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Learning operational compatibility in distribution networks under multi-step renewable dynamics
Lujie Qi1, Zhao Li2, Kexin Wang1
1State Grid Shandong Electric Power Company Economic and Technical Research Institute, Jinan, 250021, Shandong, China.
Scientific Reports
|July 16, 2026
Summary
This study introduces a learning-based framework to assess the operational compatibility of power grids with high renewable energy. The model rapidly and accurately predicts grid stability under fluctuating renewable generation.
Area of Science:
- Electrical Engineering
- Power Systems
- Artificial Intelligence
Background:
- High renewable energy penetration causes operational challenges in power distribution networks.
- Traditional optimization methods struggle with real-time feasibility assessment due to rapid variability and uncertainty.
Purpose of the Study:
- To develop a learning-based framework for assessing operational compatibility under multi-step renewable dynamics.
- To enable real-time feasibility assessment for power distribution networks with high renewable penetration.
Main Methods:
- A compatibility learning model was constructed, mapping system states and renewable forecasts to a probabilistic compatibility score.
- A Multi-Step renewable dynamics representation was introduced to capture correlated variability across forecasting intervals.
- The learning architecture integrated network information and operational features to approximate the feasible operating manifold.
Main Results:
- The framework correctly identified feasible operating conditions in approximately 94.6% of scenarios.
- Feasibility evaluation time was reduced by over 82% compared to conventional methods.
- Compatibility prediction accuracy exceeded 90% even under severe renewable fluctuation conditions.
Conclusions:
- The proposed learning-based framework enhances the ability to rapidly filter infeasible dispatch candidates.
- It allows for secure network operation across multiple forecast horizons despite renewable energy uncertainty.
- This approach offers a computationally efficient solution for real-time operational compatibility assessment in modern power grids.
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