Preview

Alternative Energy and Ecology (ISJAEE)

Advanced search
Open Access Open Access  Restricted Access Subscription or Fee Access

Еmergency automation for creating and controlling modes of local smart power systems based on small-scale generation

https://doi.org/10.15518/isjaee.2024.01.225-234

Abstract

The relevance of the study lies in the research of methods, means, modes and conditions for the inclusion of local power supply systems with small-scale generation in the network of an external electric power system (EPS). At the same time, the operation of local power supply systems in EPS becomes possible only with the implementation of new approaches to controlling automated mode and emergency control means while overcoming existing technical barriers to parallel operation with EPS.

The article generally describes a method and technical means for solving the problem of reliable and efficient energy supply to consumers during the development of small-scale distributed generation technologies and the formation of local power supply systems (LPS) on its basis. The low-cost integration of LPSs into existing electrical networks of centralized power supply systems with a mode of parallel operation of generators in a common network while controlling special emergency and mode automation and high-quality transformation of LPSs into local smart power supply systems (LSPS, Minigrid) are proposed.

The full implementation of LSPS into the existing power system for small-scale distributed generation is an evolutionary stage in its development, since this will allow small power facilities to operate not only in an autonomous mode, but also as part of a regional centralized power system. Due to which LSPSs have additional technical effects, primarily in terms of ensuring the reliability of power supply to consumers.

About the Authors

A. I. Marchenko
Novosibirsk State Technical University
Russian Federation

Marchenko Andrey Ivanovich - Candidate of Technical Sciences, Sector Head of the Department of Highly qualified personnel training, Senior Lecturer of the Automated electric power systems Department, Head and Senior Researcher of the Smart electrical power
systems Laboratory, Faculty of Power Engineering, 

Karl Marx Avenue, 20, Novosibirsk, 630073



A. G. Fishov
Novosibirsk State Technical University
Russian Federation

Fishov Alexander Georgievich - Doctor of Technical Science, Professor of the Automated electric power systems Department, Faculty of Power Engineering,

Karl Marx Avenue, 20, Novosibirsk, 630073



I. S. Murashkina
Novosibirsk State Technical University
Russian Federation

Murashkina Inna Sergeevna - assistant of the Automated electric power systems Department, Junior Researcher of the Intelligent electrical power systems Laboratory, Faculty of Power Engineering,

Karl Marx Avenue, 20, Novosibirsk, 630073



References

1. . Melentyev L. A. Essays on the history of domestic energy. M.: Nauka, 1987. – 278 p. (Rus.)

2. . Kapitsa S. P., Kurdyumov S. P., Malinetsky G. G. Synergetics and future forecasts. M.: URSS, 2003. – 288 p. (Rus.)

3. . N. Voropai. Electric Power System Transformations: A Review of Main Prospects and Challenges, Energie, 13, no. 21, 5639 (2020)

4. . C. Marnay, C. Abbey, G. Joos, Microgrids 1: Engineering, economics, and experience – Capabilities, benefits, business opportunities and examples – Microgrids evolution roadmap. Electra, 283, 71-75 (2015)

5. . Microgrids: Architectures and Control; Hatziargiriou, N. (Ed.) IEEE Press-Wiley: New York, NY, USA (2014)

6. . Nekrasov S. A. Issues of establishing an alternative concept оf energy development. Part 1. From an increase in the capacity of the power system to an increase in the structural stability of the electric power industry. – Moscow: CEMI Russian Academy of Sciences, 2020. – 180 p. (Rus.)

7. . Nekrasov S. A. Issues of establishing an alternative concept оf energy development. Part 2. Ways to transform energy supply. – Moscow: CEMI Russian Academy of Sciences, 2020. – 283 p. (Rus.)

8. . Yu. N. Kucherov, D. N. Yarosh, Yu. G. Fedorov, A. Oudalov. Analysis of technical aspects of smart grid technologies integration into power system of megacity, Proc. CIGRE International Symposium «The electric power system of the future – Integrating supergrids and microgrids», Bologna, Italy (September 13-15, 2011)

9. . P. V. Ilyushin, Yu. G. Fedorov, S. P. Filippov, Yu. N. Kucherov, S. A. Nekrasov, F. V. Veselov, D. N. Yarosh, Yu. A. Zeygarnik, A. Z. Zhuk. Features of small dispersed CHP integration into the power system, Proc. of 45th International Conference on Large High Voltage Electric Systems, CIGRE Session 45, Paris, France, 1-10 (August 24-29, 2014)

10. .N. V. Kvasha. Distributed and digital energy as innovative elements of the fourth energy transition / N. V. Kvasha, E. G. Bondar // Scientific and technical bulletins of St. Petersburg State Polytechnic University. Economic Sciences. 2021, Vol. 14, No. 6. – Р. 67–77. (Rus.)

11. .Control for Grid-Connected and Intentional Islanding Operations of Distributed Power Generation / I. J. Balaguer, Q. Lei, S. Yang [et al.] // IEEE Trans. Ind. Electron. – 2011. – Vol. 58, iss. 1. – P. 147–157.

12. .Ashabani, S. M. New Family of Microgrid Control and Management Strategies in Smart Distribution Grids – Analysis, Comparison and Testing / S. M. Ashabani, Y. A. I. Mohamed // IEEE Trans. Power Syst. – 2014. – Vol. 29, iss. 5. – P. 2257–2269.

13. .Voropai, N. I., Problems of vulnerability and survivability of cyber-physical electrical power systems / N. I. Voropai, I. N. Kolosok., E. S. Korkina, A. B. Osak // Energy Policy. – 2018. – No. 5. – P. 53–61. (Rus.)

14. .Bulatov, Yu. N. Multi-agent control technologies in power supply systems with active consumers / Yu. N. Bulatov, A. V. Kryukov // Proceedings of Bratsk State University. Series Natural and engineering sciences. – 2016. – No. 2. – P. 145–154. (Rus.)

15. .Multi-agent optimal control of electrical networks with active consumers and renewable energy sources / V. V. Molodyuk, Ya. Sh. Isamukhamedov, P. V. Ilyushin, D. A. Ivanovsky // Energetik. – 2022. – No. 2. – P. 45–52. (Rus.)

16. .Fishov, A. G. Active distribution electrical networks with decentralized multi-agent mode control / A. G. Fishov, A. A. Osintsev, Yu. V. Kakosha, M. Z. Odinabekov // «ELECTRICITY» No. 10 (2022): Issue No. 10. – 2022. (Rus.)

17. .Ilyushin, P. V. Systematic approach to the development and implementation of distributed energy and renewable energy sources in Russia / P. V. Ilyushin // Energetik. – 2022. – No. 4. – P. 20–27. (Rus.)

18. .Zhou, X. An overview on microgrid technology / X. Zhou, T. Guo, Y. Ma // 2015 160 IEEE International Conference on Mechatronics and Automation (ICMA): proc., Beijing, 02-05 August 2015. – Beijing: IEEE, 2015. – P. 76–81.

19. .Real-World MicroGrids-An Overview / M. Barnes, J. Kondoh, H. Asano [et al.] // 2007 IEEE International Conference on System of Systems Engineering: proc., San Antonio, 16-18 April 2007. – San Antonio: IEEE, 2007. – P. 1–8.

20. .Zaidi, A. A. Microgrid automation – a selfconfiguring approach / A. A. Zaidi, F. Kupzog // 2008 IEEE International Multitopic Conference: proc., Karachi, 23-24 December 2008. – Karachi: IEEE, 2008. – P. 565–570.

21. .Automation of power systems: textbook / compiled by Yu. S. Borovikov, A. S. Gusev, M. V. Andreev, A. O. Sulaimanov; Tomsk Polytechnic University. – Tomsk: Tomsk Polytechnic University Publishing House, 2015. – 196 p.

22. .Ovcharenko N. I., Automation of power systems: textbook for universities / N. I. Ovcharenko; edited by member-corr. RAS, Dr. tech. sciences, prof. A. F. Dyakova. – M.: MPEI Publishing House, 2016.

23. .A. L. Kulikov, M. V. Sharygin, P. V. Ilyushin. Principles of organization of relay protection in microgrids with distributed power generation sources, Power Technology and Engineering, 53, no. 5, 611-617 (2020)

24. .Electronic resource: https://www.terbergspecialvehicles.com

25. .Technical and economic aspects of creating minigrids and its integration with centralized energy supply. Fishov A. G. / Energetik. 2022. No. 4. pp. 27-34. – http://dx.doi.org/10.34831/EP.2022.85.14.005

26. .Method of emergency control of the parallel operation mode of synchronous generators in electrical networks. Fishov A. G., Marchenko A. I., Mukatov B. B. / Patent for invention RU 2662728 C2, 07/30/2018.

27. .Means and methods for controlling the parallel operation of a small-generation power station with an electrical network / A. I. Marchenko, V. V. Denisov, I. S. Murashkina // Scientific Bulletin of the Novosibirsk State Technical University. – 2019. – Issue. No. 1 (74). – P. 77-90. – DOI: 10.17212/1814-1196-2019-1-77-90.

28. .Decentralized emergency control of AC power grid modes with distributed generation / A. Fishov, A. Osintsev, A. Ghulomzoda, A. Marchenko, Kokin, S., Safaraliev, M., Dmitriev, S. & Zicmane, I. – DOI 10.3390/en16155607. – Text : direct // Energies. – 2023. – Vol. 16, iss. 15. – Art. 5607.

29. .Study of the stability of parallel operation of a local low-power power supply system with an external electrical network of the power system / A. G. Fishov, A. I. Marchenko, V. V. Denisov, I. S. Murashkina // Proceedings of the Russian Academy of Sciences. Energy. – 2020. – No. 1. – P. 116-127. – DOI: 10.31857/S0002331020010136

30. .Dynamic Characteristics of the Minigrid Synchronous Operation with the Electrical Network of a Centralized Electric Power System / A. I. Marchenko, I. S. Murashkina. – DOI: 10.1109/EDM55285.2022.9855051. – Text: direct // IEEE 23 International Conference of Young Professionals in Electron Devices and Materials (EDM) to the 100th anniversary of the legendary NETI rector Georgy Lyshchinsky: proc., Erlagol, 30 June – 4 July 2022. – Novosibirsk: IEEE, 2022. – P. 455-460.


Review

For citations:


Marchenko A.I., Fishov A.G., Murashkina I.S. Еmergency automation for creating and controlling modes of local smart power systems based on small-scale generation. Alternative Energy and Ecology (ISJAEE). 2024;(1):225-234. (In Russ.) https://doi.org/10.15518/isjaee.2024.01.225-234

Views: 49


ISSN 1608-8298 (Print)