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Energy and exergy analysis of different solar air collector systems with forced convection

Author

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  • Bahrehmand, D.
  • Ameri, M.
  • Gholampour, M.

Abstract

In this study, a mathematical model is developed for simulating the thermal behavior of single and two-glass cover solar air collector systems with forced convection flow. In order to model collectors, energy balance equations are analytically derived and solved. Comparison of present work results with the results of other researchers shows a good agreement. Using energy and exergy analysis, influence of effective parameters such as depth, length, fin shape, and Re number is presented. The results indicate that the systems with fin and thin metal sheet (TMS) are more efficient than other studied systems from the energy and exergy efficiency standpoints. It is found that the value of exergy efficiency for the systems with TMS and double glass covers at very high Re numbers (Re>22,000) is negative. In terms of energy and exergy performance, the obtained results would be useful to select the most efficient system and determine design parameters such as Re number, channel depth, and collector length.

Suggested Citation

  • Bahrehmand, D. & Ameri, M. & Gholampour, M., 2015. "Energy and exergy analysis of different solar air collector systems with forced convection," Renewable Energy, Elsevier, vol. 83(C), pages 1119-1130.
  • Handle: RePEc:eee:renene:v:83:y:2015:i:c:p:1119-1130
    DOI: 10.1016/j.renene.2015.03.009
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    References listed on IDEAS

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    1. Sun, Wei & Ji, Jie & He, Wei, 2010. "Influence of channel depth on the performance of solar air heaters," Energy, Elsevier, vol. 35(10), pages 4201-4207.
    2. Gupta, M.K. & Kaushik, S.C., 2009. "Performance evaluation of solar air heater for various artificial roughness geometries based on energy, effective and exergy efficiencies," Renewable Energy, Elsevier, vol. 34(3), pages 465-476.
    3. Bazilian, Morgan D. & Prasad, Deo, 2002. "Modelling of a photovoltaic heat recovery system and its role in a design decision support tool for building professionals," Renewable Energy, Elsevier, vol. 27(1), pages 57-68.
    4. Alta, Deniz & Bilgili, Emin & Ertekin, C. & Yaldiz, Osman, 2010. "Experimental investigation of three different solar air heaters: Energy and exergy analyses," Applied Energy, Elsevier, vol. 87(10), pages 2953-2973, October.
    5. Ramadan, M.R.I. & El-Sebaii, A.A. & Aboul-Enein, S. & El-Bialy, E., 2007. "Thermal performance of a packed bed double-pass solar air heater," Energy, Elsevier, vol. 32(8), pages 1524-1535.
    6. Bhagoria, J.L & Saini, J.S & Solanki, S.C, 2002. "Heat transfer coefficient and friction factor correlations for rectangular solar air heater duct having transverse wedge shaped rib roughness on the absorber plate," Renewable Energy, Elsevier, vol. 25(3), pages 341-369.
    7. Bahrehmand, D. & Ameri, M., 2015. "Energy and exergy analysis of different solar air collector systems with natural convection," Renewable Energy, Elsevier, vol. 74(C), pages 357-368.
    8. Singh, Sukhmeet & Chander, Subhash & Saini, J.S., 2012. "Exergy based analysis of solar air heater having discrete V-down rib roughness on absorber plate," Energy, Elsevier, vol. 37(1), pages 749-758.
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