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Journal Antennas №2 for 2024 г.
Article in number:
Method of formation of relay interference with the use of fiber-optic elements
Type of article: scientific article
DOI: https://doi.org/10.18127/j03209601-202402-01
UDC: 621.396.96
Authors:

A. A. Simonyan1, V. O. Skripachev2
1, 2 MIREA – Russian Technological University (Moscow, Russia)

1 simonyan2206@ya.ru, 2 skripatchevv@inbox.ru

Abstract:

The work is devoted to the use of fiber-optic elements in order to ensure the isolation of the receiving and transmitting path of the repeater under the stipulation that it is placed on board of the aircraft.

The objective of the article is to consider in detail the possibility of formation of a relay interference with the use of fiber-optic elements and ensuring the isolation of the transceiver path.

Technical solutions for formation and provision of isolation of the receiving and transmitting path have been proposed. Empirically, the result of a time delay has been obtained, sufficient to endow the spectral components with additional components, ensuring the suppression of the carrier oscillation of at least 10 dB.

The presented results form the basis for modernization and industrial production of promising electronic suppression systems, and allow using new techniques for setting relay interference at ready-made active interference stations.

Pages: 5-11
For citation

Simonyan A.A., Skripachev V.O. Method of formation of relay interference with the use of fiber-optic elements. Antennas. 2023. № 2. P. 5–11. DOI: https://doi.org/10.18127/j03209601-202402-01 (in Russian)

References
  1. Boev S.F., Chebotar' I.V., Baldychev M.T. i dr. Algoritm opredeleniya parametrov dvizheniya vozdushnogo ob''ekta s bortovym istochnikom radioizlucheniya dinamicheskoj sistemoj radiotekhnicheskogo monitoringa. Naukoemkie tekhnologii. 2017. № 11. S. 9–15. (in Russian)
  2. Artemov M.L. Avtomatizirovannye sistemy upravleniya, radiosvyazi i radioelektronnoj bor'by. M.: Radiotekhnika. 2021. (in Russian)
  3. Kosachev I.M., Stepanov A.A. Sovremennoe sostoyanie i perspektivy razvitiya aviatsionnykh vysokotochnykh sredstv porazheniya. Vestnik Voennoj akademii Respubliki Belarus'. 2005. № 4 (9). S. 8–24. (in Russian)
  4. Patent US 8130814B2. Orthogonal code division multiplex CCK (OCDM-CCK) method and apparatus for high data rate wireless LAN. R. Sivaswamy, P. Sivaswamy. Publ. Mar. 6, 2012.
  5. Ryazanov S.K, Fateev V.F. Metody i sredstva avtonomnoj navigatsii kosmicheskikh apparatov. Zarubezhnaya radioelektronika. Uspekhi sovremennoj radioelektroniki. 1991. № 6. S. 12–34. (in Russian)
  6. Anpilogov V.R., Gol'berg B.S., Didenko M.G. Volokonno-opticheskie linii svyazi v sovremennykh telekommunikatsionnykh sistemakh. Tekhnologiya i sredstva svyazi. 2000. № 1. S. 47–56. (in Russian)
  7. Babintsev E.S., Lyanguzov K.A. Strukturnaya skrytnost' slozhnogo signala s PPRCh. Vestnik Izhevskogo gosudarstvennogo tekhniches­kogo universiteta. 2007. № 3. S. 57–58. (in Russian)
  8. Skolnik M. Spravochnik po radiolokatsii: V 4-kh tomakh. M.: Tekhnosfera. 2015. (in Russian)
  9. Bakulev P.A., Sosnovskij S.A. Radiolokatsionnye i radionavigatsionnye sistemy: Ucheb. posobie dlya vuzov. M.: Radio i svyaz'. 1994. (in Russian)
  10. Vejtsel' V.A., Volkovskij A.S. i dr. Radiosistemy upravleniya: Ucheb. dlya vuzov. M.: Drofa. 2005. (in Russian)
Date of receipt: 28.02.2024
Approved after review: 13.03.2024
Accepted for publication: 26.03.2024