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The performance analysis of a LCPV/T assisted absorption refrigeration system

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  • Heng, Zhang
  • Feipeng, Chen
  • Yang, Liu
  • Haiping, Chen
  • Kai, Liang
  • Boran, Yang

Abstract

This paper presents a investigation on the performance analysis of a novel low-concentrating photovoltaic/thermal (LCPV/T) assisted absorption refrigeration system. In this hybrid system, the lithium bromide absorption chiller is adopted to make use of the hot water from the LCPV/T modules for energy saving and higher system efficiency. A detailed mathematical model was proposed for analyzing quantitatively the performance of the novel LCPV/T assisted absorption refrigeration system. Specific experiments were conducted to analyze the influence of primary parameters on the refrigeration performance of the system, including inlet hot water temperature, cooling water flow and refrigerant water flow. The results show that the Coefficient of performance of the refrigeration system (COPx) and the refrigeration capacity of the hybrid system was correlated with the inlet temperature, cooling water flow, and refrigerant water flow. It is concluded that the average refrigerating capacity of the system is 7.20 kW, the average COPX is 0.52 and the average outlet cooling water temperature of the LiBr absorption chiller is 15 °C.

Suggested Citation

  • Heng, Zhang & Feipeng, Chen & Yang, Liu & Haiping, Chen & Kai, Liang & Boran, Yang, 2019. "The performance analysis of a LCPV/T assisted absorption refrigeration system," Renewable Energy, Elsevier, vol. 143(C), pages 1852-1864.
  • Handle: RePEc:eee:renene:v:143:y:2019:i:c:p:1852-1864
    DOI: 10.1016/j.renene.2019.05.128
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    References listed on IDEAS

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    1. Praene, Jean Philippe & Marc, Olivier & Lucas, Franck & Miranville, Frédéric, 2011. "Simulation and experimental investigation of solar absorption cooling system in Reunion Island," Applied Energy, Elsevier, vol. 88(3), pages 831-839, March.
    2. Tugba Gurler & Theo Elmer & Yuanlong Cui & Siddig Omer & Saffa Riffat, 2018. "Experimental investigation of a novel PVt/heat pump system for energy-efficient poultry houses," International Journal of Low-Carbon Technologies, Oxford University Press, vol. 13(4), pages 404-413.
    3. Haiping, Chen & Jiguang, Huang & Heng, Zhang & Kai, Liang & Haowen, Liu & Shuangyin, Liang, 2019. "Experimental investigation of a novel low concentrating photovoltaic/thermal–thermoelectric generator hybrid system," Energy, Elsevier, vol. 166(C), pages 83-95.
    4. Zhai, X.Q. & Qu, M. & Li, Yue. & Wang, R.Z., 2011. "A review for research and new design options of solar absorption cooling systems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 15(9), pages 4416-4423.
    5. Song, Mengjie & Gong, Guangcai & Mao, Ning & Deng, Shiming & Wang, Zhihua, 2017. "Experimental investigation on an air source heat pump unit with a three-circuit outdoor coil for its reverse cycle defrosting termination temperature," Applied Energy, Elsevier, vol. 204(C), pages 1388-1398.
    6. Zhang, Heng & Chen, Haiping & Han, Yuchen & Liu, Haowen & Li, Mingjie, 2017. "Experimental and simulation studies on a novel compound parabolic concentrator," Renewable Energy, Elsevier, vol. 113(C), pages 784-794.
    7. Chen, Haiping & Zhang, Heng & Li, Mingjie & Liu, Haowen & Huang, Jiguang, 2018. "Experimental investigation of a novel LCPV/T system with micro-channel heat pipe array," Renewable Energy, Elsevier, vol. 115(C), pages 773-782.
    8. Chow, T.T., 2010. "A review on photovoltaic/thermal hybrid solar technology," Applied Energy, Elsevier, vol. 87(2), pages 365-379, February.
    9. Jaruwongwittaya, Tawatchai & Chen, Guangming, 2010. "A review: Renewable energy with absorption chillers in Thailand," Renewable and Sustainable Energy Reviews, Elsevier, vol. 14(5), pages 1437-1444, June.
    10. Saeedi, F. & Sarhaddi, F. & Behzadmehr, A., 2015. "Optimization of a PV/T (photovoltaic/thermal) active solar still," Energy, Elsevier, vol. 87(C), pages 142-152.
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    2. Yang Liu & Han Yue & Na Wang & Heng Zhang & Haiping Chen, 2020. "Design and Transient Analysis of a Natural Gas-Assisted Solar LCPV/T Trigeneration System," Energies, MDPI, vol. 13(22), pages 1-24, November.

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