研究目的
To numerically investigate an alternative renewable energy concept, the solar power plant with short diffuser (SPD), by more advanced computational fluid dynamics (CFD) model, focusing on the optimization of the guide vane topology for vortex genesis and stabilization.
研究成果
The study concluded that the optimized guide vane topology can effectively generate and stabilize a gravitational vortex at lower pressure potentials, suitable for compact SPD systems. The numerical model demonstrated accuracy in predicting vortex characteristics, indicating its utility for future design and implementation phases, including turbine integration.
研究不足
The study's limitations include the reliance on numerical simulations without physical experimental validation specific to the SPD concept, the use of a simplified turbulence model, and the need for further investigation into the impact of installing wind turbines on vortex stability.
1:Experimental Design and Method Selection:
The study utilized a two-equation turbulence model within a CFD framework to simulate the flow and vortex dynamics in the SPD concept. The methodology involved altering the guide vane topology to optimize vortex stability and minimize required pressure potential.
2:Sample Selection and Data Sources:
The study did not involve physical samples but relied on numerical simulations validated against available experimental data from other research groups.
3:List of Experimental Equipment and Materials:
The primary tool was ANSYS CFX v17.2 for CFD simulations, with geometry defined using ANSYS BladeModeler.
4:2 for CFD simulations, with geometry defined using ANSYS BladeModeler.
Experimental Procedures and Operational Workflow:
4. Experimental Procedures and Operational Workflow: The study involved setting up nine different guide vane configurations, simulating each to analyze vortex stability and velocity profiles, and comparing results with experimental data.
5:Data Analysis Methods:
The analysis focused on comparing normalized velocity and pressure profiles, swirl ratios, and heat transfer rates to validate the model against experimental findings.
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