A thermal network model for hydrocarbon heat pump systems: A coupling analysis of configuration, working condition, and refrigeration distribution

被引:8
|
作者
Liang, Jierong [1 ,2 ]
Zhu, Tingting [2 ,3 ]
Sun, Li [4 ]
Wang, Hao [5 ]
Li, Tingxun [1 ]
机构
[1] Sun Yat Sen Univ, Sch Intelligent Syst Engn, West Xingan Rd 135, Guangzhou 510275, Peoples R China
[2] Tech Univ Denmark, Dept Civil & Mech Engn, Sect Thermal Energy, Nils Koppels, DK-2800 Lyngby, Denmark
[3] Univ Twente, Fac Engn Technol ET, Dept Thermal & Fluid Engn, NL-7522 NB Enschede, Netherlands
[4] Hohai Univ, Coll Mech & Elect Engn, Changzhou 213022, Peoples R China
[5] Guangdong Shenling Environm Syst Co Ltd, Xinglong 10th Rd 8, Foshan 528313, Peoples R China
基金
中国国家自然科学基金;
关键词
Heat pump model; Resistance-capacitance network; Hydrocarbon; Charge reduction; Refrigerant distribution; AIR-CONDITIONER; PRESSURE-DROP; 2-PHASE FLOW; MASS-DISTRIBUTION; FRICTION CHARACTERISTICS; CHARGE OPTIMIZATION; GENERAL CORRELATION; HORIZONTAL TUBES; RISK-ASSESSMENT; SMOOTH TUBES;
D O I
10.1016/j.enconman.2022.115908
中图分类号
O414.1 [热力学];
学科分类号
摘要
The ambition of zero emission neighborhood has been set out to operate the building components with zero life cycle greenhouse gas emissions. Hydrocarbon heat pumps as the building components with nearly zero greenhouse gas emissions are faced with the problem of simultaneously reducing refrigerant charges and maintaining competitive capacities. These must be resolved by formulating an effective modeling tool for detailed design and optimization. To develop a resistance-capacitance network model, interdisciplinary knowledge (including graph theory, heat and mass transfer, local moving boundary modeling, and algebraic multigrid) is integrated. The model simultaneously considers heat exchanger circuitries with a high detail level and component behaviors at a holistic system level. Based on experimental validation, the model's error is similar to 10%. In an R290 heat pump case study, the coupling mechanism of the system's configuration, working conditions, and refrigerant distribution are analyzed. Results indicate that the refrigerant charge can be reduced by 11.6% at the expense of a 4.2% reduction in the coefficient of performance, by varying the compressor displacement alone. In response to the variation in the system's refrigerant, 46.8%, 7.85%, and 44.2% of the total amount of refrigerants are allocated to the condenser, evaporator, and compressor, respectively. The distribution of the refrigerant quality in the heat exchanger is also visualized to indicate the direction of refrigerant reduction.
引用
收藏
页数:15
相关论文
共 50 条
  • [31] Thermal-electrical coupling analysis of the static heat pipe cooled reactor under heat pipe failure condition
    Tang, Simiao
    Lian, Qiang
    Zhu, Longxiang
    Zhang, Luteng
    Ma, Zaiyong
    Sun, Wan
    Pan, Liangming
    NUCLEAR ENGINEERING AND DESIGN, 2024, 417
  • [32] Comprehensive Performance Analysis and Correlation Fitting of R744 and Its Mixture Used in Refrigeration and Heat Pump Systems
    Sun, Dahan
    Liu, Zhongyan
    Zhang, Hao
    Zhang, Xin
    ASME Open Journal of Engineering, 2023, 2
  • [33] The Effect of Coupling Solar Thermal System and Geothermal Heat Pump Systems in Areas with Unbalanced Heating and Cooling Demand
    Hwang, Jihyun
    Song, Doosam
    Lee, Taewon
    ENERGIES, 2021, 14 (01)
  • [34] Model Validation and Performance Assessment of Unglazed Photovoltaic-Thermal Collectors with Heat Pump Systems
    Chhugani, Bharat
    Paerisch, Peter
    Kirchner, Maik
    Littwin, Matthias
    Lampe, Carsten
    Giovannetti, Federico
    PROCEEDINGS OF THE ISES EUROSUN 2020 CONFERENCE - 13TH INTERNATIONAL CONFERENCE ON SOLAR ENERGY FOR BUILDINGS AND INDUSTRY, 2020, : 564 - 575
  • [35] Configuration and Efficiency Mechanism Analysis of Ultra-High Temperature Heat Pump Energy Storage Systems for New Power Systems
    Xu, Zibo
    Ma, Yinsheng
    INTERNATIONAL JOURNAL OF HEAT AND TECHNOLOGY, 2024, 42 (05) : 1578 - 1586
  • [36] Discrete thermal element modelling of heat conduction in particle systems: Pipe-network model and transient analysis
    Feng, Y. T.
    Han, K.
    Owen, D. R. J.
    POWDER TECHNOLOGY, 2009, 193 (03) : 248 - 256
  • [37] Research on thermal performance of ground source heat pump based on artificial neural network predictive model
    Hu, Rong
    Chen, Hao
    Lan, Ting
    Zhou, Chunwei
    Liu, Gang
    APPLIED THERMAL ENGINEERING, 2024, 236
  • [38] Theoretical thermal performance analysis of two solar-assisted heat-pump systems
    Huang, HL
    Ge, XS
    Su, YH
    INTERNATIONAL JOURNAL OF ENERGY RESEARCH, 1999, 23 (01) : 1 - 6
  • [39] Analysis of solar aided heat pump systems with seasonal thermal energy storage in surface tanks
    Yumrutas, R
    Ünsal, M
    ENERGY, 2000, 25 (12) : 1231 - 1243
  • [40] Determination of groundwater flow direction in thermal response test analysis for geothermal heat pump systems
    Lee, C. K.
    Lam, H. N.
    HVAC&R RESEARCH, 2011, 17 (06): : 991 - 999