研究目的
To improve the bandwidth (BW) and angular performance of frequency selective surfaces (FSS) using substrate-integrated waveguide (SIW) technology.
研究成果
The proposed 2.5D FSS using SIW technology improves the bandwidth and angular stability of FSS structures. The structure is suitable for real-time applications due to its ultrathin thickness (0.027λ0). The measured results of the fabricated prototype validate the advantages of the proposed structural topology.
研究不足
The structural complexity and increased weight of multilayered or 3D FSS structures make them unsuitable for many real-time and aerospace applications. The proposed 2.5D FSS aims to overcome these limitations by using SIW technology.
1:Experimental Design and Method Selection:
The study employs a closely coupled cascaded mechanism to combine two identical FSS elements separated by a thin dielectric substrate, incorporating SIW technology. An equivalent circuit model is derived to estimate the performance of proposed FSS–SIW elements.
2:Sample Selection and Data Sources:
Two basic FSS elements, a single square loop and a Jerusalem cross, are investigated.
3:List of Experimental Equipment and Materials:
The structures are analyzed on R04003C substrate with εr = 3.38 having a thickness h = 0.81 mm. The conducting metal patches of FSS are made of copper coating.
4:38 having a thickness h = 81 mm. The conducting metal patches of FSS are made of copper coating.
Experimental Procedures and Operational Workflow:
4. Experimental Procedures and Operational Workflow: The response of analytical expressions is validated, and the final design is obtained using full-wave simulations with CST Microwave Studio.
5:Data Analysis Methods:
The transmission and reflection characteristics are analyzed at normal and oblique incidence angles for both parallel (TE) and perpendicular (TM) polarizations.
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