Applied thermal engineering2022,Vol.21516.DOI:10.1016/j.applthermaleng.2022.118944

Thermodynamic analyses of a novel ejector enhanced dual-temperature air source heat pump cycle with self-defrosting

Shengyu Li Jun Lu Wuyan Li Yunqian Zhang Sheng Huang Liu Tian Yifei Lv Yafei Hu Yijiang Zeng
Applied thermal engineering2022,Vol.21516.DOI:10.1016/j.applthermaleng.2022.118944

Thermodynamic analyses of a novel ejector enhanced dual-temperature air source heat pump cycle with self-defrosting

Shengyu Li 1Jun Lu 1Wuyan Li 2Yunqian Zhang 1Sheng Huang 1Liu Tian 1Yifei Lv 1Yafei Hu 3Yijiang Zeng1
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作者信息

  • 1. School of Civil Engineering, Chongqing University
  • 2. Department of Building Science, School of Architecture, Tsinghua University
  • 3. Guangzhou Institute of Energy Conversion, Chinese Academy of Sciences
  • 折叠

Abstract

Previous studies have pointed out problems with the dual-temperature air source heat pump. Thus, this paper proposes a novel dual-temperature air source heat pump cycle with a self-defrosting method for simultaneous production of heat sources at different temperatures. An ejector was added to the novel system, which reduced the heat transfer temperature difference of the low-temperature condenser and the utilization of multiple heat sources. In addition, a new type of defrosting, which utilizes the heat from the hot liquid refrigerant to defrost the evaporator using two evaporators and a four-way valve, is used to reduce the energy needed for defrosting and decrease temperature fluctuations. Thermodynamic modeling using the energetic and exergetic analysis method was employed to evaluate the modified cycle performance and compare it with that of the basic heat pump cycle. Eco-friendly refrigerants, such as R134a, R600a, R290, and R1234yf, were adopted as the working fluid. The simulation results show that the heating coefficient and exergy efficiency in the proposed cycle were improved by 29.34% and 43.52%, respectively, compared with those of the standard cycle under typical operating conditions. Among the refrigerants, the eco-friendly refrigerant R600a exhibited the best performance under various operating conditions. Moreover, the COP in the new system was 20.72-44.47% higher than that of a traditional system, and the exergy efficiency improvement was 29.70-49.19% compared to the standard system. In summary, this study confirms the performance enhancement potential of an ejector-based dual-temperature air-source heat-pump cycle and provides theoretical support for its practical implementation.

Key words

Ejector/Dual-temperature air-source heat pump/Different operating cases/Defrosting method/Efficiency improvement

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出版年

2022
Applied thermal engineering

Applied thermal engineering

EISCI
ISSN:1359-4311
被引量13
参考文献量70
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