2️⃣2️⃣2️⃣Deep Learning-Based Predictive Energy Management System for Smart Microgrids
🔴Abstract Accurate forecasting of renewable generation and electrical demand has become an essential component of modern energy management systems. Traditional rule-based EMSs are incapable of exploiting future operating information, leading to suboptimal scheduling decisions and increased operating costs. This research proposes an intelligent predictive energy management framework that integrates deep learning forecasting models with adaptive optimization techniques for smart microgrids. Long Short-Term Memory (LSTM) and Transformer neural networks are employed to predict photovoltaic generation and load demand several hours ahead. These forecasts are then incorporated into an adaptive optimization engine that determines the optimal power dispatch strategy among renewable generators, battery storage systems, and the utility grid. The proposed framework minimizes energy costs, battery degradation, and renewable energy curtailment while maximizing system reliability under uncertain operating conditions. The expected outcomes include superior forecasting accuracy, enhanced energy utilization, reduced operating expenses, and improved operational flexibility compared with conventional predictive and rule-based energy management approaches.
🔴Abstract Accurate forecasting of renewable generation and electrical demand has become an essential component of modern energy management systems. Traditional rule-based EMSs are incapable of exploiting future operating information, leading to suboptimal scheduling decisions and increased operating costs. This research proposes an intelligent predictive energy management framework that integrates deep learning forecasting models with adaptive optimization techniques for smart microgrids. Long Short-Term Memory (LSTM) and Transformer neural networks are employed to predict photovoltaic generation and load demand several hours ahead. These forecasts are then incorporated into an adaptive optimization engine that determines the optimal power dispatch strategy among renewable generators, battery storage systems, and the utility grid. The proposed framework minimizes energy costs, battery degradation, and renewable energy curtailment while maximizing system reliability under uncertain operating conditions. The expected outcomes include superior forecasting accuracy, enhanced energy utilization, reduced operating expenses, and improved operational flexibility compared with conventional predictive and rule-based energy management approaches.
3️⃣3️⃣3️⃣Cyber-Resilient Energy Management System for Smart Microgrids Under False Data Injection Attacks
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🔴Abstract
As smart grids become increasingly dependent on communication networks and digital infrastructures, cybersecurity has emerged as a critical challenge for energy management systems. False Data Injection (FDI) attacks can manipulate measurement data, resulting in incorrect dispatch decisions, economic losses, and potential system instability. This paper proposes a cyber-resilient energy management system capable of maintaining secure and reliable operation under malicious cyberattacks. The proposed framework combines machine learning-based anomaly detection with adaptive optimization to identify compromised measurements and reconstruct trustworthy operational data before executing energy scheduling decisions. The optimization framework simultaneously minimizes operating costs while preserving voltage stability, power balance, and battery lifetime under both normal and cyberattack scenarios. Different attack strategies, including coordinated FDI attacks targeting renewable generation, load measurements, and battery state-of-charge, will be investigated. Comparative analyses against conventional cybersecurity techniques and standard EMS strategies will be performed using comprehensive simulation studies. The proposed approach is expected to significantly improve attack detection accuracy, reduce false alarm rates, and enhance the resilience of smart microgrids without sacrificing operational efficiency. The developed framework represents an important step toward secure and intelligent next-generation energy management systems.
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🔴Abstract
As smart grids become increasingly dependent on communication networks and digital infrastructures, cybersecurity has emerged as a critical challenge for energy management systems. False Data Injection (FDI) attacks can manipulate measurement data, resulting in incorrect dispatch decisions, economic losses, and potential system instability. This paper proposes a cyber-resilient energy management system capable of maintaining secure and reliable operation under malicious cyberattacks. The proposed framework combines machine learning-based anomaly detection with adaptive optimization to identify compromised measurements and reconstruct trustworthy operational data before executing energy scheduling decisions. The optimization framework simultaneously minimizes operating costs while preserving voltage stability, power balance, and battery lifetime under both normal and cyberattack scenarios. Different attack strategies, including coordinated FDI attacks targeting renewable generation, load measurements, and battery state-of-charge, will be investigated. Comparative analyses against conventional cybersecurity techniques and standard EMS strategies will be performed using comprehensive simulation studies. The proposed approach is expected to significantly improve attack detection accuracy, reduce false alarm rates, and enhance the resilience of smart microgrids without sacrificing operational efficiency. The developed framework represents an important step toward secure and intelligent next-generation energy management systems.
4️⃣4️⃣4️⃣Digital Twin-Driven Intelligent Energy Management System for Smart Buildings
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🔴Abstract
Digital Twin technology has recently emerged as a transformative tool for intelligent monitoring, simulation, and optimization of complex energy systems. This research presents a Digital Twin-driven energy management system designed for smart buildings equipped with renewable energy sources, battery storage systems, and intelligent loads. A real-time virtual replica of the physical building is continuously synchronized with sensor measurements to accurately represent the operational status of the energy system. The Digital Twin enables predictive analysis of future operating scenarios and supports optimal decision-making through an adaptive optimization algorithm. The proposed EMS simultaneously minimizes electricity costs, peak demand, energy waste, and greenhouse gas emissions while maintaining occupant comfort. Furthermore, predictive maintenance capabilities are integrated into the Digital Twin to identify equipment degradation before failures occur, thereby improving system reliability and reducing maintenance expenses. The effectiveness of the proposed framework will be evaluated under different weather conditions, occupancy patterns, and electricity pricing schemes. Comparative results are expected to demonstrate substantial improvements in energy efficiency, operational flexibility, and economic performance compared with conventional building energy management systems, highlighting the significant potential of Digital Twin technology in future smart cities.
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🔴Abstract
Digital Twin technology has recently emerged as a transformative tool for intelligent monitoring, simulation, and optimization of complex energy systems. This research presents a Digital Twin-driven energy management system designed for smart buildings equipped with renewable energy sources, battery storage systems, and intelligent loads. A real-time virtual replica of the physical building is continuously synchronized with sensor measurements to accurately represent the operational status of the energy system. The Digital Twin enables predictive analysis of future operating scenarios and supports optimal decision-making through an adaptive optimization algorithm. The proposed EMS simultaneously minimizes electricity costs, peak demand, energy waste, and greenhouse gas emissions while maintaining occupant comfort. Furthermore, predictive maintenance capabilities are integrated into the Digital Twin to identify equipment degradation before failures occur, thereby improving system reliability and reducing maintenance expenses. The effectiveness of the proposed framework will be evaluated under different weather conditions, occupancy patterns, and electricity pricing schemes. Comparative results are expected to demonstrate substantial improvements in energy efficiency, operational flexibility, and economic performance compared with conventional building energy management systems, highlighting the significant potential of Digital Twin technology in future smart cities.
5️⃣5️⃣5️⃣Coordinated Energy Management of Electric Vehicles and Renewable Energy Resources in Smart Grids
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🔴Abstract
The rapid growth of electric vehicles (EVs) offers both significant opportunities and considerable operational challenges for future smart grids. This paper proposes a coordinated energy management framework that integrates renewable energy resources, battery energy storage systems, and Vehicle-to-Grid (V2G) technology into a unified optimization platform. Unlike conventional charging strategies, the proposed EMS intelligently schedules charging and discharging operations according to renewable energy availability, electricity market prices, battery conditions, and user mobility requirements. A multi-objective adaptive optimization algorithm is employed to simultaneously minimize electricity costs, battery degradation, peak demand, and carbon emissions while maximizing renewable energy utilization and grid stability. Various operational scenarios involving different EV penetration levels, renewable generation uncertainties, and dynamic electricity tariffs will be investigated to evaluate system robustness. The proposed framework is expected to improve overall energy efficiency, enhance grid flexibility, and increase economic benefits for both consumers and utility operators. The developed methodology provides a scalable and intelligent solution for future sustainable transportation and smart grid integration.
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🔴Abstract
The rapid growth of electric vehicles (EVs) offers both significant opportunities and considerable operational challenges for future smart grids. This paper proposes a coordinated energy management framework that integrates renewable energy resources, battery energy storage systems, and Vehicle-to-Grid (V2G) technology into a unified optimization platform. Unlike conventional charging strategies, the proposed EMS intelligently schedules charging and discharging operations according to renewable energy availability, electricity market prices, battery conditions, and user mobility requirements. A multi-objective adaptive optimization algorithm is employed to simultaneously minimize electricity costs, battery degradation, peak demand, and carbon emissions while maximizing renewable energy utilization and grid stability. Various operational scenarios involving different EV penetration levels, renewable generation uncertainties, and dynamic electricity tariffs will be investigated to evaluate system robustness. The proposed framework is expected to improve overall energy efficiency, enhance grid flexibility, and increase economic benefits for both consumers and utility operators. The developed methodology provides a scalable and intelligent solution for future sustainable transportation and smart grid integration.
وزارة التعليم تعلن أسماء المرشحين للزمالة الدراسية المصرية
الأسماء:
https://mohesr.gov.iq/ar/assets/img/uploaded_files/05082026.pdf
الأسماء:
https://mohesr.gov.iq/ar/assets/img/uploaded_files/05082026.pdf
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