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◆ IEEE Transactions on Smart Grid2025-10-03· Renewable energy

Multi-Time-Domain Hierarchical Scheduling of Integrated Energy Systems With Frequency Decomposition Considering Large-Scale Grid Connection of Electric Vehicles

Zhifeng Liu, Zeqi Li, Xiaolong Jin, Hongjie Jia

原始摘要(英文原文)· Original abstract
Amid global decarbonization efforts, Integrated Energy Systems (IES) face critical challenges from the inherent uncertainties of high-penetration renewable energy sources and the large-scale, potentially disorderly integration of Electric Vehicles (EVs), leading to significant supply-demand imbalances and system volatility. Existing approaches struggle to effectively coordinate diverse device response times and capture complex EV user behavior. To address these, this paper proposes a multi-time domain control model-driven bi-level optimization framework for Integrated Energy Systems. The upper level employs a multi-objective intelligent algorithm to generate Pareto-optimal solutions balancing economic costs and environmental impacts. The lower level implements a singular perturbation theory-based multi-time domain control model, dynamically partitioning devices into fast/slow subsystems for differentiated scheduling, significantly enhancing resilience against uncertainties. Additionally, a prospect theory-driven EV dynamic charging response model accurately incorporates user psychology (e.g., loss aversion) to guide orderly charging via price incentives. Furthermore, a Fourier-based power decoupling strategy for hybrid storage (LIB-SC) reduces battery degradation by 28.7%. Case studies demonstrate superior performance: a 12.2% reduction in economic costs, an 11.5% reduction in emissions, and robustly maintained system volatility below 5% under extreme uncertainties, showcasing significant advancements in balancing economic-environmental objectives while accommodating high renewable and EV penetration.
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