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RESEARCH CENTER FOR INDUSTRIAL DEVELOPMENT PROBLEMS of NAS of Ukraine (KHARKIV, UKRAINE)

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Liburkina L. M.

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Resilience of Energy Systems of Territorial Communities: A Bibliometric Analysis of the Genesis and Thematic Structure of Scientific Research
Khaustova V. Y., Hubarieva I. O., Trushkina N. V.

Khaustova, Viktoriia Ye., Hubarieva, Iryna O., and Trushkina, Nataliia V. (2026) “Resilience of Energy Systems of Territorial Communities: A Bibliometric Analysis of the Genesis and Thematic Structure of Scientific Research.” Business Inform 7:933–933.

Section: Industrial Economics

Article is written in Ukrainian
Downloads/views: 0

UDC 620.9:332.1:001.89

Abstract:
The article examines the genesis, development dynamics, and thematic structure of scientific publications devoted to the resilience of energy systems of territorial communities. The relevance of the study is determined by the fact that, under climate, technological, security, and socioeconomic risks, local energy systems are increasingly considered not only as technical infrastructure, but also as a basis for the continuous functioning of critical services, the local economy, and the viability of territories. At the same time, in the scientific literature, this issue is often presented in a fragmented way: in the context of power grids, microgrids, renewable energy, digital management, energy communities, urban infrastructure, or energy policy. This complicates the formation of a holistic understanding of a resilient energy system specifically at the level of a territorial community. The aim of the article is to identify the genesis, development dynamics, and thematic structure of research on the resilience of energy systems of territorial communities based on a bibliometric analysis of publications indexed in the Scopus and Web of Science databases. The methodological basis of the study is a bibliometric approach implemented in three stages: the formation of a broad field of research on the resilience of energy systems; the identification of the conceptual core of energy resilience; and the identification of the local and municipal dimension related to cities, communities, local energy systems, energy communities, and microgrids. The VOSviewer software environment was used to visualize and interpret the results. The study identified that the broad field of energy system resilience has a long genesis, but its intensive growth occurred after 2020. The concept of energy resilience as an independent scientific direction became especially active in 2024–2026. The local and municipal dimension was formed later, but it demonstrates the most dynamic growth and brings together research on microgrids, distributed energy resources, energy storage, renewable generation, energy communities, digital monitoring, climate adaptation, and local energy planning. The scientific novelty lies in substantiating the transition from the general study of energy system resilience to the local level of territorial communities and in interpreting the resilient energy system of a territorial community as an integrated system of local energy supply. This system combines technical, organizational, managerial, and resource components necessary to maintain critically important energy services, adapt to shocks, and restore functioning after disruptions. The practical value of the results lies in the possibility of using them to develop local energy security plans, identify critical loads, substantiate investments in microgrids, energy storage systems, renewable generation, backup power supply, and digital tools for managing the energy infrastructure of communities.

Keywords: resilience; resilient energy system; energy resilience; territorial communities; local energy systems; microgrids; energy communities; risk; threats; economic shock; crisis situation; energy security; bibliometric analysis.

Fig.: 5. Tabl.: 9. Bibl.: 45.

Khaustova Viktoriia Ye. – Doctor of Sciences (Economics), Professor, Director, Research Center for Industrial Problems of Development of NAS of Ukraine (2 floor 1-a Inzhenernyi Ln., Kharkiv, 61166, Ukraine)
Email: [email protected]
Hubarieva Iryna O. – Doctor of Sciences (Economics), Professor, Deputy Director, Research Center for Industrial Problems of Development of NAS of Ukraine (2 floor 1-a Inzhenernyi Ln., Kharkiv, 61166, Ukraine)
Email: [email protected]
Trushkina Nataliia V. – Candidate of Sciences (Economics), Senior Research Stuff Member, Senior Research Fellow, Sector of Industrial Policy and Innovative Development of the Department of Industrial Policy and Energy Security, Research Center for Industrial Problems of Development of NAS of Ukraine (2 floor 1-a Inzhenernyi Ln., Kharkiv, 61166, Ukraine)
Email: [email protected]

List of references in article

Ahangar H. G., Yew W. K. & Flynn D. (2023). Smart Local Energy Systems: Optimal Planning of Stand-Alone Hybrid Green Power Systems for On-Line Charging of Electric Vehicles. IEEE Access, 11, 7398–7409. https://doi.org/10.1109/ACCESS.2023.3237326
Anderson K., Laws N. D. & Marr S. (2018). Quantifying and monetizing renewable energy resiliency. Sustainability, 4(10). https://doi.org/10.3390/su10040933
Anum H., Hashmi M. A. & Shahid M. U. (2025). Recurrent Neural Network (RNN) Based Algorithm in Multi-Level Control of an Islanded DC Microgrid Connected to Variable Communication Networks. IET Renewable Power Generation, 1(19). https://doi.org/10.1049/rpg2.70052
Badakhshan S. & Zhang J. (2026). Generative AI-Enhanced Real-Time Anomaly Detection in Integrated Energy Systems. IEEE Transactions on Smart Grid, 2(17), 1549–1560. https://doi.org/10.1109/TSG.2025.3630562
Callaway D. S., Newman M. E. J., Strogatz S. H. & Watts D. J. (2000). Network robustness and fragility: percolation on random graphs. Physical Review Letters, 25(85), 5468–5471. https://doi.org/10.1103/PhysRevLett.85.5468
Chen L., Msigwa G. & Yang M. (2022). Strategies to achieve a carbon neutral society: a review. Environmental Chemistry Letters, 4(20), 2277–2310. https://doi.org/10.1007/s10311-022-01435-8
Couraud B., Andoni M. & Robu V. (2023). Responsive FLEXibility: A smart local energy system. Renewable and Sustainable Energy Reviews, 182. https://doi.org/10.1016/j.rser.2023.113343
Dileep G. (2020). A survey on smart grid technologies and applications. Renewable Energy, 146, 2589–2625. https://doi.org/10.1016/j.renene.2019.08.092
Dong K., Dong X., Jiang Q. & Zhao J. (2021). Assessing energy resilience and its greenhouse effect: A global perspective. Energy Economics, 104. https://doi.org/10.1016/j.eneco.2021.105659
Eltamaly A. M. & Zaki Diab A. A. (2025). Power systems and smart grids. Stevenage, United Kingdom: Institution of Engineering and Technology. https://doi.org/10.1049/pbpo264f
Eltamaly A. M. & Zaki Diab A. A. (2025). Power systems and smart grids. Stevenage, United Kingdom: Institution of Engineering and Technology. https://doi.org/10.1049/PBPO264G
Fahad S., Khan S. A., Salman M., Han Y. & Liu Y. (2026). Quantum-inspired multi-modal multi-objective optimization for integrated electric and hydrogen mobility in renewable energy systems: Case study in Islamabad, Pakistan. Applied Energy, 415. https://doi.org/10.1016/j.apenergy.2026.127900
Feng Y., Yan T. & Guo J. (2026). Assessing the global impact of artificial intelligence on energy resilience: The role of financial inclusion. Socio-Economic Planning Sciences, 103. https://doi.org/10.1016/j.seps.2025.102380
Geels F. W. (2014). Regime resistance against low-carbon transitions: introducing politics and power into the multi-level perspective. Theory, Culture & Society, 5(31), 21–40. https://doi.org/10.1177/0263276414531627
Gomez-Ramirez G. A., Meza C. & Mora-Jimenez G. (2023). The Central American Power System: Achievements, Challenges, and Opportunities for a Green Transition. Energies, 11(16). https://doi.org/10.3390/en16114328
Guha S. (2020). Quantification of inherent energy resilience of process systems pertaining to a gas sweetening unit. International Journal of Industrial Chemistry, 2(11), 71–90. https://doi.org/10.1007/s40090-020-00203-3
Hong T., Chen Y. & Luo X. (2020). Ten questions on urban building energy modeling. Building and Environment, 168. https://doi.org/10.1016/j.buildenv.2019.106508
Hubarieva I. O. & Khaustov M. M. (2024). Ryzyky enerhetychnii bezpetsi. Vizualizatsiia naukovykh doslidzhen [Risks to energy security. Visualization of scientific research]. Problemy ekonomiky, 2, 21–30. https://doi.org/10.32983/2222-0712-2024-2-21-30
Janta P., Leeraphun N. & Thapmanee K. (2024). Energy resilience assessment: Incorporating consideration of recoverability and adaptability in risk assessment of energy infrastructure. Energy for Sustainable Development, 81. https://doi.org/10.1016/j.esd.2024.101506
Jiang G. H., Chen F. Z. & Gu M. Y. (2025). Supply chain digitization and energy resilience: evidence from China. Energy Economics, 144. https://doi.org/10.1016/j.eneco.2025.108420
Kabeyi M. J. B. & Olanrewaju O. A. (2022). Sustainable energy transition for renewable and low carbon grid electricity generation and supply. Frontiers in Energy Research, 9. https://doi.org/10.3389/fenrg.2021.743114
Khaustova V., Kyzym M., Trushkina N. & Khaustov M. (2024). Digital transformation of energy infrastructure in the conditions of global changes: bibliometric analysis. Proceedings of the 12th International Conference on Applied Innovations in IT, 1(12), 135–142. https://doi.org/10.25673/115664
Khaustova V. Ye., Trushkina N. V., Pronoza P. V. & Yudenko Ye. V. (2025). Restrukturyzatsiia ekonomiky krainy: bibliometrychnyi analiz doslidzhen [Restructuring of the country's economy: bibliometric analysis of research]. Problemy ekonomiky, 2, 143–159. https://doi.org/10.32983/2222-0712-2025-2-143-159
Khaustova V. Ye., Kotliarov Ye. I. & Trushkina N. V. (2026). Identyfikatsiia ta ranzhuvannia elementiv krytychnoi infrastruktury terytorialnykh hromad Ukrainy [Identification and ranking of critical infrastructure elements of territorial communities of Ukraine]. Biznes Inform, 4, 155–172. https://doi.org/10.32983/2222-4459-2026-4-155-172
Koirala B. P., Avila J. P. C. & Gomez T. (2016). Local alternative for energy supply: Performance assessment of integrated community energy systems. Energies, 12(9). https://doi.org/10.3390/en9120981
Lin J., Yu W. & Zhang N. (2017). A survey on Internet of Things: architecture, enabling technologies, security and privacy, and applications. IEEE Internet of Things Journal, 5(4), 1125–1142. https://doi.org/10.1109/JIOT.2017.2683200
Mohaghegh L., Abbaspour M., Ghodoosi J. & Sharifi A. (2021). Determination and Prioritization of Criteria for Urban Energy Resilience Using Fuzzy Analytic Hierarchy Process (FAHP). Journal of Environmental Studies, 1(47), 25–43. https://doi.org/10.22059/JES.2021.322334.1008167
Nepal R., Zhao X. M. & Dong K. Y. (2025). Can artificial intelligence technology innovation boost energy resilience? The role of green finance. Energy Economics, 142. https://doi.org/10.1016/j.eneco.2024.108159
Ouyang M., Duenas-Osorio L. & Min X. (2012). A three-stage resilience analysis framework for urban infrastructure systems. Structural Safety, 36–37, 23–31. https://doi.org/10.1016/j.strusafe.2011.12.004
Parag Y., Ainspan M. & Zemah Shamir S. (2026). Why current resilience metrics fall short in the energy transition: A system-level review of gaps and needs. Energy Strategy Reviews, 63. https://doi.org/10.1016/j.esr.2025.102023
Perera A. T. D., Nik V. M. & Chen D. (2020). Quantifying the impacts of climate change and extreme climate events on energy systems. Nature Energy, 2(5), 150–159. https://doi.org/10.1038/s41560-020-0558-0
Pompei L., Nardecchia F. & Bisegna F. (2023). A new concept of a thermal network for energy resilience in mountain communities powered by renewable sources. Sustainable Energy, Grids and Networks, 33. https://doi.org/10.1016/j.segan.2022.100980
Reed D. A., Kapur K. C. & Christie R. D. (2009). Methodology for assessing the resilience of networked infrastructure. IEEE Systems Journal, 2(3), 174–180. https://doi.org/10.1109/JSYST.2009.2017396
Rehman H. U., Hamdy M. & Hasan A. (2024). Towards Extensive Definition and Planning of Energy Resilience in Buildings in Cold Climate. Buildings, 5(14). https://doi.org/10.3390/buildings14051453
Serban A. C. & Lytras M. D. (2020). Artificial intelligence for smart renewable energy sector in Europe: smart energy infrastructures for next generation smart cities. IEEE Access, 8, 77364–77377. https://doi.org/10.1109/ACCESS.2020.2990123
Tiwari S., Chakrabarty A. & Schelly C. (2025). Does energy policy scholarship consider energy resilience? A bibliometric analysis and agenda for reform. Electricity Journal, 3(38). https://doi.org/10.1016/j.tej.2025.107496
Tyagi S. V., Kansal M. L. & Singhal M. K. (2026). Reliability-resilience-economic–sustainability-based off-grid hybrid energy system for remote communities in the Indian Himalayan region. Sustainable Energy Technologies and Assessments, 85. https://doi.org/10.1016/j.seta.2025.104809
Ullah S. M. S., Yankson S. & Ebrahimi S. (2024). Smart investment framework for energy resilience: A case study of a campus microgrid research facility. Next Energy, 4. https://doi.org/10.1016/j.nxener.2024.100131
Wang Y., Chen C., Wang J. & Baldick R. (2016). Research on resilience of power systems under natural disasters: a review. IEEE Transactions on Power Systems, 2(31), 1604–1613. https://doi.org/10.1109/TPWRS.2015.2429656
Xu Y., Liu C.-C. & Schneider K. P. (2018). Microgrids for service restoration to critical load in a resilient distribution system. IEEE Transactions on Smart Grid, 1(9), 426–437. https://doi.org/10.1109/TSG.2016.2591531
Yang B. & Cui Y. (2025). Can the energy consumption rights trading system enhance energy resilience? A synergistic perspective of green finance and financial technology. Energy, 322. https://doi.org/10.1016/j.energy.2025.135605
Zaporozhets A., Khaustova V., Kyzym M. & Trushkina N. (2026). Sustainable Financing Mechanism for Energy System Development Toward a Decarbonized Economy: Conceptual Model and Management Framework. Energies, 2(19). https://doi.org/10.3390/en19020422
Zhang Z., Zhao M. & Chen Y. (2025). The nexus between energy legislation, energy transition, and energy resilience: Evidence from 55 countries worldwide. Energy, 324. https://doi.org/10.1016/j.energy.2025.135906
Zhang X., Zhou N. & Liao J. (2025). Flexible interconnected support for decarbonizing local energy systems with high penetration distributed energy resources and electric vehicles. International Journal of Electrical Power and Energy Systems, 170. https://doi.org/10.1016/j.ijepes.2025.110850
Zhou Y. & Dan Z. (2025). Modern energy resilience studies with artificial intelligence for energy transitions. Cell Reports Physical Science, 4(6). https://doi.org/10.1016/j.xcrp.2025.102508

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