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Operational conditions optimization of a proposed solar-powered adsorption cooling system: Experimental, modeling, and optimization algorithm techniques

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  • Almohammadi, K.M.
  • Harby, K.

Abstract

Adsorption cooling systems have low energy efficiency and large sizes compared to traditional cooling systems and still have to be improved and optimized in order to become more competitive. The objective of this study is to enhance and optimize the performance of a solar powered adsorption cooling system (SDACS) by defining its optimal operating conditions. A multi-objective genetic algorithm (MOGA) combing a Kriging based response surface is employed to optimize the operating parameters. Eight operating parameters include hot, cooling, and chilled water temperatures and mass flow rates, and cycle and switching times are considered. An innovative SDACS with three axial finned tubes heat exchangers connected in parallel has been designed and tested. A non-equilibrium lumped parameter model has been developed to predict the system performance. Results from optimization algorithm and simulation are compared with those obtained experimentally and good agreements are obtained with ±10% maximum error. The proposed SDACS is able to produce about 0.56 kW (145 W kg−1) cooling power with a COP of about 0.52 at the rated operating conditions. The optimized operating conditions using MOGA improves the SCP by 51.7% and the system COP by 21% compared to the rated operating conditions at the same design parameters.

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  • Almohammadi, K.M. & Harby, K., 2020. "Operational conditions optimization of a proposed solar-powered adsorption cooling system: Experimental, modeling, and optimization algorithm techniques," Energy, Elsevier, vol. 206(C).
  • Handle: RePEc:eee:energy:v:206:y:2020:i:c:s0360544220311142
    DOI: 10.1016/j.energy.2020.118007
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    1. Verde, M. & Harby, K. & de Boer, Robert & Corberán, José M., 2016. "Performance evaluation of a waste-heat driven adsorption system for automotive air-conditioning: Part I – Modeling and experimental validation," Energy, Elsevier, vol. 116(P1), pages 526-538.
    2. Alsaman, Ahmed S. & Askalany, Ahmed A. & Harby, K. & Ahmed, Mahmoud S., 2017. "Performance evaluation of a solar-driven adsorption desalination-cooling system," Energy, Elsevier, vol. 128(C), pages 196-207.
    3. Perry, Simon & Klemeš, Jiří & Bulatov, Igor, 2008. "Integrating waste and renewable energy to reduce the carbon footprint of locally integrated energy sectors," Energy, Elsevier, vol. 33(10), pages 1489-1497.
    4. Saha, Bidyut B. & Boelman, Elisa C. & Kashiwagi, Takao, 1995. "Computational analysis of an advanced adsorption-refrigeration cycle," Energy, Elsevier, vol. 20(10), pages 983-994.
    5. Verde, M. & Harby, K. & de Boer, Robert & Corberán, José M., 2016. "Performance evaluation of a waste-heat driven adsorption system for automotive air-conditioning: Part II - Performance optimization under different real driving conditions," Energy, Elsevier, vol. 115(P1), pages 996-1009.
    6. Hassan, H.Z. & Mohamad, A.A., 2012. "A review on solar cold production through absorption technology," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(7), pages 5331-5348.
    7. Harby, K., 2017. "Hydrocarbons and their mixtures as alternatives to environmental unfriendly halogenated refrigerants: An updated overview," Renewable and Sustainable Energy Reviews, Elsevier, vol. 73(C), pages 1247-1264.
    8. Hamdy, Mohamed & Askalany, Ahmed A. & Harby, K. & Kora, Nader, 2015. "An overview on adsorption cooling systems powered by waste heat from internal combustion engine," Renewable and Sustainable Energy Reviews, Elsevier, vol. 51(C), pages 1223-1234.
    9. Harby, K. & Al-Amri, Fahad, 2019. "An investigation on energy savings of a split air-conditioning using different commercial cooling pad thicknesses and climatic conditions," Energy, Elsevier, vol. 182(C), pages 321-336.
    10. Yakowitz, S. J. & Szidarovszky, F., 1985. "A comparison of kriging with nonparametric regression methods," Journal of Multivariate Analysis, Elsevier, vol. 16(1), pages 21-53, February.
    11. Ramji, Harunal Rejan & Leo, Sing Lim & Abdullah, Mohammad Omar, 2014. "Parametric study and simulation of a heat-driven adsorber for air conditioning system employing activated carbon–methanol working pair," Applied Energy, Elsevier, vol. 113(C), pages 324-333.
    12. Harby, K. & Gebaly, Doaa R. & Koura, Nader S. & Hassan, Mohamed S., 2016. "Performance improvement of vapor compression cooling systems using evaporative condenser: An overview," Renewable and Sustainable Energy Reviews, Elsevier, vol. 58(C), pages 347-360.
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