350 rub
Journal Nonlinear World №1 for 2024 г.
Article in number:
A mathematical model of the process of functioning of an unattended complex technical system under conditions of high-power electromagnetic influence
Type of article: scientific article
DOI: https://doi.org/10.18127/j20700970-202401-04
UDC: 62-761
Authors:

 I.P. Emelyanov1

1 A.F. Mozhaisky Military Space Academy (Saint Petersburg, Russia)

1 vka@mil.ru. 

Abstract:

Problem statement. The existing mathematical models of the functioning of maintenance-free complex technical systems (STS) have a narrow focus on the types of degrading effects, and do not allow a comprehensive assessment of the quality of the functioning of the NSTS under the influence of high-power electromagnetic radiation.

The purpose of the work. To propose a mathematical model of the STS functioning process under conditions of high-power electromagnetic influence.

Results. The author's view on the improvement of existing mathematical models of the NSTS functioning process under conditions of high-power electromagnetic influence is presented. A mathematical model of the functioning process has been developed.

Practical significance. The developed mathematical model based on the generalization of experimental data on the resistance of semiconductor elements to EMV BM and models of analytical description of the mechanisms of action allows us to obtain computational and experimental dependences of the criterion levels of resistance of functional elements (FE) of NSTS on the parameters of EMV BM. What is new is the use in assessing the criteria levels of resistance, along with the duration and rate of front rise, the frequency of EMR repetition under repeated exposures, as well as taking into account third-party EMR of natural origin.

Pages: 30-39
For citation

Emelyanov I.P. A mathematical model of the process of functioning of an unattended complex technical system under conditions of high-power electromagnetic influence. Nonlinear World. 2024. V. 22. № 1. P. 30-39. DOI: https://doi.org/10.18127/j20700970-202401-04 (In Russian)

References
  1. Abdurahimov A.A., Goncharov P.S., Denisov A.M., Kuhtin A.V. Obobshhennaja matematicheskaja model' processa funk-cionirovanija bortovogo obespechivajushhego kompleksa kosmicheskogo apparata v uslovijah tehnogennogo zagrjaznenija okolozemnogo kosmicheskogo prostranstva. Trudy voenno-kosmicheskoj akademii im. A.F. Mozhajskogo. 2020. № 675. S. 182–194. (In Russian).
  2. Abdurahimov A.A., Skvorcov D.V. Metodologicheskie osnovy obespechenija zhivuchesti kosmicheskih apparatov. Trudy Voenno-kosmicheskoj akademii im. A.F. Mozhajskogo. 2013. № 640. S. 7-19 (In Russian).
  3. Abrameshin A.E. Metodologija proektirovanija bortovoj radiojelektronnoj apparatury kosmicheskih apparatov s uchetom vozdejstvija porazhajushhih faktorov jelektrizacii. Avtoref. diss. … dokt. tehn. nauk. M. 2016. 30 s. (In Russian).
  4. Akishin A.I., Novikov L.S. Jelektrizacija kosmicheskih apparatov. M.: Znanie. 1985. 64 s. (Novoe v zhizni, nauke, tehnike. Ser. «Kosmonavtika, astronomija». № 3) (In Russian).
  5. GOST R 51317.1.5-2009 (MJeK 61000-1-5:2004). Sovmestimost' tehnicheskih sredstv jelektromagnitnaja. Vozdejstvija jelektromagnitnye bol'shoj moshhnosti na sistemy grazhdanskogo naznachenija. Osnovnye polozhenija. (In Russian).
  6. Dobykin V.D., Kuprijanov A.I., Ponomarev V.G., Shustov L.N. Radiojelektronnaja bor'ba. Silovoe porazhenie radio-jelektronnyh system. Pod red. A.I. Kuprijanova. M.: Vuzovskaja kniga. 2007. 468 s. (In Russian).
  7. Dobykin V.D. Razvitie teorii teplovogo porazhenija poluprovodnikovyh struktur moshhnym jelektromagnitnym izlucheniem. Radiotehnika i jelektronika. 2008. T. 53. № 1. S. 108–111 (In Russian).
  8. Ermolaev V.I., Ezerskij V.V., Poletaev B.I. Bortovoe oborudovanie kosmicheskih apparatov. SPb: VKA im. A.F. Mozhajskogo. 2009. 507 s. (In Russian).
  9. Zherdev O.V., Onufrej A.Ju., Orlov A.A., Razumov A.V. Raschetno-jeksperimental'naja metodika ocenivanija krite-rial'nyh urovnej stojkosti vychislitel'nyh sredstv k vozdejstviju sverhkorotkih impul'sov. Trudy Voenno-kosmicheskoj akademii imeni A.F. Mozhajskogo. 2021. № 677. S. 218-224 (In Russian).
  10. Korobko A.I., Korobko Z.I. Ocenka urovnej stojkosti radiojelektronnyh komponentov k porazhajushhemu vozdej-stviju jelektromagnitnogo izluchenija, harakternogo dlja jelektromagnitnogo terrorizma. Sb. nauch. trudov «Tehnika i jelektrofizika vysokih naprjazhenij». Har'kov: NTU «HPI». 2009. № 39. S. 105–109 (In Russian).
  11. Lisickij V.V., Emel'janov I.P., Semenov A.A., Bulychev S.N. Formalizacija podhoda k obespecheniju stojkosti neobsluzhivaemoj slozhnoj tehnicheskoj sistemy k jelektromagnitnomu izlucheniju. Jelektromagnitnye volny i jelektronnye sistemy. 2022. T. 27. № 6. S. 59−64. DOI: https://doi.org/10.18127/j15604128-202206-08 (In Russian).
  12. Ventcel' E.S. Teorija verojatnostej: Uchebnik dlja vuzov. Izd. 10-e, ster. M.: Vysshaja shkola. 2006. 575 s. (In Russian).
  13. Ostrejkovskij V.A. Teorija nadezhnosti: Uchebnik dlja vuzov. M.: Vysshaja shkola. 2003. 463 s. (In Russian).
Date of receipt: 10.01.2024
Approved after review: 23.01.2024
Accepted for publication: 02.03.2024