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dc.contributor.author Raslan, Amr A.
dc.contributor.author Aly, Mokhtar
dc.contributor.author Mohamed, Emad A.
dc.contributor.author Alhosaini, Waleed
dc.contributor.author Ahmed, Emad M.
dc.contributor.author Nasrat, Loai S.
dc.contributor.author Said, Sayed M.
dc.date.accessioned 2026-02-08T03:31:51Z
dc.date.available 2026-02-08T03:31:51Z
dc.date.issued 2025-06
dc.identifier.issn 2504-3110
dc.identifier.other Mendeley: e3ef62d0-a4a1-3b96-ba0f-499b460c8919
dc.identifier.uri https://repositorio.uss.cl/handle/uss/20583
dc.description Publisher Copyright: © 2025 by the authors.
dc.description.abstract Various sectors focus on transitioning to clean and renewable energy sources, particularly airport microgrids (AMGs), which offer the potential for highly reliable and resilient operations. As airports increasingly integrate renewable energy sources, ensuring stable and efficient power becomes a critical challenge. In this context, maintaining proper frequency is essential for the reliable operation of AMGs, which helps maintain grid stability and reliable operation. This paper proposes a new hybrid disturbance observer-based controller with a fractional-order controller (DOBC/FOC) for operating AMGs with high levels of renewable energy integration and advanced frequency regulation (FR) capabilities. The proposed controller utilizes DOBC coupled with a non-integer FOC for load frequency control (LFC), optimized for peak performance under varying operational conditions. In addition, a decentralized control strategy is introduced to manage the participation of electric vehicles and lithium-ion battery systems within the airport’s energy ecosystem, enabling effective demand response and energy storage utilization. Furthermore, the parameters of these controllers are optimized simultaneously to ensure optimal performance in both transient and steady-state conditions. The proposed DOBC/FOC controller demonstrates strong performance and reliability according to simulation outcomes, showcasing its superior performance in maintaining frequency stability, reducing fluctuations, and ensuring continuous power supply in diverse operating scenarios, such as 55.5% and 76.5% in step load perturbations when compared to the utilization of electric vehicles (EVs) and electric aircraft (EAC), respectively. These results underline the potential of this approach in enhancing the resilience and sustainability of AMG and contributing to more intelligent and eco-friendly airport infrastructure. en
dc.language.iso eng
dc.relation.ispartof vol. 9 Issue: no. 6 Pages: 354
dc.source Fractal and Fractional
dc.title Optimized Non-Integer with Disturbance Observer Frequency Control for Resilient Modern Airport Microgrid Systems en
dc.type Artículo
dc.identifier.doi 10.3390/fractalfract9060354
dc.publisher.department Facultad de Ingeniería


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