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Numerical simulation on the LSPR-effective core-shell copper/graphene nanofluids

机译:LSPR-有效核壳铜/石墨烯纳米流体的数值模拟

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摘要

Nanofluids, involving nanoparticles of the effective localized surface plasmon resonance (LSPR), exhibit the great enhancement in the light absorption and the heat transfer which activates many technological applications, especially covering solar thermal harvesting and photothermal therapy. In this paper, a numerical simulation method integrating classic electromagnetic wave optics, multiparticle group theory, heat transport and the Lambert-Beer's law was for the first time established via the finite element (FEM) method based on the COMSOL Multiphysics platform. The simulated optical and photothermal properties of both individual nanoparticle and its corresponding nanofluid revealed excellent LSPR-effectiveness in a variety of core-shell structured nano particles, and the simulation was verified by direct theoretical solution based on the Mie scattering and openly-sourced experiment results. Among of them, a core-shell structure nanoparticle with the copper core in diameter of 90 nm coated with 5 nm thickness graphene was found to be the most economical and effective in the photothermal performance within the solar spectrum. The photothermal performances of two-particle and eight particle models revealed that highly dispersed nanoparticles were more conducive to the overall temperature rise. The synergistic effect of LSPR-effective nanoparticles and far-IR absorption effective base solution enhanced the photothermal performance of nanofluids corresponding to copper/graphene core-shell nanoparticles. This research provided an efficient method to screen advanced LSRP-effective nanoparticle candidates and optimize the photothermal conversion of nanofluids for solar energy harvest.
机译:纳米流体涉及有效局部表面等离子体共振(LSPR)的纳米颗粒,在光吸收和热传递中表现出激活许多技术应用的热量,特别是覆盖太阳能热收集和光热疗法。本文综述了经典电磁波光学,多粒子群理论,热传输和Lambert-Beer定律的数值模拟方法是通过基于COMSOL Multiphysics平台的有限元(FEM)方法建立的第一次。单独纳米颗粒的模拟光学和光热性质及其相应的纳米流体显示出各种核壳结构纳米颗粒中的优异LSP效应,并通过基于MIE散射和公开的实验结果进行了直接理论溶液验证了模拟。其中,发现具有铜芯的核 - 壳结构纳米颗粒,其直径为90nm,涂覆有5nm厚的石墨烯,是太阳光谱内的光热性能最经济和有效。两种粒子和八种粒子模型的光热性能显示出高度分散的纳米颗粒更有利于整体温度升高。 LSPR-有效的纳米粒子和FAR-IR吸收有效碱溶液的协同作用提高了对应于铜/石墨烯核 - 壳纳米粒子的纳米流体的光热性能。本研究提供了一种有效的方法,可筛选先进的LSRP有效的纳米粒子候选物,并优化纳米流体的光热转化为太阳能收获。

著录项

  • 来源
    《Solar Energy》 |2019年第3期|439-451|共13页
  • 作者单位

    Western Kentucky Univ Dept Chem Inst Combust Sci & Environm Technol Bowling Green KY 42101 USA|Zhengzhou Univ Key Lab Proc Heat Transfer & Energy Saving Henan Zhengzhou 450002 Henan Peoples R China;

    Western Kentucky Univ Dept Chem Inst Combust Sci & Environm Technol Bowling Green KY 42101 USA|Zhengzhou Univ Key Lab Proc Heat Transfer & Energy Saving Henan Zhengzhou 450002 Henan Peoples R China;

    Western Kentucky Univ Dept Chem Inst Combust Sci & Environm Technol Bowling Green KY 42101 USA|Hangzhou Normal Univ Dept Phys Hangzhou 311121 Zhejiang Peoples R China;

    Western Kentucky Univ Dept Chem Inst Combust Sci & Environm Technol Bowling Green KY 42101 USA|Anhui Univ Coll Chem & Chem Engn Hefei 230601 Anhui Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Nanofluids; Core-shell nanoparticles; Copper; Graphene; Photothermal properties; Simulation;

    机译:纳米流体;核 - 壳纳米粒子;铜;石墨烯;光热性质;模拟;

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