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A new defrosting model for microchannel heat exchanger heat pump system considering the effects of drainage and water retention

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  • Xiong, Tong
  • Chen, Qi
  • Xu, Shijie
  • Liu, Guoqiang
  • Gao, Qiang
  • Yan, Gang

Abstract

Microchannel heat exchangers (MCHX) have been widely used in heat pump systems due to their advantages of higher efficiency and lower refrigerant charge. However, when the MCHX heat pump system works under defrosting conditions, there are problems of poor defrosting performance and long defrosting time. To study the transient characteristics of the MCHX heat pump system during defrosting, a new defrosting model was developed. The defrosting process was divided into five stages based on the variation characteristics of the frost thickness and the water film. The drainage stage was first proposed in the defrosting model to consider the influence of melted frost. In addition, the impact of retained water was also assessed in the dry heating stage. The deviation of the model and experimental data is within the acceptable range, and the transient characteristics can be accurately predicted. The visualization of the frost melt showed that defrosting was an uneven process from the top down, and the frost layer was almost completely melted at 250 s. In this study, indoor air supplied the most energy at 68.8 %. Furthermore, melting frost consumed the largest amount of energy at 33.7 %, and heating ambient air consumed the second largest amount of energy at 29.1 %. Metal energy storage (MES) had a negative impact of −7.5 % on defrosting efficiency due to a large amount of energy required to heat MCHX. Moreover, the negative influence of frost melt water and retained water on defrosting efficiency was −9.5 % and −1.9 %, respectively. It can be concluded that the key measure to improve the defrosting performance of MCHX is to reduce the effect of melted frost. This work can provide helpful insights into the defrosting simulation model development of MCHX and guide defrosting strategy optimization.

Suggested Citation

  • Xiong, Tong & Chen, Qi & Xu, Shijie & Liu, Guoqiang & Gao, Qiang & Yan, Gang, 2024. "A new defrosting model for microchannel heat exchanger heat pump system considering the effects of drainage and water retention," Energy, Elsevier, vol. 289(C).
  • Handle: RePEc:eee:energy:v:289:y:2024:i:c:s0360544223033625
    DOI: 10.1016/j.energy.2023.129968
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    References listed on IDEAS

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    1. Song, Mengjie & Deng, Shiming & Xia, Liang, 2014. "A semi-empirical modeling study on the defrosting performance for an air source heat pump unit with local drainage of melted frost from its three-circuit outdoor coil," Applied Energy, Elsevier, vol. 136(C), pages 537-547.
    2. Han, Binglong & Xiong, Tong & Xu, Shijie & Liu, Guoqiang & Yan, Gang, 2022. "Parametric study of a room air conditioner during defrosting cycle based on a modified defrosting model," Energy, Elsevier, vol. 238(PA).
    3. Qu, Minglu & Pan, Dongmei & Xia, Liang & Deng, Shiming & Jiang, Yiqiang, 2012. "A study of the reverse cycle defrosting performance on a multi-circuit outdoor coil unit in an air source heat pump – Part II: Modeling analysis," Applied Energy, Elsevier, vol. 91(1), pages 274-280.
    4. 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.
    5. Song, Mengjie & Deng, Shiming & Dang, Chaobin & Mao, Ning & Wang, Zhihua, 2018. "Review on improvement for air source heat pump units during frosting and defrosting," Applied Energy, Elsevier, vol. 211(C), pages 1150-1170.
    6. Ma, Jiacheng & Kim, Donghun & Braun, James E. & Horton, W. Travis, 2023. "Development and validation of a dynamic modeling framework for air-source heat pumps under cycling of frosting and reverse-cycle defrosting," Energy, Elsevier, vol. 272(C).
    7. Xu, Bo & Han, Qing & Chen, Jiangping & Li, Feng & Wang, Nianjie & Li, Dong & Pan, Xiaoyong, 2013. "Experimental investigation of frost and defrost performance of microchannel heat exchangers for heat pump systems," Applied Energy, Elsevier, vol. 103(C), pages 180-188.
    8. Wei, Wenzhe & Ni, Long & Li, Shuyi & Wang, Wei & Yao, Yang & Xu, Laifu & Yang, Yahua, 2020. "A new frosting map of variable-frequency air source heat pump in severe cold region considering the variation of heating load," Renewable Energy, Elsevier, vol. 161(C), pages 184-199.
    9. Wang, Feng & Liang, Caihua & Zhang, Xiaosong, 2018. "Research of anti-frosting technology in refrigeration and air conditioning fields: A review," Renewable and Sustainable Energy Reviews, Elsevier, vol. 81(P1), pages 707-722.
    10. Yunna, Wu & Ruhang, Xu, 2013. "Green building development in China-based on heat pump demonstration projects," Renewable Energy, Elsevier, vol. 53(C), pages 211-219.
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