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International Journal of Creative and Open Research in Engineering and Management

A Peer-Reviewed, Open-Access International Journal Supporting Multidisciplinary Research, Digital Publishing Standards, DOI Registration, and Academic Indexing.
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ISSN: 3108-1754 (Online)
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ISO Certification: 9001:2015
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License: CC BY 4.0
Peer Review: Double Blind
Volume 02, Issue 7

Published on: July 2026

ENHANCING POWER SYSTEM RESILIENCE THROUGH SMART GRID TECHNOLOGIES: A GEOPOLITICAL–POWER SYSTEM RESILIENCE (GPSR) FRAMEWORK FOR ENERGY SECURITY

Dr.ShashankSultaniya Dr. Pankaj Kumar Mehta

Electrical Engineering Sangam University, Bhilwara, Rajasthan

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Plagiarism Passed Peer Reviewed Open Access

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Abstract

The growing interdependence between global energy markets and electricity infrastructures has increased the vulnerability of power systems to geopolitical disruptions. The 2026 Iran energy crisis demonstrated how fuel supply uncertainty, energy market volatility, and disruptions in critical energy transportation routes can adversely affect electricity generation, operational reliability, and long-term energy security. Power systems with high dependence on imported fossil fuels are particularly exposed to such disturbances, resulting in increased generation costs, reduced operational flexibility, and heightened risks to grid stability. Consequently, enhancing power system resilience has become a strategic priority for utilities, policymakers, and researchers worldwide.


Although previous studies have extensively investigated energy security, smart grid technologies, and power system resilience, these domains are often examined independently, with limited attention given to the integrated influence of geopolitical risks on electricity network resilience. To address this research gap, this paper proposes a novel Geopolitical–Power System Resilience (GPSR) Framework that establishes a systematic relationship between geopolitical risk factors, power system vulnerabilities, smart-grid-based mitigation strategies, and resilience outcomes. The proposed framework consists of four interconnected layers: the Geopolitical Risk Layer, Power System Vulnerability Layer, Smart Grid Mitigation Layer, and Resilience Outcomes Layer.

How to Cite this Paper

ShashankSultaniya, & Mehta, P. K. (2026). Enhancing Power System Resilience Through Smart Grid Technologies: A Geopolitical–Power System Resilience (GPSR) Framework for Energy Security. International Journal of Creative and Open Research in Engineering and Management, <i>02</i>(7). https://doi.org/10.55041/ijcope.v2i7.002

ShashankSultaniya, , and Pankaj Mehta. "Enhancing Power System Resilience Through Smart Grid Technologies: A Geopolitical–Power System Resilience (GPSR) Framework for Energy Security." International Journal of Creative and Open Research in Engineering and Management, vol. 02, no. 7, 2026, pp. . doi:https://doi.org/10.55041/ijcope.v2i7.002.

ShashankSultaniya, , and Pankaj Mehta. "Enhancing Power System Resilience Through Smart Grid Technologies: A Geopolitical–Power System Resilience (GPSR) Framework for Energy Security." International Journal of Creative and Open Research in Engineering and Management 02, no. 7 (2026). https://doi.org/https://doi.org/10.55041/ijcope.v2i7.002.

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References

[1] International Energy Agency (IEA), Energy Security 2024, Paris, France: IEA Publications, 2024.

[2] International Renewable Energy Agency (IRENA), World Energy Transitions Outlook 2024, Abu Dhabi, UAE: IRENA, 2024.

[3] M. Panteli and P. Mancarella, “The Grid: Stronger, Bigger, Smarter? Presenting a Conceptual Framework of Power System Resilience,” IEEE Power & Energy Magazine, vol. 13, no. 3, pp. 58–66, May–Jun. 2015.

[4] M. Panteli and P. Mancarella, “Modeling and Evaluating the Resilience of Critical Electrical Power Infrastructure to Extreme Weather Events,” IEEE Systems Journal, vol. 11, no. 3, pp. 1733–1742, Sept. 2017.

[5] Y. Yao, P. Du, J. Wang, and R. H. Byrne, Power System Resilience Evaluation Framework and Metrics, National Renewable Energy Laboratory (NREL), Golden, CO, USA, 2022.

[6] J. H. Lin, X. Zhao, and Y. Wang, “Review of Power System Resilience Concept, Assessment and Enhancement Measures,” Applied Sciences, vol. 14, no. 4, pp. 1–25, 2024.

[7] J. N. Chivunga, T. M. Ndlovu, and S. K. Khumalo, “Power Systems’ Resilience: A Comprehensive Literature Review,” Energies, vol. 16, no. 21, 2023.

[8] B. K. Sovacool, “Energy Security and Global Energy Governance,” Energy Policy, vol. 36, no. 11, pp. 3940–3951, 2008.

[9] X. Liu, T. Zhao, H. Deng, and F. Blaabjerg, “Microgrid Energy Management with Energy Storage Systems: A Review,” CSEE Journal of Power and Energy Systems, vol. 9, no. 2, pp. 483–504, 2023.

[10] M. J. Bordbari, A. M. Ranjbar, and S. M. Muyeen, “Networked Microgrids: A Review on Configuration and Control,” Energies, vol. 17, no. 3, 2024.

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  • Published on: Jul 03 2026
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