Optical and Transport Properties of Metal-Oil Nanofluids for Thermal Solar Industry: Experimental Characterization, Performance Assessment, and Molecular Dynamics Insights

被引:12
作者
Carrillo-Berdugo, Ivan [1 ]
Estelle, Patrice [2 ]
Sani, Elisa [3 ]
Mercatelli, Luca [3 ]
Grau-Crespo, Ricardo [4 ]
Zorrilla, David [1 ]
Navas, Javier [1 ]
机构
[1] Univ Cadiz, Fac Ciencias, Dept Quim Fis, E-11510 Cadiz, Spain
[2] Univ Rennes, LGCGM, F-35000 Rennes, France
[3] CNR, INO Natl Inst Opt, I-150125 Florence, Italy
[4] Univ Reading, Dept Chem, Reading RG6 6DX, Berks, England
基金
英国工程与自然科学研究理事会;
关键词
nanofluids; concentrated solar power; thermal performance; molecular dynamics; sunlight extinction; IRREVERSIBLE-PROCESSES; INTERFACIAL LAYERS; CONDUCTIVITY; TEMPERATURE; STABILITY; CONSTANTS; FLUIDS; MODEL;
D O I
10.1021/acssuschemeng.1c00053
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Concentrating solar power (CSP) technology can become a very valuable contributor to the transformation and decarbonization of our energy landscape, but for this technology to overcome the barrier toward market deployment, significant enhancements in the solar-to-thermal-to-electric energy conversion efficiency are needed. Here, an in-depth experimental analysis of the optical and transport properties of Pd-containing aromatic oil-based nanofluids is presented, with promising results for their prospective use as volumetric absorbers and heat transfer fluids in next-generation parabolic-trough CSP plants. A 0.030 wt % concentration of Pd nanoplates increases sunlight extinction by 90% after 20 mm propagation length and thermal conductivity by 23.5% at 373 K, which is enough to increase the overall system efficiency up to 45.3% and to reduce pumping requirements by 20%, with minimum increases in the collector length. In addition to that, molecular dynamics simulations are used to gain atomistic-level insights about the heat and momentum transfer in these nanofluids, with a focus on the role played by the solid-liquid interface in these phenomena. Molecules chemisorbed at the interface behave as a shelter-like boundary that hinders heat conduction, as a high thermal resistance path, and minimizes the impact of the solid on dynamic viscosity, as it weakens the interactions between the nanoplate and the surrounding nonadsorbed fluid molecules.
引用
收藏
页码:4194 / 4205
页数:12
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