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Performance optimization of a heat pump driven liquid desiccant dehumidification system using exergy analysis

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  • Zhang, Qinling
  • Liu, Xiaohua
  • Zhang, Tao
  • Xie, Ying

Abstract

Liquid desiccant dehumidification system driven by heat pump is recognized as an efficient approach for humidity control in the air-conditioning system. The liquid desiccant dehumidification system is optimized by exergy destruction analysis method in the present research. According to the exergy destruction theory, the exergy destruction of a liquid desiccant dehumidification system is divided into exergy destructions arising from heat pump cycle, evaporators, condensers, heat and mass transfer modules and various mixing processes, respectively. The heat and mass transfer process uniformity coefficients γt and γω are proposed to describe the uniformity of the heat and mass transfer driving forces along the whole system. It’s indicated γt and γω of the basic cross-flow system are as high as 1.4 and 1.2. Then reducing the exergy destruction is chosen as the guideline to optimize the system. On the basis of the basic cross-flow system, the improved cross-flow system and the improved counter-flow system are further proposed. γt (γω) of the improved systems are reduced to 1.12(1.12) and 1.04(1.01), respectively. Owing to the system optimization, the exergy efficiency increases from 20.1% of the basic cross-flow system to 21% and 25% respectively, COPsys increases from 5.7 to 6.0 and 7.4 respectively. The exergy analysis method is effective for an optimized scenario of a heat-pump driven liquid desiccant process.

Suggested Citation

  • Zhang, Qinling & Liu, Xiaohua & Zhang, Tao & Xie, Ying, 2020. "Performance optimization of a heat pump driven liquid desiccant dehumidification system using exergy analysis," Energy, Elsevier, vol. 204(C).
  • Handle: RePEc:eee:energy:v:204:y:2020:i:c:s0360544220309981
    DOI: 10.1016/j.energy.2020.117891
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    References listed on IDEAS

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    Cited by:

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    5. Hua, Lingji & Wang, Ruzhu, 2022. "An exergy analysis and parameter optimization of solid desiccant heat pumps recovering the condensation heat for desiccant regeneration and heat transfer enhancement," Energy, Elsevier, vol. 238(PB).
    6. Farah G. Fahad & Shurooq T. Al-Humairi & Amged T. Al-Ezzi & Hasan Sh. Majdi & Abbas J. Sultan & Thaqal M. Alhuzaymi & Thaar M. Aljuwaya, 2023. "Advancements in Liquid Desiccant Technologies: A Comprehensive Review of Materials, Systems, and Applications," Sustainability, MDPI, vol. 15(18), pages 1-23, September.
    7. Dong, Honglin & Wang, Dandan & Niu, Xiaofeng & Zhang, Yue & He, Xu & Ke, Qing & Lu, Zhiheng, 2022. "Experimental study on the liquid desiccant dehumidification performance of microencapsulated phase change materials slurry," Energy, Elsevier, vol. 239(PC).
    8. Liang, Chenjiyu & Li, Xianting & Zheng, Gonghang, 2022. "Optimizing air conditioning systems by considering the grades of sensible and latent heat loads," Applied Energy, Elsevier, vol. 322(C).
    9. Wang, Huan & Liang, Chenjiyu & Wang, Guijin & Li, Xianting, 2024. "Energy-saving potential of fresh air management using camera-based indoor occupancy positioning system in public open space," Applied Energy, Elsevier, vol. 356(C).

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