Efficient Analytical Design Strategy for High-Gain Non-resonant Partially-Reflective-Surface Antennas

Non-resonant partially reflective surface (PRS) antennas (PRSAs) offer high-gain performance, but their design typically requires extensive electromagnetic simulations to obtain near-field phase distributions, leading to time-consuming processes, especially for complex or large antennas. This letter...

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Veröffentlicht in:IEEE antennas and wireless propagation letters 2024-12, p.1-5
Hauptverfasser: Zheng, Xiaodong, Ge, Yuehe, Li, Guowei, Zhou, Ziheng, Matekovits, Ladislau, Chen, Zhizhang
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Sprache:eng
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Zusammenfassung:Non-resonant partially reflective surface (PRS) antennas (PRSAs) offer high-gain performance, but their design typically requires extensive electromagnetic simulations to obtain near-field phase distributions, leading to time-consuming processes, especially for complex or large antennas. This letter presents a novel analytical design method that significantly simplifies the design of phase-correcting surfaces (PCSs) for nonresonant PRSAs. By introducing a new design strategy based on a ray-tracing approach, we derive a set of analytical formulas for two PCS configurations: one utilizing a single superstrate that integrates both PRS and PCS functionalities, and another employing distinct PRS and PCS layers. Using these formulas, we designed two non-resonant PRSAs, and both simulated and experimental results demonstrate comparable gain performance to those obtained using Ansys HFSS. This approach reduces the dependence on computationally intensive simulations, offering a more efficient pathway for the design of high-performance nonresonant PRSAs, thereby advancing the accessibility and practicality of antenna design methodologies.
ISSN:1536-1225
1548-5757
DOI:10.1109/LAWP.2024.3521031