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Physical Modeling of Electromagnetic Interference in Unmanned Aerial Vehicle under Action of the Electric Transport Contact Network

  • Radio Engeneering and Communication
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Abstract

The technique was developed for studying the noise immunity of electronic systems of unmanned aerial vehicles on the basis of physical modeling. The mathematical models, the scheme of a test bench, and examples of parameter calculation for physical modeling of electromagnetic interference in communication lines under the influence of switching magnetic fields of electric transport contact network are proposed. An example of physical modeling of electromagnetic interference in communication lines is presented.

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References

  1. Zhuravlev, V.N. and Zhuravlev, P.V., Use of Unmanned Aerial Vehicles in Economic Sectors: State of the Art and Prospects, Nauchnyi Vestnik MGTU GA, 2016, no. 4. pp. 156–164.

    Google Scholar 

  2. Moiseev, V.S., Gushchina, D.S., Shafigullin, R. R., Rational Placement and Required Number of Information Unmanned Aerial Systems for On-line Monitoring of Large Territories, Izv. Vuz. Av. Tekhnika, 2012, vol. 55, no. 3, pp. 3–7 [Russian Aeronautics (Engl.Transl.), vol. 55, no. 3, pp. 223–229].

    Google Scholar 

  3. Shleymovich, M.P., Medvedev, M.V., and Lyasheva, S.A., Image Analysis in Unmanned Aerial Vehicle On-Board System for Objects Detection and Recognition with the Help of Energy Characteristics Based on Wavelet Transform, Proc. SPIE 10342, Optical Technologies for Telecommunications, 2016, URL: https://spie.org/Publications/Proceedings/Paper/10.1117/12.2270141.

    Google Scholar 

  4. Shleymovich, M.P., Medvedev, M.V., and Lyasheva S.A. Contour Segmentation Based on Image Points Energy Estimation in Object and Process Control Systems, Proc. Int. Conf. on Industrial Engineering, Applications and Manufacturing (ICIEM), 2017, URL: http://ieeexplore.ieee.org/document/8076422/metrics

    Google Scholar 

  5. Komyagin, S.I., Osnovy metodologii electromagnitnoi stoikosti bespilotnykh letatel’nykh apparatov (Fundamentals in Methodology of Electromagnetic Resistance of Unmanned Aerial Vehicles), Mocow: MIEM, 2007.

    Google Scholar 

  6. Kravchenko, V.I., Bolotov, E.A., and Letunova, N.I., Radioelektronnye sredstva i moshchnye elektromagnitnye pomekhi (Radio-Electronic Means and Powerful Electromagnetic Interference), Kravchenko, V.I., Ed., Moscow: Radio i Svyaz’, 1987.

  7. Averin, S.V., Kirillov, V.Yu., Mashukov, E.V., Reznikov, S.B., and Shevtsov, D.A., Ensuring the Electromagnetic Compatibility of Onboard Cables for Unmanned Aerial Vehicles, Izv. Vuz. Av. Tekhnika, 2017, vol. 60, no. 3, pp. 113–117 [Russian Aeronautics (Engl.Transl.), vol. 60, no. 3, pp. 442–446].

    Google Scholar 

  8. From Quadrocopters to Unmanned Aerial Vehicles. The Most Interesting Interpolitekh-2015 Unmanned Aerial Vehicles, URL: http://sdelanounas.ru/blogs/70167/?pid=710479.

  9. Stratton, J. A., Electromagnetic Theory, New York: McGraw Hill Book, 1941.

    MATH  Google Scholar 

  10. Schumacher, C.R., Electrodynamic Similitude and Physical Scale Modeling of Nondispersive Targets, Journal of Applied Physics, 1987, vol. 62, no. 7, pp. 2616–2625.

    Article  Google Scholar 

  11. Gizatullin, Z.M., The Analysis of Magnetic Fields under Lightning Strike Impact on the Outside of the Building Lightning Protection System, Tekhnologiya Elektromagnitnoi Sovmestimosti, 2010, no. 3, pp. 30–36.

    Google Scholar 

  12. Gizatullin, Z.M. and Gizatullin, R.M., Modeling of Electromagnetic Environment on the Basis of the Theory of Large-Scale Experiment for Problems of Electromagnetic Compatibility and Protection of Information, Informatsionnye Tekhnologii, 2013, no. 4. pp. 19–22.

    Google Scholar 

  13. Gizatullin, Z.M. and Gizatullin, R.M., Study of the Electromagnetic Compatibility of Local Area Networks under the Action of Nanosecond Electromagnetic Disturbances, Journal of Communications Technology and Electronics, 2014, no. 5. pp. 424–426.

    Article  Google Scholar 

  14. Gizatullin, Z.M., Gizatullin, R.M., and Nuriev, M.G., Mathematical Models for Physical Modeling Problems of Electromagnetic Compatibility Tasks, Izv.Vuz. Problemy Energetiki, 2015, nos. 1–2, pp. 115–122.

    Google Scholar 

  15. Gizatullin, Z.M, Nuriev, M.G., and Gizatullin R.M., Physical Modeling of Electromagnetic Interference under the Influence of Electromagnetic Impulses on the Micro-Objects, Zhurnal Radioelektroniki, 2015, no. 6, pp. 1–9.

    Google Scholar 

  16. Gizatullin, Z.M., Nuriev, M.G. and Shleimovich, M.P., Physical Modeling of Electromagnetic Interference in Unmanned Aerial Vehicle under Action of Indirect Lightning Strike, Proc. 11th Int. Sc. Tech. Conf. on Dynamics of Systems, Mechanisms and Machines, Omsk, 2017, pp. 1–4.

    Google Scholar 

  17. Gizatullin, Z.M., Nuriev, M.G., and Gizatullin, R.M., Physical Simulation of the Interference Immunity of Electronic Equipment under the Electromagnetic Action of Industrial Macrosources, Journal of Communications Technology and Electronics, 2018, vol. 63, no. 1, pp. 87–93.

    Article  Google Scholar 

  18. Pirogov, Yu.A. and Solodov, A.V., Damages of Integrated Microcircuits in Fields of Radio Emission, Zhurnal Radioelektroniki, 2013, no.6.

  19. Gizatullin, Z.M., Increase of Shielding Efficiency for Metal Cases of Electronic Devices, Tekhnologii Elektromagnitnoi Sovmestimosti, 2010, no. 3, pp. 37–43.

    Google Scholar 

  20. Gizatullin, Z.M., Decrease of Electromagnetic Interference in Interconnections of Multilayer Printed Boards, Vestnik KGTU im. A.N. Tupoleva, 2012, no. 2, pp. 199–205.

    Google Scholar 

  21. Gazizov, T.R., Samotin, I.E., Zabolotsky, A.M., and Melkozerov, A.O., Design of Printed Modal Filters for Computer Network Protection, Proc. 30th Int. Conf. on Lightning Protection, 2010, pp. 1–3.

    Google Scholar 

  22. Gazizov, A.T., Zabolotsky, A.M., and Gazizov, T.R., UWB Pulse Decomposition in Simple Printed Structures, IEEE Transactions on Electromagnetic Compatibility, 2016, vol. 58, no. 4, pp. 1136–1142.

    Article  Google Scholar 

  23. Surovtsev, R.S., Nosov, A.V., Zabolotsky, A.M., and Gazizov, T.R., Possibility of Protection Against UWB Pulses Based on a Turn of a Meander Microstrip Line, IEEE Transactions on Electromagnetic Compatibility, 2017, vol. 59, no. 6, pp. 1864–1871.

    Article  Google Scholar 

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Correspondence to Z. M. Gizatullin.

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Original Russian Text © M.G. Nuriev, R.M. Gizatullin, Z.M. Gizatullin, 2018, published in Izvestiya Vysshikh Uchebnykh Zavedenii, Aviatsionnaya Tekhnika, 2018, No. 2, pp. 137–141.

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Nuriev, M.G., Gizatullin, R.M. & Gizatullin, Z.M. Physical Modeling of Electromagnetic Interference in Unmanned Aerial Vehicle under Action of the Electric Transport Contact Network. Russ. Aeronaut. 61, 293–298 (2018). https://doi.org/10.3103/S1068799818020204

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  • DOI: https://doi.org/10.3103/S1068799818020204

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