Navigation menu:

Home

Editorial Board

Contact

Volume 9 (2025)


Power Supply Systems for Space Rocket Complexes: Considerations for Power Quality Management and Control

Vadym Reva1*, Kostyantyn Zemlyanyi1, Oleksandr Udovyk2, Oleksii Leonov2, Maciej Jamiński3

1"Pivdenne" State Design Office, 3 Krivorizska st., 49008 Dnipro, Ukraine
2Dnipro University of Technology, Dnipro, Ukraine
3AGH University of Krakow, Faculty of Management, 30 Mickiewicza Ave., Krakow, Poland

*Corresponding author: reva.vad@ukr.net

Abstract

The efficiency and reliability of power supply system's play a critical role in the operation of space rocket complexes, where stringent requirements for power quality, stability, and control must be met. This study explores various power supply architectures and technologies suitable for space applications, emphasizing the importance of power quality management and control strategies. The research analyzes key factors affecting power system performance, including voltage regulation, frequency stability, harmonic distortion, and electromagnetic compatibility. Advanced methods for monitoring and optimizing power distribution within rocket complexes are also examined. By comparing different power supply configurations and their impact on operational efficiency, this study provides recommendations for enhancing the resilience and sustainability of energy systems in space missions. The findings contribute to the development of more robust and efficient power infrastructure for modern and future space exploration endeavors.

Keywords: space rocket complexes, power supply systems, power quality management, voltage regulation, frequency stability, harmonic distortion, electromagnetic compatibility

References
  1. Beshta, O., Fedoreyko, V., Palchyk, A., & Burega, N. (2015). Independent power supply of menage objects based on biosolid oxide fuel systems. Power Engineering, Control and Information Technologies in Geotechnical Systems, 33–39. https://doi.org/10.1201/b18475-6
  2. Dychkovskyi, R., Saik, P., Sala, D., & Cabana, E. C. (2024). The current state of the non-ore mineral deposits mining in the concept of the Ukraine reconstruction in the post-war period. Mineral Economics. https://doi.org/10.1007/s13563-024-00436-z
  3. Polyanska, A., Pazynich, Y., Mykhailyshyn, K., Babets, D., & Tos, P. (2024). Aspects of energy efficiency management for rational energy resource utilization. Rudarsko-Geolosko-Naftni Zbornik, 39(3), 13–26. https://doi.org/10.17794/rgn.2024.3.2
  4. Kyrylenko, O., Stogniy, B., Denysiuk, S., & Sopel, M. (2024). Smart-monitoring of electric power systems. Tekhnichna Elektrodynamika, (5), 048. https://doi.org/10.15407/techned2024.05.048
  5. Kuznietsov E.I. (2024) Trydtsiat rokiv na orbiti. Druhe vydannia. Do 32-richnytsi utvorennia Derzhavnoho kosmichnoho ahentstva Ukrainy [Thirty Years in Orbit. Second Edition. To the 32nd Anniversary of the Establishment of the State Space Agency of Ukraine]. Kyiv: Space-Inform, 124.
  6. Gladky E.G., Perlik V.I. (2000). Influence of safety factors, used on designing, upon launch vehicles flight safety indexes. 50th International Astronautical Congress, IAF. Rio-de-Janero. 119.
  7. Linnik A.K. (2021). Systemnyi pidkhid do proektuvannya raketno-kosmichnoi tekhniky: illustrovannyi kurs lekcii styslo [A systematic approach to the design of rocket and space technology: an illustrated course of lectures in a nutshell]. Dnipro: LIRA, 80.
  8. Hladkyi E.H. (2020). Novi pidkhody do kompleksnoho otsiniuvannia polotnoi bezpeky i nadiinosti raketno-kosmichnykh system: dys. dok. tekhn. nauk: 05.07.02 [New approaches to comprehensive assessment of flight safety and reliability of rocket and space systems: dissertation of Doc. of Tech. Sc.: 05.07.02]. Dnipro, 370.
  9. DSTU EN 50160:2022 Voltage characteristics of electricity supplied by public electricity networks. Retrieved from https://online.budstandart.com/ua/catalog/doc-page.html?id_doc=106226
  10. IEEE 1547:2003 Standard for Interconnecting Distributed Resources with Electric Power System. Retrieved from https://fglongatt.org/OLD/Archivos/Archivos/SistGD/IEEE1547.pdf
  11. Kannu, P.D., Thomas T.M. (2003). Lightning-induced voltages in a satellite launch-pad protection system. Electromagnetic Compatibility, IEEE Transactions, 45(4), 644–651.
  12. Rey G.R., Muneta L.M. (Eds.) (2011) Power Quality Harmonics Analysis and Real Measurements Data. InTech, 289.
  13. El Hajji, H. Mahmoudi and M. Labbadi (2020). The electromagnetic interferance caused by high voltage power lines along the electrical rail-way equipment. International Journal of Electrical and Computer Engineering, 10(5), 4581–4891.
  14. Frolov, V. P. (2010). The method of forming the structures of uninterrupted power supply systems of launch complexes based on modeling: Ph.D. dissertation in technical sciences: 05.07.06. National Aerospace University named after N. E. Zhukovsky "Kharkiv Aviation Institute", 176.
  15. Białobrzeski, O. V., Oliinichenko, M. Iu., Vorona, V. V., & Yakymets, S. M. (2024). Research on the distribution of symmetrical components in an electrical system with a diesel generator set under asymmetrical load. Electrical Engineering and Power Engineering, 3, 45–54. https://doi.org/10.15588/1607-6761-2024-3-5
  16. Bollen, M. (1996). Voltage sags: Effects, prediction and mitigation. Power Engineering Journal, 10(3), 129–135.
  17. Dugan, R. C. (2004). Electrical power systems quality. Digital Engineering Library.
  18. Flores, R. A. (2002). State of the art in the classification of power quality events: An overview. Proceedings of the 2002 10th International Conference on Harmonics and Quality of Power, 17–20. https://doi.org/10.1109/ICHQP.2002.1221398
  19. Janik, P., Kosobudzki, G., & Schwarz, H. (2017). Influence of increasing numbers of RE-inverters on the power quality in the distribution grids: A PQ case study of a representative wind turbine and photovoltaic system. Higher Education Press and Springer-Verlag, Berlin Heidelberg. https://doi.org/10.1007/s11708-017-0469-3
  20. Lamoree, J., Mueller, D., Vinett, P., Jones, W., & Samotyj, M. (1994). Voltage sag analysis case studies. IEEE Transactions on Industry Applications, 30(4), 1083–1089.
  21. Pivnyak, G., Azukovskiy, O., Papaika, Y., Cabana, C. E., Olczak, P., & Dyczko, A. (2021). Assessment of power supply energy efficiency by voltage quality criterion. Rynek Energii, 4(155), 75–84. ISSN 1425-5960.
  22. Rey, G. R., & Muneta, L. M. (Eds.). (2011). Power quality harmonics analysis and real measurements data. InTech.
  23. Stones, J., & Collinson, A. (2001). Power quality. Power Engineering Journal, 15(2), 58–64. https://doi.org/10.1049/pe:20010201