To accomplish this objective, the implementation of wind–solar–storage microgrid model becomes particularly crucial, boasting advantages such as environmental friendliness, reduced reliance on fossil fuels, and enhanced utilization efficiency of renewable energy.
The system energy optimization in this strategy is achieved through a time-segmented dynamic regulation mechanism and the specific workflow is structured as follows: Initial wind–solar–storage power values are collected in real-time and dynamically matched with user load demands for supply-demand analysis.
This computational approach enabled the determination of an optimal scheme for the coordinated operation of wind, solar, and storage components within the integrated energy system.
The proposed strategy offers practical guidance for short-term dispatch operations in wind–solar–storage microgrids while informing future research directions, particularly in further improving the economic optimization scheduling model, considering the impact of factors such as weather changes and labor costs.
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