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Substrate integrated waveguide based cavitya??backed selfa??triplexing slot antenna for Xa??Ku band applications

DOI:10.1002/MMCE.22172 期刊:International Journal of RF and Microwave Computer-Aided Engineering 出版年份:2020 更新时间:2025-09-16 10:30:52
摘要: A planar substrate integrated waveguide (SIW) based cavity-backed self-triplexing slot antenna is proposed for X-Ku band applications. The antenna comprises of the SIW cavity, radiating slots, and feeding networks. The radiating slots; that are etched on the upper metallic plane of the SIW, are backed up by the three radiated quarter cavities (QCs). The radiating slots in the respective QCs are of different lengths, excited by three separated orthogonal feed lines to resonate at three different frequencies as 11.01, 12.15, and 13.1 GHz. By fine-tuning the antenna parameters, an intrinsic input port isolation of better than 26 dB is realized which helps in achieving the self-triplexing property. The behaviors of individual cavity modes at three resonant frequencies are explained with the help of Z-parameter. The proposed antenna layout is easy to integrate with the planar circuit. The proposed antenna is fabricated and measured results display a close concern with the simulated results. Moreover, a unidirectional radiation pattern and gain of 5.1, 5.54, and 6.12 dBi at resonant frequencies are realized.
作者: Padmini Nigam,Sandeep Sharma,Rahul Agarwal,Amrindra Pal,Arjuna Muduli
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Investigating the design and performance of a planar substrate integrated waveguide (SIW) based cavity-backed self-triplexing slot antenna for X-Ku band applications.

The proposed self-triplexing antenna is realized by single-layer PCB using QCs along with three different lengths of slots excited by three individual microstrip feed lines. The antenna integrated with three radiated QCs to produce a triple band of resonances at 11.01, 12.15, and 13.1 GHz with a minimum gain of 5 dBi at all triple frequencies with unidirectional radiation pattern. These radiated QCs are combined with three different lengths of slots and maintain good isolation more than 26 dB among ports. Moreover, the proposed antenna has features such as low cost, small size, easy to fabricate and planar in nature, which indicate that there is no slot in a ground plane as back-side of the antenna.

The simulated radiation efficiency of the proposed antenna is low due to microstrip feeding lines, conductor and dielectric losses. The measured gain is also low because of the small radiation aperture in integrated QCs into the SIW cavity.

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