研究目的
To investigate the electrical performance of a Photovoltaic System (PV) with active fluid cooling (PVFC) in order to increase its efficiency in converting solar radiation into electricity.
研究成果
The three-dimensional theoretical and numerical investigation shows that a competitive mechanism exists between the power gain due to the reduction of the cell temperature and the power absorbed by the circulating pump; a best compromise, in terms of fluid flow rate, can be found. The optimum flow rate was calculated by using a semi-analytical approach, in which irradiance and ambient temperature of the site are known and the piping network losses are fully characterized.
研究不足
The study assumes steady-state conditions for heat transfer through the PV module, constant thermal conductivities of the layers, negligible thermal contact resistances at the interfaces, negligible cell thickness, and negligible solar absorptivities for the thermoplastic polyurethane (TPU) and polycarbonate (PC) layers. The working fluids are considered as incompressible.
1:Experimental Design and Method Selection:
The study involves a three-dimensional theoretical and numerical investigation of the electrical performance of a PV system with active fluid cooling. The methodology includes the development of a fully coupled thermal and electrical model in a three-dimensional geometry.
2:Sample Selection and Data Sources:
The PV system includes 20 modules cooled by a fluid circulating on the bottom, the piping network, and the circulating pump. Data sources include statistical data of the time evolution of irradiance and ambient temperature of a site.
3:List of Experimental Equipment and Materials:
The study uses ANSYS/FLUENT for simulations, which allows for the study of complicated geometries and solving thermo-fluid dynamic equations with customized source terms.
4:Experimental Procedures and Operational Workflow:
The thermal model was fully coupled with the electrical model, and the results were discussed with respect to the one-dimensional approximation and to experimental tests.
5:Data Analysis Methods:
The numerical procedure to evaluate electric performance, cell temperature, and energy source terms is iterative. When the steady-state solution is obtained, the model can calculate all of the hydraulic losses involved in the piping network.
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