Cascaded Optimized Fractional Controller for Green Hydrogen-Based Microgrids with Mitigating False Data Injection Attacks
グリーン水素ベースのマイクログリッドにおける誤データ注入攻撃を抑制するカスケード最適化分数階コントローラ (AI 翻訳)
Nadia A. Nagem, M. Aly, Emad A. Mohamed, Aisha F. Fareed, Dokhyl Alqahtani, Wessam A. Hafez
🤖 gxceed AI 要約
日本語
本論文は、グリーン水素ベースのマイクログリッドシステムにおいて、誤データ注入攻撃(FDIA)を抑制する新しいカスケード型分数階制御器(1+TID/FOPIDF)を提案する。指数分布最適化(EDO)によりパラメータを最適化し、従来法と比較して周波数変動抑制性能が大幅に向上することを示した。
English
This paper proposes a novel cascaded fractional-order controller (1+TID/FOPIDF) for load frequency control in green hydrogen-based microgrids, designed to mitigate false data injection attacks. The controller parameters are optimized using the exponential distribution optimizer, showing superior performance in frequency deviation mitigation compared to existing methods.
Unofficial AI-generated summary based on the public title and abstract. Not an official translation.
📝 gxceed 編集解説 — Why this matters
日本のGX文脈において
日本政府はグリーン水素の普及を推進しており、水素マイクログリッドの安定運用は重要課題。本論文のFDIA対策技術は、水素インフラのセキュリティ強化に貢献する可能性がある。
In the global GX context
Green hydrogen is a key element of global energy transition, and securing microgrids against cyber threats like FDIA is crucial for reliable operation. This control approach offers a robust solution for frequency regulation in hydrogen-based systems, which is relevant for countries investing in hydrogen infrastructure.
👥 読者別の含意
🔬研究者:Provides a new optimization-based control design for hydrogen microgrids with FDIA resilience, suitable for control systems and energy researchers.
🏢実務担当者:Offers a practical controller structure that can be implemented in microgrid management systems to enhance stability under cyberattacks.
🏛政策担当者:Highlights the importance of cybersecurity in hydrogen energy systems, informing policy on grid resilience standards.
📄 Abstract(原文)
Green hydrogen production and the use of fuel cells (FCs) in microgrid (MG) systems have become viable and feasible solutions due to their continuous cost reduction and advancements in technology. Furthermore, green hydrogen electrolyzers and FC can mitigate fluctuations in renewable energy generation and various demand-related disturbances. Proper incorporation of electrolyzers and FCs can enhance load frequency control (LFC) in MG systems. However, they are subjected to multiple false data injection attacks (FDIAs), which can deteriorate MG stability and availability. Moreover, most existing LFC control schemes—such as conventional PID-based methods, single-degree-of-freedom fractional-order controllers, and various optimization-based structures—lack robustness against coordinated and multi-point FDIAs, leading to significant degradation in frequency regulation performance. This paper presents a new, modified, multi-degree-of-freedom, cascaded fractional-order controller for green hydrogen-based MG systems with high fluctuating renewable and demand sources. The proposed LFC is a cascaded control structure that combines a 1+TID controller with a filtered fractional-order PID controller (FOPIDF), namely the cascaded 1+TID/FOPIDF LFC control. Furthermore, another tilt-integrator derivative electric vehicle (EV) battery frequency regulation controller is proposed to benefit from EVs installed in MG systems. The proposed cascaded 1+TID/FOPIDF LFC control and EV TID LFC methods are designed using the powerful capability of the exponential distribution optimizer (EDO), which determines the optimal set of design parameters, leading to guaranteed optimal performance. The effectiveness of the newly proposed cascaded 1+TID/FOPIDF LFC control and design approach employing multi-generational-based two-area MG systems is studied by taking into account a variety of projected scenarios of FDIAs and renewable/load fluctuation scenarios. In addition, performance comparisons with some featured controllers are provided in the paper. For example, in the case of fluctuation in RESs, the measured indices are as follows: ISE (1.079, 0.5306, 0.3515, 0.0104); IAE (15.011, 10.691, 9.527, 1.363); ITSE (100.613, 64.412, 53.649, 1.323); and ITAE (2120, 1765, 1683, 241.32) for TID, FOPID, FOTID, and proposed, respectively, which confirm superior frequency deviation mitigation using the proposed optimized cascaded 1+TID/FOPIDF and EV TID LFC control method.
🔗 Provenance — このレコードを発見したソース
- semanticscholar https://doi.org/10.3390/fractalfract10010055first seen 2026-05-15 19:32:06 · last seen 2026-06-16 05:08:51
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