Concentrated solar light splitting using cold mirrors for photovoltaics and photonic hydrogen production applications

被引:25
作者
Bicer, Yusuf [1 ]
Sprotte, Andre Felipe Vitorio [1 ]
Dincer, Ibrahim [1 ]
机构
[1] Univ Ontario, Inst Technol, Fac Engn & Appl Sci, Clean Energy Res Lab, 2000 Simcoe St North, Oshawa, ON L1H 7K4, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Solar energy; Efficiency; Photovoltaics; Concentrated light; Hydrogen; Spectrum; PRODUCTION SYSTEM; PV/T COLLECTOR; SPECTRUM; BEAM; MANAGEMENT; RECEIVER; IMPACT; MODEL;
D O I
10.1016/j.apenergy.2017.04.009
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In this study, an experimental setup is constructed to investigate the utilization of solar light splitting mirrors in photovoltaic (PV) cell and photonic hydrogen production applications by varying the solar light intensity on the system components. In the experimental setup, the solar rays are split to be used by PV cells using six cold mirrors, and Fresnel lens are employed to concentrate the light for utilization. The experimental unit is modeled using the equivalent circuit diagram of the PV cell, and the results provided by the model are then compared with the ones obtained from the experiments. The PV module conversion efficiencies are comparatively illustrated for concentrated light and non-concentrated light together with and without solar light splitting. The lower wavelength of the spectrum is directed to a photoelectrochemical hydrogen production reactor which uses a copper oxide photocathode. It is derived from the results that, although solar light splitting significantly decreases the portion of wavelengths received by the PV panel, the total generated power can be increased or kept at same levels by concentrating the sun rays. The power output from the measured PV module increases to 6.75 W from 3.50 W, which yields a considerable rise in the efficiency from 6.7% to 13.2% under the concentrated and divided light spectrum, while approximately 19% of the entire spectrum energy is received by the PV module. The power obtained from the PV module is used electrify the PEM electrolyzer for further hydrogen production. The temperature levels on the surface of the PV panel reach considerably high values corresponding to approximately 125 degrees C in some cases for a conventional PV module which then reduce the long-term stability of power generation. This is a challenge and requires cooling, utilization of high-temperature resistant materials in the PV module design, or employment of PVIT panels where the heat is extracted as a useful output or supplied to the PEM electrolyzes for heating the water before its disassociation which helps improve the performance. (C) 2017 Elsevier Ltd. All rights reserved.
引用
收藏
页码:169 / 182
页数:14
相关论文
共 32 条
  • [1] Experimental investigation of a concentrating PV/T collector with Cu9S5 nanofluid spectral splitting filter
    An, Wei
    Wu, Jinrui
    Zhu, Tong
    Zhu, Qunzhi
    [J]. APPLIED ENERGY, 2016, 184 : 197 - 206
  • [2] Barbir F., 2013, PEM Fuel Cells: Theory and Practice
  • [3] Baum G. N., 2009, TECHNOECONOMIC ANAL
  • [4] Bicer Y, 2017, CHEM ENG PROCESS PRO
  • [5] Experimental investigation of a PV-Coupled photoelectrochemical hydrogen production system
    Bicer, Yusuf
    Dincer, Ibrahim
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2017, 42 (04) : 2512 - 2521
  • [6] Chiras D., 2009, Power from the sun-achieving energy independence
  • [7] Spectral splitting strategy and optical model for the development of a concentrating hybrid PV/T collector
    Crisostomo, Felipe
    Taylor, Robert A.
    Surjadi, Desiree
    Mojiri, Ahmad
    Rosengarten, Gary
    Hawkes, Evart R.
    [J]. APPLIED ENERGY, 2015, 141 : 238 - 246
  • [8] The effect of spectral variations on the performance parameters of single and double junction amorphous silicon solar cells
    Gottschalg, R
    Betts, TR
    Infield, DG
    Kearney, MJ
    [J]. SOLAR ENERGY MATERIALS AND SOLAR CELLS, 2005, 85 (03) : 415 - 428
  • [9] Gueymard C.A., 1995, Smarts, a simple model of the atmospheric radiative transfer of sunshine: Algorithms and performance assessment
  • [10] Parameterized transmittance model for direct beam and circumsolar spectral irradiance
    Gueymard, CA
    [J]. SOLAR ENERGY, 2001, 71 (05) : 325 - 346