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Modeling and Calculation Characteristics of APAA HF-Band Based on Whip Antennas

https://doi.org/10.31854/1813-324X-2021-7-1-81-92

Abstract

When designing the antenna field of a stationary HF transmitting radiocenter, it is necessary to provide for reserving ground-based symmetrical antennas operating on round-the-clock radio directions with backup, fastdeployable antenna systems. As such antennas, it is proposed to use asymmetric vertical dipoles, active phased antenna arrays (APAA) based on them with a controlled directional pattern. This article considers methods for calculating such systems, a method is developed for determining the phase relationships of currents at the inputs of APAR elements, taking into account its placement and functioning on a real object. The results of route tests of single antennas and APAA on a radio link with a length of 650 km are presented. 

About the Authors

V. Pashkevich
JSC “Scientific and Technical Institute Radio Communication”
Russian Federation


V. Golubev
JSC “Scientific and Technical Institute Radio Communication”
Russian Federation


М. Protsenko
The Bonch-Bruevich State University of Telecommunications
Russian Federation


References

1. Aizenberg G.Z., Belousov S.P., Zhurbenko E.M. Shortwave Antennas. Moscow: Radio i sviaz Publ.; 1985. 535 p. (in Russ.)

2. Golubev V.M., Pashkevich V.D. Use of the Unified Broadband Log-Periodic Antennas for Creation the Antenna Fields of the Transmitting Short-Wave Radio Centers. Proceedings of the VIIth International Conference on Infotelecommunications in Science and Education, 28 February–1 March 2018, St. Petersburg, Russian Federation. St. Petersburg: Saint-Petersburg State University of Telecommunications Publ.; 2018. vol.3. p.112–117. (in Russ.)

3. Gvozdev I.N., Muravev Yu.K., Serkov V.P., Chernoles V.P. Characteristics of Antennas of Radio Communication Systems. Leningrad: Military Order of Lenin Red Banner Communications Academy named after S.M. Budyonny Publ.; 1978. 231 p. (in Russ.)

4. Muravev Yu.K. Handbook for Calculating Wire Antennas. Leningrad: Military Order of Lenin Red Banner Communications Academy named after S.M. Budyonny Publ.; 1978. 392 p. (in Russ)

5. Golubev V., Pashkevich V., Protsenko M. Development and Experimental Study of APAA HF-Bandwith Controlled Radiation Pattern. Proc. of Telecom. Universities. 2020;6(1):50‒59. (in Russ.) DOI:10.31854/1813-324X-2020-6-1-50-59

6. Markov G.T., Sazonov D.M. Antennas. Leningrad: Energiya Publ.; 1975. 528 p. (in Russ.)

7. Pimenov U.V. The Linear Macroscopic Electrodynamics: an Introductory Course for Radiophysicists and Engineers. Dolgoprudnyj: Intellect Publ.; 2008. 536 p. (in Russ.)

8. Strijkov V.A. Mathematical Modeling of Electrodynamic Processes in Wire Antenna Systems. Mathematical modeling. 1989;1:127–138. (in Russ.)

9. Gasisov T.T. Synthesis of Optimal Wired Antennas. Tomsk: Tomsk State University of Control Systems and Radioelectronics Publ.; 2013. 120 p. (in Russ.)

10. Buzova M.A., Yudin V.V. Design of Wire Antennas Based on Integral Equations. Moscow: Radio i sviaz Publ.; 2005. 172 p. (in Russ.)

11. Kocherzhevsky G.N., Erokhin G.A., Kozyrev N.D. Antenna Feeder Devices. Moscow: Radio i sviaz Publ.; 1989. 352 p. (in Russ.)

12. Popov O.V., Sosunov B.V., Fitenko N.G. Methods for Measuring the Characteristics of Antenna-Feeder Devices. Leningrad: Military Order of Lenin Red Banner Communications Academy named after S.M. Budyonny Publ.; 1990. 182 p. (in Russ.)

13. Barabashov B.G., Anishin M.M. Software Package «Trassa» for Predicting Trajectory and Power Characteristics of Radio Channels in 2-30 Mhz Band (part 1). Radio Communication Technology. 2013;1(19):25–34. (in Russ.)

14. Barabashov B.G., Anishin M.M. Software Package «Trassa» for Predicting Trajectory and Power Characteristics of Radio Channels in 2-30 Mhz Band (part 2). Radio Communication Technology. 2013;2(20):13–21. (in Russ.)

15. GOST 14662–83. Telegraph radio communication channel transmit-receive equipment. Main parameters, general technical requirements and methods of measurement of transmit-receive channel. Moscow: Publishing House of Standards; 1986. (in Russ.)

16. Golovin O.V., Prostov S.P. Short-Wave Radio Communication Systems and Devices. Moscow: Goryachaya liniya-Telecom; 2006. 598 p. (in Russ.)

17. Bogdanov A.V., Puksa D.O., Romanov U.V., Fomin V.V. Equipment for Advanced Professional HF Radio Communication Systems. Radio Transmitting Devices, Radio Modems. Proceedings of the International Scientific and Technical Conference on Radio Engineering, Electronics and Communications, Omsk, Russian Federation, 5–8 Jule 2011. Omsk: Omsk Scientific-Research Institute of Instrument Engineering Publ.; 2011. p.76–81 (in Russ.)

18. Budyak V.S., Kismereshkin V.P., Shadrin B.G. Development of Principles for Building Automated Modular Radio Communication Nodes. Proceedings of the International Scientific and Technical Conference on Radio Engineering, Electronics and Communications, Omsk, Russian Federation, 1–3 October 2013. Omsk: Omsk Scientific-Research Institute of Instrument Engineering Publ.; 2013. p.92–97 (in Russ.)

19. Chuprov A.A. Manual of the Ionospheric-Wave and Frequency-Dispatch Service on Communication Nodes. Moscow: Voennoe izdatelstvo Publ.; 1990. 96 p. (in Russ.)


Review

For citations:


Pashkevich V., Golubev V., Protsenko М. Modeling and Calculation Characteristics of APAA HF-Band Based on Whip Antennas. Proceedings of Telecommunication Universities. 2021;7(1):81-93. (In Russ.) https://doi.org/10.31854/1813-324X-2021-7-1-81-92

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ISSN 1813-324X (Print)
ISSN 2712-8830 (Online)