Flat-Plate Solar Collector Thermal Performance and Optimal Operation Mode by Exergy Analysis and Numerical Simulation

被引:0
作者
Yemeli Wenceslas Koholé
Fodoup Cyrille Vincelas Fohagui
Ghislain Tchuen
机构
[1] University of Dschang,Department of Energetic, Environment and Thermal Engineering, IUT
[2] University of Dschang,FV Bandjoun, UR
来源
Arabian Journal for Science and Engineering | 2021年 / 46卷
关键词
Flat-plate collector; Energy; Exergy destruction; Exergy efficiency; Simulation;
D O I
暂无
中图分类号
学科分类号
摘要
In this paper, the effect of a flat-plate solar collector components exergy destruction rates on the collector performance has been examined. A theoretical model based on energy and exergy balance for glass cover, absorber plate and working fluid resulted in nonlinear ordinary differentials non-autonomous system of equations that was solved numerically. Upon verification of the accuracy of the proposed model with experimental data, the effect of parameters such as solar radiation, mass flow rate, inlet fluid temperature and insulation thickness on the exergy destruction rates and exergy efficiency has been investigated. The model was used to optimize parameters, such as inlet fluid temperature, mass flow rate and number of collector tube. The results reveal that the highest exergy destruction rate occurs in the absorber plate, which is 79.23% of the total exergy destruction rate. Increasing the mass flow rate to 0.0087 kg/s leads to a decrease in the absorber plate exergy destruction rate to a minimum value of 575.74 W/m2 and to an increase in the exergy efficiency to a maximum value of 21.97%. When the inlet fluid temperature increases from 20 to 50 °C, the absorber plate exergy destruction rate reduces from 676.66 to 438.40 W/m2 resulting in a significant increase in the collector exergy efficiency from 6.80 to 37.86%. The optimum operating condition was found to be 37 °C for the inlet fluid temperature, 0.0087 kg/s for mass flow rate and fifteen for the number of tubes.
引用
收藏
页码:1877 / 1897
页数:20
相关论文
共 92 条
  • [11] Sarhaddi F(2019) nanofluid, and CuO nanofluid Sol. Energy 160 103-542
  • [12] Ajam H(2018)Effect analysis on energetic, exergetic and financial performance of a flat plate collector with heat pipes Sol. Energy 174 534-241
  • [13] Luminosu I(2019)Modelling of a flat-plate solar collector using artificial neural networks for different working fluid (water) flow rates Energy 167 231-409
  • [14] Fara L(2018)Analog model of dynamics of a flat-plate solar collector Sol. Energy 118 397-669
  • [15] Allouhi A(2017)Parametric analysis on the performance of flat plate collector with transparent insulation material Int. J. Therm. Sci. 114 655-137
  • [16] Amine MB(2017)Performance analysis of hybrid nanofluids in flat plate solar collector as an advanced working fluid Renew. Energy 56 106-63
  • [17] Buker MS(2016)Thermal-hydraulic characteristics and exergy performance in tube-on-sheet flat plate solar collectors: effects of nanofluids and mixed convection Prog. Energy Combust. Sci. 56 55-202
  • [18] Kousksou T(2013)Exergy and energy analysis of a novel type solar collector under steady state condition: experimental and CFD analysis Renew. Energy 117 192-448
  • [19] Jamil A(2015)Exergy analysis of solar thermal collectors and processes Sol. Energy 14 442-963
  • [20] Sakhaei SA(2017)Energetic and exergetic evaluation of flat plate solar collectors Int. J. Green Energy 141 041003-193