Automatic Reserve Power Switching as a Means of Enhancing the Reliability of Industrial Power Supply

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Baurzhan Tleuliyev

Abstract

Industrial power systems face growing pressure to remain uninterrupted as production lines become more automated and more sensitive to even momentary outages. Automatic reserve power switching, widely known in engineering practice by its Russian-derived acronym ABP, remains one of the most cost-effective safeguards against supply interruption, transferring loads from a failed source to a healthy backup within a window ranging from milliseconds to a few seconds. This paper reviews the operating principles of conventional and fast-acting reserve switching schemes and places them within the broader evolution of substation automation, digital protection, and self-healing distribution networks. Drawing on twenty-two peer-reviewed sources published between 2018 and 2025, the study identifies a persistent gap between generic distribution-level reliability research and the specific switching-time requirements of industrial facilities such as metallurgical plants and continuous-process manufacturing sites. Building on this synthesis, the paper proposes a Criticality-Tiered Reserve Switching framework that matches load criticality categories to an appropriate class of switching technology, synchronization method, and communication protocol. The framework is intended as a decision-support tool for engineers selecting or upgrading reserve switching schemes. The proposed approach also enables engineers to balance switching speed, system complexity, and implementation cost according to the actual consequences of power interruption for each load category. By differentiating protection and redundancy requirements across criticality tiers, the framework can support more efficient allocation of technical resources while maintaining the required level of power-supply reliability. The paper concludes that the reliability benefits promised by digital substation technologies are only realized when switching logic is deliberately matched to process criticality rather than applied uniformly across a facility.

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How to Cite
Tleuliyev, B. (2026). Automatic Reserve Power Switching as a Means of Enhancing the Reliability of Industrial Power Supply. Global Prosperity, 6(3). https://doi.org/10.66556/2787-9364.3-6.tleuliyev-b
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References

Aderibigbe, M. A., Adoghe, A. U., Agbetuyi, F., & Airoboman, A. E. (2021). A review on optimal placement of distributed generators for reliability improvement on distribution network. 2021 IEEE PES/IAS PowerAfrica, 1–5. https://doi.org/10.1109/PowerAfrica52236.2021.9543266

Adetokun, B. B., & Muriithi, C. M. (2021). Application and control of flexible alternating current transmission system devices for voltage stability enhancement of renewable-integrated power grid: A comprehensive review. Heliyon, 7(3), e06461. https://doi.org/10.1016/j.heliyon.2021.e06461

Aftab, M. A., Hussain, S. M. S., Ali, I., & Ustun, T. S. (2020). IEC 61850 based substation automation system: A survey. International Journal of Electrical Power & Energy Systems, 120, 106008. https://doi.org/10.1016/j.ijepes.2020.106008

Altaf, M. W., Arif, M. T., Islam, S. N., & Haque, M. E. (2022). Microgrid protection challenges and mitigation approaches–A comprehensive review. IEEE Access, 10, 38895–38922. https://doi.org/10.1109/ACCESS.2022.3165011

Amini, F., Ghassemzadeh, S., Rostami, N., & Sohrabi Tabar, V. (2023). Electrical energy systems resilience: A comprehensive review on definitions, challenges, enhancements and future proceedings. IET Renewable Power Generation, 17(7), 1835–1858. https://doi.org/10.1049/rpg2.12705

Ashraf, S., Shawon, M. H., Khalid, H. M., & Muyeen, S. M. (2021). Denial-of-service attack on IEC 61850-based substation automation system: A crucial cyber threat towards smart substation pathways. Sensors, 21(19), 6415. https://doi.org/10.3390/s21196415

Ayesha, Numan, M., Baig, M. F., & Yousif, M. (2023). Reliability evaluation of energy storage systems combined with other grid flexibility options: A review. Journal of Energy Storage, 63, 107022. https://doi.org/10.1016/j.est.2023.107022

Beheshtaein, S., Cuzner, R., Savaghebi, M., & Guerrero, J. M. (2019). Review on microgrids protection. IET Generation, Transmission & Distribution, 13(6), 743–759. https://doi.org/10.1049/iet-gtd.2018.5212

Dagar, A., Gupta, P., & Niranjan, V. (2021). Microgrid protection: A comprehensive review. Renewable and Sustainable Energy Reviews, 149, 111401. https://doi.org/10.1016/j.rser.2021.111401

Escalera, A., Hayes, B., & Prodanović, M. (2018). A survey of reliability assessment techniques for modern distribution networks. Renewable and Sustainable Energy Reviews, 91, 344–357. https://doi.org/10.1016/j.rser.2018.02.031

Han, J., Lee, C.-M., & Kim, C.-H. (2021). Adaptive single-pole auto-reclosing scheme based on secondary arc voltage harmonic signatures. Energies, 14(5), 1311. https://doi.org/10.3390/en14051311

Jooshaki, M., Abbaspour, A., Fotuhi-Firuzabad, M., Moeini-Aghtaie, M., & Lehtonen, M. (2019). MILP model of electricity distribution system expansion planning considering incentive reliability regulations. IEEE Transactions on Power Systems, 34(6), 4300–4316. https://doi.org/10.1109/TPWRS.2019.2914516

Khan, W. A., Bi, T., & Jia, K. (2019). A review of single phase adaptive auto-reclosing schemes for EHV transmission lines. Protection and Control of Modern Power Systems, 4, 18. https://doi.org/10.1186/s41601-019-0133-5

Kornilov, G. P., Abdulveleev, I. R., Gazizova, O. V., & Koptsev, L. A. (2021). Power supply at metallurgical iron-and-steel works: Features and development prospects. Metallurgist, 65(7–8), 783–793. https://doi.org/10.1007/s11015-021-01216-8

Kumar, S., Abu-Siada, A., Das, N., & Islam, S. (2021). Toward a substation automation system based on IEC 61850. Electronics, 10(3), 310. https://doi.org/10.3390/electronics10030310

Kumar, S., Saket, R. K., Dheer, D. K., Holm-Nielsen, J. B., & Sanjeevikumar, P. (2020). Reliability enhancement of electrical power system including impacts of renewable energy sources: A comprehensive review. IET Generation, Transmission & Distribution, 14(10), 1799–1815. https://doi.org/10.1049/iet-gtd.2019.1402

Lu, J., Su, J., Zhao, R., Chen, F., Wang, Q., & Yan, W. (2024). A fast and accurate self-healing scheme for intelligent distribution networks using mixed integer linear programming. IEEE Access, 12, 21586–21595. https://doi.org/10.1109/ACCESS.2024.3362798

Luo, F., Ge, N., & Xu, J. (2023). Power supply reliability analysis of distribution systems considering data transmission quality of distribution automation terminals. Energies, 16(23), 7826. https://doi.org/10.3390/en16237826

Mehdi, A., Kim, C.-H., Hussain, A., Kim, J.-S., & Hassan, S. J. U. (2021). A comprehensive review of auto-reclosing schemes in AC, DC, and hybrid (AC/DC) transmission lines. IEEE Access, 9, 74325–74342. https://doi.org/10.1109/ACCESS.2021.3077938

Meteab, F., Tousi, B., & Omran, M. (2025). Efficient self-healing framework for smart distribution networks. Scientific Reports, 15, 31124. https://doi.org/10.1038/s41598-025-16929-y

Parol, M., Wasilewski, J., Wojtowicz, T., Arendarski, B., & Komarnicki, P. (2022). Reliability analysis of MV electric distribution networks including distributed generation and ICT infrastructure. Energies, 15(14), 5311. https://doi.org/10.3390/en15145311

Szott, M., Wermiński, S., Jarnut, M., Kaniewski, J., & Benysek, G. (2021). Battery energy storage system for emergency supply and improved reliability of power networks. Energies, 14(3), 720. https://doi.org/10.3390/en14030720