Working fluid selection for heat pumps in solar district heating systems

被引:7
作者
Xiao, Shengqing [1 ]
Nefodov, Dimitri [1 ]
McLinden, Mark O. O. [2 ]
Richter, Markus [1 ]
Urbaneck, Thorsten [1 ]
机构
[1] Tech Univ Chemnitz, Dept Mech Engn, Professorship Appl Thermodynam, D-09107 Chemnitz, Germany
[2] Natl Inst Stand & Technol, Appl Chem & Mat Div, Boulder, CO 80305 USA
关键词
District heating; Heat pump; Refrigerant; Solar thermal; System; Simulation; Global warming potential; Coefficient of performance for heating; Evaluation; Feasibility study; REFRIGERANTS; ENERGY;
D O I
10.1016/j.solener.2022.02.036
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In the context of the global energy transition, solar energy holds a promising potential as an energy source for a sustainable heat supply. Solar thermal collector in combination with heat pump technology utilizing electricity from renewable sources, such as photovoltaic, opens the possibility for the transformation of many existing residential areas into zero-emissions districts. However, according to the EU F-Gas Regulation No. 517/2014, the use of many commercial working fluids with high GWP is restricted in future refrigeration systems. Here, we present the results of current research on existing heat pump applications in Germany with a heating capacity over 20 kW, and then we evaluate possible refrigerants for a typical heat-pump-based solar district heating system with a tank store in the scenario of a residential area in Germany considering two different heat pump configurations: system A (two-stage compression with an open-flash-economizer) with nine candidate refrigerants, and system B (low-temperature-cycle and high-temperature-cycle in series) with 90 pairs of refrigerants as candidates. Two criteria - the coefficient of performance for heating COPh and the volumetric flow rate of the suction gas (V) over dot(Sg) - were applied to assess optimal working fluids. The simulation results demonstrate a trade-off between low GWP and good safety properties (nonflammability, nontoxicity). Based on the simulation results, we also discuss the corresponding restrictions and necessary precautions for the application of our refrigerant candidates considering safety issues and potential environmental effects. For the heat-pump-based solar district heating system (referred to in the following as "HP-SDH system ") in this exemplary residential area, the commercially available refrigerant R1234ze(E) exhibits the best combination of thermodynamic, environmental and safety properties; it is mildly flammable, and its application must comply with the safety and environmental requirements of the relevant German and European regulations.
引用
收藏
页码:499 / 511
页数:13
相关论文
共 49 条
  • [21] Leonhardt S., 2018, ZWICKAU MARIENTHAL P, P147
  • [22] Energy and environmental comparison of two-stage solutions for commercial refrigeration at low temperature: Fluids and systems
    Llopis, Rodrigo
    Sanchez, Daniel
    Sanz-Kock, Carlos
    Cabello, Ramon
    Torrella, Enrique
    [J]. APPLIED ENERGY, 2015, 138 : 133 - 142
  • [23] Solar heat pump configurations for water heating system in China
    Lu, Jie
    Tang, Yitian
    Li, Zhiyuan
    He, Guoqing
    [J]. APPLIED THERMAL ENGINEERING, 2021, 187
  • [24] High temperature heat pump integration into district heating network
    Mateu-Royo, Carlos
    Sawalha, Samer
    Mota-Babiloni, Adrian
    Navarro-Esbri, Joaquin
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2020, 210 (210)
  • [25] Experimental exergy and energy analysis of a novel high-temperature heat pump with scroll compressor for waste heat recovery
    Mateu-Royo, Carlos
    Navarro-Esbri, Joaquin
    Mota-Babiloni, Adrian
    Moles, Francisco
    Amat-Albuixech, Marta
    [J]. APPLIED ENERGY, 2019, 253
  • [26] McLinden M.O, 2018, NIST Standard reference database 23: reference fluid thermodynamic and transport properties-REFPROP, version 10.0
  • [27] New refrigerants and system configurations for vapor-compression refrigeration
    McLinden, Mark O.
    Seeton, Christopher J.
    Pearson, Andy
    [J]. SCIENCE, 2020, 370 (6518) : 791 - 796
  • [28] Limited options for low-global-warming-potential refrigerants
    McLinden, Mark O.
    Brown, J. Steven
    Brignoli, Riccardo
    Kazakov, Andrei F.
    Domanski, Piotr A.
    [J]. NATURE COMMUNICATIONS, 2017, 8
  • [29] Myhre G, 2014, CLIMATE CHANGE 2013: THE PHYSICAL SCIENCE BASIS, P659
  • [30] Nefodov D., 2019, HLH LUFTUNG KLIMA HE, V70, P56