures suitability for advanced B5G applications.

