A Dual Ka/Q-Band Reflectarray

Author:

Polenga S. V.1ORCID,Erokhin A. A.1ORCID,Ryazantsev R. O.1ORCID,Poligina A. D.1ORCID,Krylov R. M.1ORCID,Litinskaya E. A.1ORCID,Gafarov E. R.1ORCID,Aleksandrin A. M.1ORCID,Salomatov Yu. P.1ORCID,Danilov I. Yu.2

Affiliation:

1. Siberian Federal University

2. JSC Academician M. F. Reshetnev Information Satellite Systems

Abstract

Introduction. Duplex satellite communication is commonly arranged using two spaced frequency bands, with one band receiving and the other band transmitting signals to a satellite. The main task of a communications satellite antenna system consists in providing an identical coverage area across all involved frequency bands, which is often a challenging task for conventional parabolic reflector antennas. Reflectarrays allow an independent control of the reradiated wave phase in spaced frequency bands, which can be used to create efficient multi-band antenna systems for modern communication satellites.Aim. To develop a Ka/Q-frequency range phase-correcting element and to create on its basis a dual-band reflectarray for operation with orthogonal circular polarizations and identical gains in a given sector of angles in significantly spaced frequency ranges.Materials and methods. Numerical studies were carried out using the finite element analysis method. Radiation patterns were measured using the near field scanning method.Results. A single-layer dual-band phase-correcting reflectarray element was developed for operation with orthogonal circular polarizations with low losses and a weak dependence of the relative position of the elements on the phase characteristic. On the basis of the proposed element, a reflectarray consisting of 24 465 two-frequency elements was synthesized and manufactured. The developed prototype of a single-layer dual-band reflectarray demonstrated good characteristics, with the efficiency reaching 56 and 36 % in the Ka- and Q-frequency ranges, respectively, and an almost identical minimum gain in the ±0.75° angle sector.Conclusion. The research results confirm the potential of the developed reflectarray to successfully replace conventional parabolic reflectors installed both on modern communication satellites and as part of ground-based satellite terminals in the millimeter wavelength range.

Publisher

St. Petersburg Electrotechnical University LETI

Subject

General Medicine

Reference19 articles.

1. Polenga S. V., Litinskaya E. A., Salomatov Yu. P., Krylov R. M. Reflectarray Antenna for Bidirectional VSAT Satellite Communication Networks. Achievements of Modern Radioelectronics. 2012, no. 9, pp. 39–42.

2. Polenga S. V., Alexandrin A. M., Salomatov Yu. P., Lemberg K. V., Popovich A. A. Dual Ku/Ka-Band Feed Horn for Satellite Ground Stations. Achievements of modern radioelectronics. 2016, no. 11, pp. 43–47.

3. Martinez-de-Rioja E., Encinar J. A., Florencio R., Boix R. R. Dual Polarized Reflectarray Antenna to Generate Independent Beams in Ku and Ka Bands. 10th European Conf. on Antennas and Propagation, Davos, Switzerland, 10–15 April 2016. Piscataway, IEEE, 2016, pp. 1–5. doi: 10.1109/EuCAP.2016.7481439

4. Martinez-de-Rioja E., Encinar J. A., Pino A., Gonzalez-Valdes B. Design of Bifocal Dual Reflectarray Antennas in Ka-Band to Generate a Multi-Spot Coverage from Geostationary Satellites. 13th European Conf. on Antennas and Propagation, Krakow, Poland, 31 March 2019 – 5 April 2019. Piscataway, IEEE, 2019, pp. 1–5.

5. Arrebola M., Encinar J. A., Barba M. Multifed Printed Reflectarray with Three Simultaneous Shaped Beams for LMDS Central Station Antenna. IEEE Trans. on Antennas and Propagation. 2001, vol. 56, no. 6, pp. 1518–1527. doi: 10.1109/TAP.2008.923360

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