Design and Analysis of a Dual-Band Microstrip Patch Antenna for Sub-6 GHz Applications
Journal of Engineering Research and Reports · pp. 210–221 · Published 25 Jun 2024
10.9734/jerr/2024/v26i71204Abstract
This paper explores the design, simulation, and analysis of a dual-band Microstrip patch antenna designed to operate efficiently at frequency ranges of 3.32 GHz - 3.62 GHz and 4.72 GHz - 6.83 GHz, utilizing Ansys High-Frequency Structure Simulator (HFSS) software. The primary objective is to enhance performance metrics such as bandwidth, gain, and radiation efficiency to meet the requirements of applications necessitating concurrent operation at both frequency bands. The study involves a comprehensive design, iterative simulation, and detailed analysis using Ansys HFSS, with customized design considerations aimed at optimizing performance for modern wireless communication systems. The research was conducted in a simulated environment over a period that included iterative design processes, multiple simulation runs, and thorough analysis phases. Methodologically, the study focused on iterative design refinement to improve key performance parameters such as reflection coefficient, gain, radiation efficiency, Voltage Standing Wave Ratio (VSWR), and relative permittivity at the specified frequency bands. Results indicate that at 3.32 GHz - 3.62 GHz, the antenna achieves a reflection coefficient of -5 dB, a gain of 2.77 dB, a radiation efficiency of 0.7429, and a VSWR of 1.9299. At the higher frequency range of 4.72 GHz - 6.83 GHz, the antenna exhibits a reflection coefficient of -20.5213 dB, a gain of 3.34 dB, a radiation efficiency of 0.7, and a VSWR of 1.2203. These findings underscore the antenna's capability to deliver improved performance metrics across both frequency bands. In conclusion, the dual-band Microstrip patch antenna designed and analyzed through Ansys HFSS demonstrates significant potential for use in contemporary wireless communication systems, offering enhanced bandwidth, gain, and radiation efficiency suitable for multi-frequency applications.
Cited by 6
Neetu Agrawal · 2025 International Conference on Sustainability, Innovation & Technology (ICSIT) · 2025
Hrittik Raj Barua, Imtiaz Akber Chowdhury, Tridib Banik · 2025 4th International Conference on Distributed Computing and Electrical Circuits and Electronics (ICDCECE) · 2025
Samiul Bashir, Paul Kumar, Ahmed Firoz · Facta universitatis - series: Electronics and Energetics · 2025
Showing 3 of 6 known citations — external sources report more than can currently be individually listed.
Related research
- Analytical Technique for Predicting Passenger Car Gearbox Structure Noise Using Vibration Response Analysis — shares topic coverage
- The Use of Combined Geophysical Survey Methods for Groundwater Investigation in a Typical Basement Complex Terrain: Case Study of Erunmu, Ibadan, Southwest Nigeria — shares topic coverage
- Effect of Defected Ground Structures on Microstrip Patch Antenna Performance for ISM Band Applications — shares topic coverage
- Simulation-based Design of a Compact Wearable Antenna for Microwave Imaging of Bone Fractures in Osteoporotic Patients — shares topic coverage
- Design of Microstrip Patch Antenna Array for 5G Resonate at 3.6GHz — shares topic coverage
Article metrics
Real usage data collected on this platform.
0
Page views
0
PDF downloads
0
Outbound clicks
6
Citations
Views by country
Approximate, from request IP at view time — not citizenship or institution. Countries with fewer than 5 views are grouped as "Other".
No views recorded yet.
Traffic sources
Referring site, by host.
No traffic recorded yet.
Views and downloads exclude known bots/crawlers. Citations combines this platform's own DOI-resolved index with each external source's own reported total — see Cited by above for individually listed citing works. Last refreshed 0 seconds ago.