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Investigation of binary, ternary and quaternary mixtures across solution heat exchanger used in absorption refrigeration and process modifications to improve cycle performance

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  • Kadam, Sambhaji T.
  • Gkouletsos, Dimitris
  • Hassan, Ibrahim
  • Rahman, Mohammad Azizur
  • Kyriakides, Alexios-Spyridon
  • Papadopoulos, Athanasios I.
  • Seferlis, Panos

Abstract

One area of vital importance in the field of absorption refrigeration (ABR) is the search of alternative combinations of refrigerant/absorbent pairs that can enhance its performance relatively to the widely used H2O-NH3 or H2O-LiBr. In this work, three binary (H2O-LiBr, H2O-LiCl, H2O-LiI), three ternary (H2O-LiBr + LiI, H2O-LiBr + C2H6O2, H2O-LiBr + LiCl) and four quaternary (H2O-LiBr + LiCl + ZnCl2, H2O-LiBr + ZnCl2+CaBr2, H2O-LiBr + ZnBr2+LiCl, H2O-LiBr + LiI + C2H6O2) mixtures of refrigerant/absorbent are tested to investigate heat transfer and pressure drop characteristics across the solution heat exchanger used in ABR systems. Subsequently, seven different single effect absorption cooling flowsheet configurations are explored to assess the potential for exploitation of the generated results at the cycle level. The effects of the concentrations of the absorbent in the mixture of refrigerant/absorbent on heat transfer and pressure drop characteristics are addressed. As a result, H2O-LiI, H2O-LiBr + LiI and H2O-LiBr + ZnCl2+CaBr2 shows higher heat transfer coefficient and lower pressure drop among the tested binary, ternary and quaternary mixtures respectively. Furthermore, it is concluded that with increase in mass fraction of the absorbent in the mixture, the heat transfer coefficient is decreased. A process configuration with part of the refrigerant mixed with the strong solution through an ejector, prior to the solution heat exchanger, is found to exhibit highest coefficient of performance.

Suggested Citation

  • Kadam, Sambhaji T. & Gkouletsos, Dimitris & Hassan, Ibrahim & Rahman, Mohammad Azizur & Kyriakides, Alexios-Spyridon & Papadopoulos, Athanasios I. & Seferlis, Panos, 2020. "Investigation of binary, ternary and quaternary mixtures across solution heat exchanger used in absorption refrigeration and process modifications to improve cycle performance," Energy, Elsevier, vol. 198(C).
  • Handle: RePEc:eee:energy:v:198:y:2020:i:c:s0360544220303613
    DOI: 10.1016/j.energy.2020.117254
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    1. Querol, E. & Gonzalez-Regueral, B. & Ramos, A. & Perez-Benedito, J.L., 2011. "Novel application for exergy and thermoeconomic analysis of processes simulated with Aspen Plus®," Energy, Elsevier, vol. 36(2), pages 964-974.
    2. Srikhirin, Pongsid & Aphornratana, Satha & Chungpaibulpatana, Supachart, 2001. "A review of absorption refrigeration technologies," Renewable and Sustainable Energy Reviews, Elsevier, vol. 5(4), pages 343-372, December.
    3. Somers, C. & Mortazavi, A. & Hwang, Y. & Radermacher, R. & Rodgers, P. & Al-Hashimi, S., 2011. "Modeling water/lithium bromide absorption chillers in ASPEN Plus," Applied Energy, Elsevier, vol. 88(11), pages 4197-4205.
    4. Gkouletsos, Dimitris & Papadopoulos, Athanasios I. & Seferlis, Panos & Hassan, Ibrahim, 2019. "Systematic modeling under uncertainty of single, double and triple effect absorption refrigeration processes," Energy, Elsevier, vol. 183(C), pages 262-278.
    5. Yiqun Li & Na Li & Chunhuan Luo & Qingquan Su, 2019. "Thermodynamic Performance of a Double-Effect Absorption Refrigeration Cycle Based on a Ternary Working Pair: Lithium Bromide + Ionic Liquids + Water," Energies, MDPI, vol. 12(21), pages 1-21, November.
    6. Arshi Banu, P.S. & Sudharsan, N.M., 2018. "Review of water based vapour absorption cooling systems using thermodynamic analysis," Renewable and Sustainable Energy Reviews, Elsevier, vol. 82(P3), pages 3750-3761.
    7. Moreno, Daniel & Ferro, Víctor R. & de Riva, Juan & Santiago, Rubén & Moya, Cristian & Larriba, Marcos & Palomar, José, 2018. "Absorption refrigeration cycles based on ionic liquids: Refrigerant/absorbent selection by thermodynamic and process analysis," Applied Energy, Elsevier, vol. 213(C), pages 179-194.
    8. Mansouri, Rami & Boukholda, Ismail & Bourouis, Mahmoud & Bellagi, Ahmed, 2015. "Modelling and testing the performance of a commercial ammonia/water absorption chiller using Aspen-Plus platform," Energy, Elsevier, vol. 93(P2), pages 2374-2383.
    9. Du, S. & Wang, R.Z. & Xia, Z.Z., 2014. "Optimal ammonia water absorption refrigeration cycle with maximum internal heat recovery derived from pinch technology," Energy, Elsevier, vol. 68(C), pages 862-869.
    10. Sun, Jian & Fu, Lin & Zhang, Shigang, 2012. "A review of working fluids of absorption cycles," Renewable and Sustainable Energy Reviews, Elsevier, vol. 16(4), pages 1899-1906.
    11. Abed, Azher M. & Alghoul, M.A. & Sopian, K. & Majdi, Hasan Sh. & Al-Shamani, Ali Najah & Muftah, A.F., 2017. "Enhancement aspects of single stage absorption cooling cycle: A detailed review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 77(C), pages 1010-1045.
    12. Papadopoulos, Athanasios I. & Kyriakides, Alexios-Spyridon & Seferlis, Panos & Hassan, Ibrahim, 2019. "Absorption refrigeration processes with organic working fluid mixtures- a review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 109(C), pages 239-270.
    13. Song, Joo Young & Lee, Jae Won & Kang, Yong Tae, 2019. "Comparisons of Nu correlations for H2O/LiBr solution in plate heat exchanger for triple effect absorption chiller application," Energy, Elsevier, vol. 172(C), pages 852-860.
    14. Chen, X. & Wang, R.Z. & Du, S., 2017. "Heat integration of ammonia-water absorption refrigeration system through heat-exchanger network analysis," Energy, Elsevier, vol. 141(C), pages 1585-1599.
    15. Kaushal, Priyanka & Tyagi, Rakesh, 2017. "Advanced simulation of biomass gasification in a fluidized bed reactor using ASPEN PLUS," Renewable Energy, Elsevier, vol. 101(C), pages 629-636.
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    1. Kadam, Sambhaji T. & Kyriakides, Alexios-Spyridon & Khan, Muhammad Saad & Shehabi, Mohammad & Papadopoulos, Athanasios I. & Hassan, Ibrahim & Rahman, Mohammad Azizur & Seferlis, Panos, 2022. "Thermo-economic and environmental assessment of hybrid vapor compression-absorption refrigeration systems for district cooling," Energy, Elsevier, vol. 243(C).
    2. Ma, Hongqiang & Liang, Nuo & Liu, Yemin & Luo, Xinmei & Hou, Caiqin & Wang, Gang, 2021. "Experimental study on novel waste heat recovery system for sulfide-containing flue gas," Energy, Elsevier, vol. 227(C).
    3. Sehgal, Shitiz & Alvarado, Jorge L. & Hassan, Ibrahim G. & Kadam, Sambhaji T., 2021. "A comprehensive review of recent developments in falling-film, spray, bubble and microchannel absorbers for absorption systems," Renewable and Sustainable Energy Reviews, Elsevier, vol. 142(C).

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