研究目的
Investigating the development of ultrastable nanofluids for direct absorption solar collectors (DASCs) to address stability issues and optimize collector designs for enhanced performance.
研究成果
The development of ultrastable nanofluids through electrosteric stabilization (PEG + CIT) significantly enhances the performance and reliability of low-flux DASCs. The optimized collector designs, achieved through computational modeling and GPS algorithm, demonstrate the potential for practical applications by maximizing thermal power gain and minimizing nanoparticle loading.
研究不足
The study focuses on gold nanoparticles and their stabilization techniques, which may not be directly applicable to other types of nanoparticles or base fluids. The long-term stability under field conditions beyond 16 months was not investigated.
1:Experimental Design and Method Selection:
The study involved the synthesis of citrate- (CIT-) and polyethylene glycol-coated (PEG-) gold nanoparticles to achieve broadband photothermal absorption without free surfactants. The nanofluids were subjected to long-term ambient storage, high particle concentrations, and incremental heating to analyze their stability and utility in DASCs.
2:Sample Selection and Data Sources:
Aqueous nanoparticle samples were prepared and characterized using UV–Vis spectroscopy, dynamic light scattering (DLS), and scanning transmission electron microscopy (STEM).
3:List of Experimental Equipment and Materials:
Chemicals used included gold chloride trihydrate, trisodium citrate dihydrate, and polyethylene glycol methyl ether thiol. Equipment included a Lambda 1050 UV–Vis plus DRS instrument, Zetasizer Nano ZSP, and JEOL 7610F scanning electron microscope.
4:Experimental Procedures and Operational Workflow:
Nanofluids were synthesized, characterized, and subjected to stability tests under various conditions. Optical properties were measured and fed into a DASC optimization model.
5:Data Analysis Methods:
The study utilized a constrained generalized pattern search (GPS) algorithm for optimization, focusing on maximizing thermal power-gain and minimizing nanoparticle mass loading while maintaining a collector temperature-gain target.
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