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AC Traction Network Simulation with the Wave Processes in the SimInTech Environment

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SMART Automatics and Energy

Part of the book series: Smart Innovation, Systems and Technologies ((SIST,volume 272))

Abstract

Wave processes in the traction network have a negative impact on the electric power transmission lines laid near the railway. These constitute communication lines, auto-block rail circuits, power, and lighting networks. Wave processes adversely affect energy losses and are the cause of emergencies in the traction power supply system. The need to increase energy efficiency and to improve the quality of electricity, the uninterrupted operation of power supply systems in the context of the intensive development of electrified transport, taking into account the growth in the traffic of goods and passengers, require an integrated approach to the analysis of wave processes in the system that includes not only the traction network but also power lines and an electric mobile structure. The creation of a model of an AC power supply system with a traction load in the SimInTech environment makes it possible to conduct research in multivariate modes of the power supply system operation, taking into account wave processes.

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References

  1. Kashtanov, A.L., Komyakov, A.A., Nikiforov, M.M.: About the work on updating the energy strategy of the Russian railways holding for the period until 2020 and for the future until 2030. In: Increasing the Energy Efficiency of Land Transport Systems: Proceedings of the Second International Scientific and Practical Conference (Omsk), pp. 159–165 (2016)

    Google Scholar 

  2. Serrano-Jiménez, D., Abrahamsson, L., Castaño-Solís, S., Sanz-Feito, J.: Electrical railway power supply systems: current situation and future trends. Int. J. Electr. Power Energy Syst. 92, 181–192 (2017)

    Article  Google Scholar 

  3. Gerhátová, Z., Zitrický, V., Klapita, V.: Industry 4.0 implementation options in railway transport. Transp. Res. Proc. 53, 23–30 (2021)

    Google Scholar 

  4. Arboleya, P., Mayet, C., Mohamed, B., Aguado, J.A., Torre, S.: A review of railway feeding infrastructures: Mathematical models for planning and operation. Transportation 5, 100063 (2020)

    Google Scholar 

  5. Siromakha, S.S., Osipov, D.S. and Cheremisin, V.T.: About the need to account the operating mode and impedance of the power supply system when modeling the resonance of currents. Mod. Probl. Sci. Educ. (2014)

    Google Scholar 

  6. Minina, A.A., Panteleev, V.I., Platonova, E.V.: The electricity quality maintenance in AC traction power supply systems. J. Siberian Fed. Univ. Tech. Technol. 5, 319–326 (2012)

    Google Scholar 

  7. Byalon, A., Adamski, D., Furman, Y.: Influence of resonances in the contact network on the permissible interference parameters. Transp. Electr., 116–121 (2016)

    Google Scholar 

  8. Abrahamsson, L., Östlund, S., Schütte, T., Söder, L.: An electromechanical moving load fixed node position and fixed node number railway power supply systems optimization model. Transp. Res. Part C Emerg. Technol. 30, 23–40 (2013)

    Article  Google Scholar 

  9. Sun, J., Duan, Y., Xiong, Y., Zhang, B.: Study of reactive power compensation for high speed railway design. Energy Proc. 17, 414–421 (2012)

    Article  Google Scholar 

  10. Hu, W., Duan, X., Li, Q., Zhang, L.: Impact analysis and testing of harmonic of electrified railway on energy metering. Phys. Proc. 24, 1024–1030 (2012)

    Article  Google Scholar 

  11. Arzhannikov, B., Baeva, I., Tarasovskiy, T.: Energy Efficiency Electrified Section with Automatic Voltage Regulation Advances in Intelligent Systems and Computing, vol. 1115, pp. 87–97. AISC (2020)

    Google Scholar 

  12. Raimondo, G., Ladoux, P., Marino, P., Caron, H.: New Topology for voltage balancing in railway substations. IFAC Proc. 45, 560–565 (2012)

    Google Scholar 

  13. Ghaderi, M.H., Adelpour, M., Rashidirad, N., Hamzeh, M.: Analysis and damping of high-frequency oscillations at the presence of distributed constant power loads. Int. J. Electr. Power Energy Syst. 123, 106220 (2020)

    Google Scholar 

  14. Chen, Q., Qiu, P., Xiang, Z., Wang, S., Pan, W., Xie, H.: The application of distributed power flow controller in Gan Quan–Xiang Fu 220 kV AC lines in Hu Zhou. Energy Rep. 7, 210–215 (2021)

    Google Scholar 

  15. Kölsch, L., Wieninger, K., Krebs, S., Hohmann, S.: Distributed frequency and voltage control for AC microgrids based on primal-dual gradient dynamics this work was funded by the Deutsche Forschungsgemeinschaft (DFG, German Research Foundation)—project number 360464149. IFAC-PapersOnLine 53, 12229–12236 (2021)

    Article  Google Scholar 

  16. Cheremisin, V.T., Komyakov, A.A., Erbes, V.V.: Simulation of power consumption in railway power supply systems with artificial intelligence. In: AIDS International Conference on Industrial Engineering, Applications and Manufacturing. ICIEAM (2017)

    Google Scholar 

  17. Cheremisin, V., Demin, Y., Komyakov, A., Ivanchenko, V.: Technology for reducing the consumption and losses of electrical energy in the power supply systems of railway consumers. In: MATEC Web of Conferences, p. 239 (2018)

    Google Scholar 

  18. Fernández, P.M., Sanchís, I.V., Yepes, V., Franco, R.I.: A review of modelling and optimisation methods applied to railways energy consumption. J. Clean. Prod. 222, 153–162 (2019)

    Article  Google Scholar 

  19. Kovaleva, T.V., Pashkova, N.V.: The wave processes study in the overhead system and power lines. Izv. Transsiba 2(22), 71–79 (2015)

    Google Scholar 

  20. Orlov, A.I.: Two-sample Wilcoxon test-the analysis of two myths. Sci. J. KubSAU 104 (2014)

    Google Scholar 

  21. Wang, J., Li, H., Feng, L., Xu, L., Lv, X., Xu, Y.: Analysis of power quality issues of electrified railway. In: 8th International Conference on Mechanical and Intelligent Manufacturing Technologies (Cape Town, 3–6 Feb 2017), pp. 179–182 (2017)

    Google Scholar 

  22. Lee, H., Lee, C., Jang, G., Kwon, S.: Harmonic analysis of the Korean high-speed railway using the eight-port representation model. IEEE Trans. Power Delivery 21, 979–986 (2014)

    Google Scholar 

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Correspondence to T. V. Kovaleva .

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Kovaleva, T.V., Komyakova, O.O., Pashkova, N.V., Komyakov, A.A. (2022). AC Traction Network Simulation with the Wave Processes in the SimInTech Environment. In: Solovev, D.B., Kyriakopoulos, G.L., Venelin, T. (eds) SMART Automatics and Energy. Smart Innovation, Systems and Technologies, vol 272. Springer, Singapore. https://doi.org/10.1007/978-981-16-8759-4_44

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