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2024 | OriginalPaper | Buchkapitel

Wideband High-Gain Franklin Antenna Array for 5G Millimeter-Wave Applications

verfasst von : Satish Kumar Duddu, Narayan Rao Palepu, Phani Vishnu Addepalli, Jayendra Kumar

Erschienen in: Evolution in Signal Processing and Telecommunication Networks

Verlag: Springer Nature Singapore

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Abstract

In this paper, a novel six-element 3\(\,\times \,\)2 Franklin array antenna is proposed for 5G millimeter-wave applications. Coaxial feed was used to excite the six elements. The parameters of the Franklin array elements are fine-tuned to achieve a high-gain antenna performance as desired. The suggested antenna employs Rogers RT Duroid substrate, which enables a broad frequency range from 25.61 to 34.62 GHz, covering a 5G millimeter-wave frequency band n257/n258/n261. The antenna dimensions are 19 mm\(^3\) \(\times \) 19 mm\(^3\) \(\times \) 1.6 mm\(^3\). The proposed antenna has 29.91% fractional bandwidth along with a peak gain of 10.64 dBi at 28 GHz frequency and it is well-suited for wideband and high-gain mm-wave applications in the context of 5G FR-2.

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Metadaten
Titel
Wideband High-Gain Franklin Antenna Array for 5G Millimeter-Wave Applications
verfasst von
Satish Kumar Duddu
Narayan Rao Palepu
Phani Vishnu Addepalli
Jayendra Kumar
Copyright-Jahr
2024
Verlag
Springer Nature Singapore
DOI
https://doi.org/10.1007/978-981-97-0644-0_19

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