Improving the frosting and defrosting performance of air source heat pump units: review and outlook

被引:0
|
作者
Song M. [1 ]
Dong J. [2 ]
Wu C. [3 ]
Jiang Y. [2 ]
Qu M. [4 ]
机构
[1] School of Materials and Energy, Guangdong Provincial Key Laboratory on Functional Soft Condensed Matter, Guangdong University of Technology, Guangzhou
[2] Department of Building Thermal Energy Engineering, Harbin Institute of Technology, Harbin
[3] Building Energy Research Centre, Guangzhou HKUST Fok Ying Tung Research Institute, Guangzhou
[4] School of Environment and Architecture, University of Shanghai for Science and Technology, Shanghai
来源
Wu, Chili (chiliwu@ust.hk) | 1600年 / Taylor and Francis Asia Pacific卷 / 24期
基金
中国国家自然科学基金;
关键词
Air source heat pump (ASHP); control strategy; defrosting; frost retardation; multi-circuit outdoor coil;
D O I
10.1080/1023697X.2017.1313134
中图分类号
学科分类号
摘要
When air source heat pump (ASHP) units operate in heating mode at low temperatures in high humidity environments, frost forms and accumulates on the surface of its outdoor coils. This frost layer adversely degrades the operating efficiency of ASHP units rapidly, and can even result in sudden shutdown. Due to this operational problem, many researchers have conducted studies on frost-retardation measures. Since the frost that is present on the ASHP unit after shutdown has to be removed, defrosting becomes necessary. Among several reported defrosting methods, such as compressor shutdown defrosting, electric heating defrosting, hot water spray defrosting and hot gas bypass defrosting, the most popular method is reverse cycle defrosting. In addition, defrosting initiation and termination control play an important role in the frosting and defrosting cycle. Due to a scarcity of reviews of the literature on improving the frosting and defrosting performance of ASHP units, this paper provides a comprehensive review of experimental and modelling studies which explore this topic. This review can be used for guiding the future design and control strategy optimisation for ASHP units. © 2017 The Hong Kong Institution of Engineers.
引用
收藏
页码:88 / 98
页数:10
相关论文
共 50 条
  • [31] Effect of fin types of outdoor fan-supplied finned-tube heat exchanger on periodic frosting and defrosting performance of a residential air-source heat pump
    Huang, Dong
    Zhao, Ri-Jing
    Liu, Yun
    Yi, De-Bo
    APPLIED THERMAL ENGINEERING, 2014, 69 (1-2) : 251 - 260
  • [32] New ideas on defrosting control of air-source heat pump
    Huang, XW
    Wang, RX
    Li, DY
    2ND ASIAN CONFERENCE ON REFRIGERATION AND AIR-CONDITIONING, PROCEEDINGS: NEW CONTRIBUTION TO ASIAN SUSTAINABLE DEVELOPMENT, 2004, : 124 - 132
  • [33] Study on performance of air source heat pump water heater/chiller unit under frosting
    Yao, Y
    Jiang, YQ
    Ma, ZL
    Deng, SM
    ENERGY AND ENVIRONMENT, VOLS 1 AND 2, 2003, : 1563 - 1567
  • [34] Heat transfer characteristics of the heat exchangers for refrigeration, air conditioning and heat pump systems under frosting, defrosting and dry/wet conditions-A review
    Patil, Mahesh Suresh
    Seo, Jae-Hyeong
    Lee, Moo-Yeon
    APPLIED THERMAL ENGINEERING, 2017, 113 : 1071 - 1087
  • [35] Performance of air source heat pump units with different wettability evaporators
    Li, Ran
    Gu, Zhaolin
    Zhang, Yang
    Li, Zhang
    Lu, Weizhen
    Luo, Xiaowei
    Wang, Zanshe
    Applied Thermal Engineering, 2024, 257
  • [36] Experimental study of solution defrosting characteristics of air source heat pump
    Jiang, Ping
    Zhang, Yu
    Fan, Hongxiu
    Jin, Qi
    Yu, Yanshun
    APPLIED THERMAL ENGINEERING, 2024, 236
  • [37] Dynamic defrosting characteristics of air source heat pump and effects of outdoor air parameters on defrost cycle performance
    Chen, Yi-guang
    Guo, Xian-min
    APPLIED THERMAL ENGINEERING, 2009, 29 (13) : 2701 - 2707
  • [38] An experimental investigation on the frosting and defrosting process of an outdoor heat exchanger in an air conditioning heat pump system for electric vehicles
    Li, Kang
    Xia, Dingyu
    Luo, Shuxian
    Zhao, Yugang
    Tu, Ran
    Zhou, Xuejin
    Zhang, Huiqi
    Su, Lin
    APPLIED THERMAL ENGINEERING, 2022, 201
  • [39] Evaluation method and enhanced strategy for frosting suppression performance of variable speed air source heat pump based on frosting suppression performance map
    Lin, Yao
    Luo, Jianfei
    Luo, Qing
    Li, Xiaoli
    Wang, Wei
    Sun, Yuying
    Energy and Buildings, 2024, 325
  • [40] Techno-economic analysis on frosting/defrosting operations for an air source heat pump unit with an optimized multi-circuit outdoor coil
    Song, Mengjie
    Tso, Chiyan
    Chao, Christopher Yuhang
    Wu, Chili
    ENERGY AND BUILDINGS, 2018, 166 : 165 - 177