Skip to main content
Log in

Modeling of Thermal Processes in Transmitting Complexes of Radar Monitoring Stations

  • RADIO ENGINEERING AND COMMUNICATION
  • Published:
Russian Aeronautics Aims and scope Submit manuscript

Abstract

An original approach is proposed to modeling the thermal processes in a multichannel continuous monitoring radar station under the influence of destabilizing factors of various nature. The results of modeling the temperature series for a radar station under the most heat-intensive operating modes are presented. On the basis of the model developed for thermal processes, an algorithm was proposed that makes it possible to predict temperature values and overheating failures of units.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Fig. 1.
Fig. 2.
Fig. 3.
Fig. 4.
Fig. 5.
Fig. 6.

Similar content being viewed by others

REFERENCES

  1. Avtushenko, A.F., et al., Moshchnye nadgorizontnye RLS dal’nego obnaruzheniya: razrabotka, ispytaniya, funktsionirovanie (Powerful Over-the-Horizon Early Warning Radars: Development, Testing, Operation), Moscow: Radiotekhnika, 2013.

    Google Scholar 

  2. Stupin, D.D., Perlov, A.Yu., and Mavrin, A.V., Research and Testing of AFAR Transmitting Complexes to Ensure the Tactical and Technical Characteristics of the Radar, Izvestiya YuFU. Tekhnicheskie Nauki, 2018, no. 3, pp. 143–155.

    Google Scholar 

  3. Al-Hazmy, M.M., Analysis of Coupled Natural Convection–Conduction Effects on the Heat Transport through Hollow Building Blocks, Energy and Buildings, 2006, vol. 38, issue 5, pp. 515–521.

    Article  Google Scholar 

  4. Baskakov, A.P., et al., Teplotekhnika (Heat Engineering), Moscow: Energoatomizdat, 1991.

    Google Scholar 

  5. Kudinov, V.A., Eremin, A.V., Kudinov, I.V., and Zhukov, V.V., Critical Conditions for a Thermal Explosion Taking into Account the Space-Time Nonlocality, Izv. Vuz. Av. Tekhnika, 2018, vol. 61, no. 2, pp. 100–104 [Russian Aeronautics (Engl. Transl.), vol. 61, no. 2, pp. 252–256].

    Google Scholar 

  6. Goydenko, V., Goncharenko, V., and Zhuravleva, N., Method of Control and Diagnosis Integrated Systems and Communication Systems Based on Thermal Processes, URL: http://ceur-ws.org/Vol-2590/short18.pdf.

  7. Volkov, A.G., Goncharenko, V.I., and Zhuravleva, N.G., Development of a Neural Network Algorithm for Predicting the Technical State of Complex Systems Based on an Algebraic Approach, Proc. of the 2d International Conference on Control Systems, Mathematical Modeling, Automation and Energy Efficiency, Nov. 10–13, 2020, Lipetsk, Russia, pp. 501–505.

    Google Scholar 

  8. Anufrenko, A.V., Goydenko, V.A., Goncharenko, V.I., and Zhuravleva, N.G., Methodical Approach and Models for the Implementation of Wavelet Analysis in Diagnostics of the State of Integrated Systems and Communication Complexes, Materialy 12-i mezhdunarodnoi konf. “Upravlenie razvitiem krupnomasshtabnykh sistem MLSD’2019” (Proc. of the 12th Int. Conf. “Management of the development of large-scale systems MLSD'2019”), Moscow: IPU im. V.A. Trapeznikova RAN, 2019, pp. 739–742.

    Google Scholar 

  9. Pilipenko, A. and Petrov, S., Computer Simulation and Modelling System of Non-Stationary Heat Exchange Processes, Proc. of the MATEC Web of Conferences, VIII International Scientific and Practical Conference “Information and Measuring Equipment and Technologies” (IME&T 2017), 2018, vol. 155, article no. 01036 URL: https://www.matec-conferences.org/articles/matecconf/pdf/2018/14/matecconf_imet2018_01036.pdf.

    Google Scholar 

  10. Sadeghi, H.M., Babayan, M., and Chamkha, A., Investigation of Using Multi-Layer PCMS in the Tubular Heat Exchanger with Periodic Heat Transfer Boundary Condition, Int. Journal of Heat and Mass Transfer, 2020, vol. 147, article no. 118970.

    Article  Google Scholar 

  11. Rulik, S., et at., Experimental and Numerical Analysis of Heat Transfer within Cavity Working under Highly Non-Stationary Flow Conditions, Energy, 2020, vol. 190, article no. 116303.

    Article  Google Scholar 

  12. Repnev, D.N. and Ushkar, M.N., Application of Computational Modules of CAD in the Calculation of Thermal Conditions On-Board Radar, Trudy MAI, 2011, no. 49, URL: http://trudymai.ru/eng/published.php?ID=28240.

  13. Volchkova, G.P. and Kotov, V.M., Studying Properties of Dense Schedules under Condition of Limited Number of Service Units, Informatika, 2015, no. 1, URL: https://inf.grid.by/jour/article/viewFile/8/10.

  14. Gorshkov, L.K., Mosin, D.A., Tyutyukin, A.E., and Urtmintsev, I.A., Mathematical Modeling of Heat Transfer of the Main Elements of Power Equipment of Spacecraft, Informatsiya i Kosmos, 2017, no. 2, pp. 160–167.

    Google Scholar 

  15. Kalinin, K.P. and Berloff, N.G., Global Optimization of Spin Hamiltonians with Gain-Dissipative Systems, Scientific Reports, 2018, vol. 8, article no. 17791.

    Article  Google Scholar 

Download references

ACKNOWLEDGEMENTS

The study was supported by the grant of the Russian Science Foundation no. 21-19-00481, URL: https://rscf.ru/project/21-19-00481/ .

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to V. I. Goncharenko.

Additional information

Translated from Izvestiya Vysshikh Uchebnykh Zavedenii, Aviatsionnaya Tekhnika, 2021, No. 4, pp. 180 - 187.

About this article

Check for updates. Verify currency and authenticity via CrossMark

Cite this article

Timoshenko, A.V., Perlov, A.Y., Goncharenko, V.I. et al. Modeling of Thermal Processes in Transmitting Complexes of Radar Monitoring Stations. Russ. Aeronaut. 64, 783–791 (2021). https://doi.org/10.3103/S1068799821040255

Download citation

  • Received:

  • Revised:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.3103/S1068799821040255

Keywords

Navigation