Parametric Design of a Helical Electromagnetic Bandgap Reflector for an Equiangular Spiral Antenna at 2.5 GHz

This study presents a planar helical electromagnetic bandgap (EBG) structure designed for integration with an equiangular spiral antenna operating at 2.5 GHz. An equivalent-circuit model is introduced, and the effects of the unit-cell width, substrate thickness, metallic-strip width, and interstrip gap on the electromagnetic response are investigated through full-wave parametric simulations. The optimized periodic structure is subsequently employed as a backing reflector for the spiral antenna and is compared with both an unbacked configuration and a perfect electric conductor (PEC) reflector. At 2.5 GHz, the EBG-backed antenna achieves a simulated gain of approximately 6.15 dBi, compared with 2.58 dBi for the unbacked antenna,while producing an axial-ratio response that is less strongly disturbed over the investigated frequency range than that of the PEC-backed configuration. The mean axial-ratio value over the investigated band is reduced from 2.22 for the PEC-backed case to 1.67 for the EBG-backed case. The results demonstrate that the proposed helical EBG structure provides a compact approach for controlling the radiation characteristics of spiral antennas in S-band electromagnetic and wireless systems.

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Publication Details

Journal
Applied Sciences
Published
2026-10-06
DOI
https://doi.org/10.3390/app16199900
Primary Topic
Advanced Antenna and Metasurface Technologies
Type
article
Field-Weighted Citation Impact
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article

Parametric Design of a Helical Electromagnetic Bandgap Reflector for an Equiangular Spiral Antenna at 2.5 GHz

Zengxiang Wang, 文玉 卜, Cuizhen Sun, Shanfeng Dai
Applied Sciences
Advanced Antenna and Metasurface Technologies
article

Parametric Design of a Helical Electromagnetic Bandgap Reflector for an Equiangular Spiral Antenna at 2.5 GHz

Zengxiang Wang, 文玉 卜, Cuizhen Sun, Shanfeng Dai
article en

Abstract

This study presents a planar helical electromagnetic bandgap (EBG) structure designed for integration with an equiangular spiral antenna operating at 2.5 GHz. An equivalent-circuit model is introduced, and the effects of the unit-cell width, substrate thickness, metallic-strip width, and interstrip gap on the electromagnetic response are investigated through full-wave parametric simulations. The optimized periodic structure is subsequently employed as a backing reflector for the spiral antenna and is compared with both an unbacked configuration and a perfect electric conductor (PEC) reflector. At 2.5 GHz, the EBG-backed antenna achieves a simulated gain of approximately 6.15 dBi, compared with 2.58 dBi for the unbacked antenna,while producing an axial-ratio response that is less strongly disturbed over the investigated frequency range than that of the PEC-backed configuration. The mean axial-ratio value over the investigated band is reduced from 2.22 for the PEC-backed case to 1.67 for the EBG-backed case. The results demonstrate that the proposed helical EBG structure provides a compact approach for controlling the radiation characteristics of spiral antennas in S-band electromagnetic and wireless systems.

Applied SciencesVol. 16(19)
Xi'an University of Science and Technology (CN), Tianjin University (CN)
Openalex Percentile: Top 16%
Advanced Antenna and Metasurface Technologies
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Parametric Design of a Helical Electromagnetic Bandgap Reflector for an Equiangular Spiral Antenna at 2.5 GHz — Zengxiang Wang, 文玉 卜, et al. · Applied Sciences (2026) | TGRS Research Map | TGRS