Synchronous steam generation and heat collection in a broadband Ag@TiO2 core-shell nanoparticle-based receiver

被引:79
|
作者
Li, Haoran [1 ]
He, Yurong [1 ]
Liu, Ziyu [1 ]
Huang, Yimin [1 ]
Jiang, Baocheng [1 ]
机构
[1] Harbin Inst Technol, Sch Energy Sci & Engn, Harbin 150001, Heilongjiang, Peoples R China
基金
中国国家自然科学基金;
关键词
Steam generation; Heat capture; Ag@TiO2 nanofluids; Solar energy harvesting; PARABOLIC TROUGH COLLECTOR; DIRECT VAPOR GENERATION; WORKING FLUID; SOLAR; NANOFLUID; PERFORMANCE; ENHANCEMENT; WATER; SCATTERING; EFFICIENCY;
D O I
10.1016/j.applthermaleng.2017.04.102
中图分类号
O414.1 [热力学];
学科分类号
摘要
Research in collection and conversion of solar energy has attracted an increasing interest because of the fact that conventional energy resources are becoming increasingly exhausted. For this reason, Ag@TiO2 core-shell nanoparticles (NPs) with great absorptivity in the visible region were synthesized in this work. Subsequently, an experimental study on photo-thermal performances including steam generation and solar energy capture in a thermal receiver containing the Ag@TiO2 NPs-based nanofluids was conducted. The effects of the NP concentration as well as the optical concentration were taken into consideration. The results showed that the nanofluids can be used for direct steam generation with a short period of solar irradiation time, even at the illumination intensity of 1 sun (1 sun = 1 kW/m(2)). An evaporation efficiency of 53.6% can be achieved when the NP concentration is only 200 ppm owing to local heating induced by the surface plasmon resonance of the NPs. In addition, it is found that the nanofluid with a lower NP concentration has a higher temperature rise during illumination. Our findings also showed that the absorbed solar energy is transferred preferentially into latent heat enthalpy and consumed for steam generation instead of heating the nanofluids. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:617 / 627
页数:11
相关论文
共 50 条
  • [1] Rapid synthesis of broadband Ag@TiO2 core-shell nanoparticles for solar energy conversion
    Li, Haoran
    He, Yurong
    Liu, Ziyu
    Jiang, Baocheng
    Huang, Yimin
    SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2017, 166 : 52 - 60
  • [2] Dielectric performance of polymer-based composites containing core-shell Ag@TiO2 nanoparticle fillers
    Liang, Fei
    Zhang, Lu
    Lu, Wen-Zhong
    Wan, Qian-Xing
    Fan, Gui-Fen
    APPLIED PHYSICS LETTERS, 2016, 108 (07)
  • [3] Nonpolar Resistive Switching in Ag@TiO2 Core-Shell Nanowires
    Manning, Hugh G.
    Biswas, Subhajit
    Holmes, Justin D.
    Boland, John J.
    ACS APPLIED MATERIALS & INTERFACES, 2017, 9 (44) : 38959 - 38966
  • [4] Steam generation in a nanoparticle-based solar receiver
    Jin, Haichuan
    Lin, Guiping
    Bai, Lizhan
    Zeiny, Aimen
    Wen, Dongsheng
    NANO ENERGY, 2016, 28 : 397 - 406
  • [5] Synthesis and Characterization of Ag@TiO2 Core-shell Nanoparticles and TiO2 Nanobubbles
    Lianmeng Zhang
    Daxue Xia
    Qiang Shen
    Journal of Nanoparticle Research, 2006, 8 : 23 - 28
  • [6] Optical Properties of Ag@TiO2 and CdS@TiO2 Core-Shell Nanostructures
    Vaidya, Sonalika
    Patra, Amitava
    Ganguli, Ashok K.
    SCIENCE OF ADVANCED MATERIALS, 2012, 4 (5-6) : 631 - 636
  • [7] Synthesis and characterization of Ag@TiO2 core-shell nanoparticles and TiO2 nanobubbles
    Zhang, Lianmeng
    Xia, Daxue
    Shen, Qiang
    JOURNAL OF NANOPARTICLE RESEARCH, 2006, 8 (01) : 23 - 28
  • [8] Effect of Core-Shell Ag@TiO2 Volume Ratio on Characteristics of TiO2-Based DSSCs
    Chang, Ho
    Chen, Chih-Hao
    Kao, Mu-Jung
    Hsiao, Hsin-Han
    JOURNAL OF NANOMATERIALS, 2014, 2014
  • [9] Catalysis of redox reactions by Ag@TiO2 and Fe3+-doped Ag@TiO2 core-shell type nanoparticles
    Wang, Wenjiao
    Zhang, Jinlong
    Chen, Feng
    Anpo, Masakazu
    He, Dannong
    RESEARCH ON CHEMICAL INTERMEDIATES, 2010, 36 (02) : 163 - 172
  • [10] Study of the role of metal core on the thermal behavior of Ag@TiO2 core-shell nanoparticles
    Banerjee, D.
    Das, S. K.
    JOURNAL OF RADIOANALYTICAL AND NUCLEAR CHEMISTRY, 2014, 300 (01) : 99 - 105