研究目的
To evaluate the feasibility of a Compressed Air Energy Storage system coupled to a photovoltaic plant and a building that represents a reduced power demand.
研究成果
The model developed demonstrates the feasibility of a small power compressed air storage system working under instantaneous operation and powered by a photovoltaic field. The optimal design maximizes the use of the PV production and minimizes the contribution of the grid, with an autonomy increase of about 35%.
研究不足
The storage efficiency of the system remains a bit low when compared to values found in the literature, ranging between 40 and 65%.
1:Experimental Design and Method Selection:
The study involves simulating a storage system based on compressed air acting as a battery system, including a photovoltaic power plant, an air compression system, a storage vessel, an expansion module, a power grid, and a building.
2:Sample Selection and Data Sources:
Climate data such as ambient temperature and global solar irradiation, and the load curve of a building or group of buildings are used.
3:List of Experimental Equipment and Materials:
The system includes a photovoltaic power plant, air compression system, storage vessel, expansion module, power grid, and building.
4:Experimental Procedures and Operational Workflow:
The model reflects the instant behavior of the system, with air stored at high pressure during periods of abundant energy and expanded through an air turbine during high demand periods.
5:Data Analysis Methods:
A sensitivity analysis of key parameters is performed to optimize the system, focusing on the size of each component.
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