A complete solution for anti-jaming radio data-link of an unmanned aerial vehicle

Authors

  • Oleksandr Saliy Institute of Special Communications and Information Protection of the National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine https://orcid.org/0009-0002-7021-5288
  • Vladyslav Hol Institute of Special Communication and Information Protection of the National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine https://orcid.org/0000-0002-9995-9590
  • Andrii Divitskyi Institute of Special Communication and Information Protection, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine https://orcid.org/0000-0002-9261-9841
  • Oleksiy Khakhlyuk Institute of Special Communication and Information Protection of the National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv, Ukraine https://orcid.org/0000-0003-1749-0109

DOI:

https://doi.org/10.20535/2411-1031.2023.11.2.293939

Keywords:

unmanned aerial vehicle, control channel, interference immunity, FPV mode, active jamming, transceiver, narrow-directional antenna pattern, calculation of radio link parameters, real-time analysis of the interference situation

Abstract

The effectiveness of an unmanned aerial vehicle's flight mission over a given distance depends on many factors. However, one of the key factors in the successful completion of a flight mission is the availability of high-quality management and control of telemetry by an unmanned aerial vehicle, which in turn is determined by a reliable radio communication between the ground control station and the unmanned aerial vehicle. The current stage of use of unmanned aerial vehicles is characterised by the use of active jammers of various types and purposes, the purpose of which is to disable control channels, navigation channels, telemetry channels and data transmission channels of FPV unmanned aerial vehicles in order to prevent the successful completion of the flight mission of the vehicle. The article considers conceptual issues of implementing a guaranteed interference-free radio data transmission and control of an unmanned aerial vehicle in the conditions of active jamming interference when combining various technological solutions. These solutions include the selection and justification of a special frequency range, the use of structural circuit solutions for interference protection of the radio data transmission and control line; the use of a specific scheme for organising communication with an unmanned aerial vehicle; the use of a transceiver and portable and light antennas for the radio channel that meet reasonable technical requirements; the implementation of the possibility of real-time monitoring of the interference situation on board the unmanned aerial vehicle and detection of the type of interference; ensuring flight in the sector. The requirements were justified and options for selecting a transceiver and antenna were proposed. A structural diagram of the radio line is developed and options for its use as a data transmission and control radio line for an unmanned aerial vehicle are proposed. Examples of real-time tracking of the interference situation on board an unmanned vehicle and detection of the type of interference are given. A flight option in the sector without the use of antenna tracking is calculated and justified. The approximate values of the signal at the receiver input of the unmanned vehicle are calculated.

Author Biographies

Oleksandr Saliy, Institute of Special Communications and Information Protection of the National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv

Junior researcher at the Research special laboratory No. 2 of the Research centre

Vladyslav Hol, Institute of Special Communication and Information Protection of the National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv

PhD. in engineering, professor, Head of the special department No. 1

Andrii Divitskyi, Institute of Special Communication and Information Protection, National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv

Senior lecturer, Special department No. 1

Oleksiy Khakhlyuk, Institute of Special Communication and Information Protection of the National Technical University of Ukraine "Igor Sikorsky Kyiv Polytechnic Institute", Kyiv

PhD. in engineering, associate professor of the Special department No. 1

References

TOR-2M. [Online]. Available: https://missilery.info/missile/tor-m2. Дата звернення: Вер. 22, 2023.

Tor. [Online]. Available: https://www.militarytoday.com/missiles/tor.htm. Accessed on: Sep. 19, 2023.

TOR-2M. [Online]. Available: http://war-russia.info/index.php/nomenklatura-vooruzhenij/334-sukhoputnye-vojska/pvo/samokhodnye-zenitno-raketnye-kompleksy/1204-divizionnyj-zrk-maloj-dalnosti-9k330-tor-sa15-gauntlet-1986g. Accessed on: Sep. 22, 2023.

Enemy electronic warfare equipment. [Online]. Available: https://sprotyvg7.com.ua/lesson/zasobi-radioelektronnoi-borotbi-voroga. Accessed on: Sep. 25, 2023.

Ukraine uses Strizh-3 systems against drones. [Online]. Available: https://mil.in.ua/uk/news/proty-droniv-ukrayiny-zastosovuyut-kompleksy-stryzh-3. Accessed on: Sep. 26, 2023.

Р-340RP “Pole-21”. [Online]. Available: https:// https://defence-ua.com/army_and_war/jaki_zasobi_reb_i_jak_vikristovuvalis_u_vijni_za_nagirnij_karabah-5653.html. Accessed on: Sep. 23, 2023.

“Pole-21”. [Online]. Available: https://focus.ua/digital/557429-vs-rf-ustanavlivayut-moduli-reb-pole-21-na-domah-i-vyshkah-svyazi-zachem-eto-im-nuzhno. Accessed on: Sep. 27, 2023.

Anti-drone guns LPD-820. [Online]. Available: https://focus.ua/uk/digital/587085-voyska-rf-poluchili-antidronovye-ruzhya-s-detektorom-bpla-chem-oni-grozyat-bespilotnikam-vsu. Accessed on: Sep. 23, 2023.

R. Austin, Unmanned aircraft systems: UAVS design, development and deployment. Hoboken, NJ, USA: Wiley & Sons, 2010.

“Recommendation ITU-R P.341-7 (2019). The concept of transmission loss for radio links”, P Series. Radiowave propagation. [Online]. Available: https://www.itu.int/rec/R-REC-P.341-7-201908-I/en. Accessed on: Sep. 19, 2023.

[“Recommendation ITU-R. P.530-18 (09/2021). Propagation data and prediction methods required for the design of terrestrial line-of-sight systems”, P Series. Radiowave propagation. [Online]. Available: https://www.itu.int/rec/R-REC-P.530-18-202109-I/en. Accessed on: Sep. 19, 2023.

“Recommendation ITU-R P.676-7. Attenuation by atmospheric gases”, P Series. Radiowave propagation. [Online]. Available: https://www.itu.int/rec/R-REC-P.676-7-200702-S/en. Accessed on: Sep. 19, 2023.

Methodology for calculating analogue and digital line-of-sight radar routes. G. Kudryavtsev, Ed. Kyiv, Ukraine: Ministry of Communications, 1987.

Eravant. [Online]. Available: https://www.eravant.com/. Accessed on: Sep. 21, 2023.

“Recommendation ITU-R P.525-3 (09/2016). Calculation of free-space attenuation”, P Series. Radiowave propagation. [Online]. Available: https://www.itu.int/rec/R-REC-P.525-3-201611-S/en. Accessed on: Sep. 19, 2023.

Published

2023-12-28

How to Cite

Saliy, O., Hol, V., Divitskyi, A., & Khakhlyuk, O. (2023). A complete solution for anti-jaming radio data-link of an unmanned aerial vehicle. Collection "Information Technology and Security", 11(2), 251–265. https://doi.org/10.20535/2411-1031.2023.11.2.293939

Issue

Section

ELECTRONIC COMMUNICATION SYSTEMS AND NETWORKS