综合智慧能源

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跨临界CO2热泵供暖系统循环优化与环境经济性评估

黄帅, 向新宇, 李昂, 金旭, 阿如娜, 张家鹏   

  1. 杭州市电力设计院有限公司, 浙江 310000 中国
    国网浙江省电力有限公司杭州供电公司, 浙江 310016 中国
    东北电力大学能源与动力工程学院, 吉林 132012 中国
  • 收稿日期:2025-05-29 修回日期:2025-07-22
  • 基金资助:
    CCO2混合工质的变容量双级压缩热泵级间匹配耦合特性及低温适应性研究(51976027)

Thermodynamic Cycle Optimization and Life-Cycle Sustainability Assessment of Transcritical CO₂ Heat Pump Heating Systems

  1. , 310000, China
    , 310016, China
    , 132012, China
  • Received:2025-05-29 Revised:2025-07-22
  • Supported by:
    Study on Interstage Matching Coupling Characteristics and Low Temperature Adaptability of Two-Stage Variable Capacity Heat PumpUsing CO2 Refrigerant Mixture buildings(51976027)

摘要: 首先以跨临界CO2热泵供暖系统为研究对象,基于dymola软件对系统性能进行仿真分析;其次,对比研究CO2双级压缩、单级压缩以及耦合机械过冷的双级压缩系统在不同工况下的制热性能表现;最后,结合实际全年供热量对系统进行环境分析和经济性评估,综合探讨不同系统形式的适用性和可持续性。研究结果表明双级循环的COP较单级循环提升了26%。前机械过冷循环可有效降低双级系统最优高压;在蒸发温度为-30℃时,其COP较标准循环最大可提升了12.7%,最优高压下COP提升5.08%。经济性分析表明,OTHS+FMC系统的初始投资成本较高,但其长期运营中的能效提升和减排效益使其更具环境经济性。

关键词: 热泵, 供暖系统, CO2, 经济性分析, 循环优化

Abstract: This study investigates the performance of a transcritical CO₂ heat pump heating system through simulation and analysis conducted in Dymola software. A comparative analysis is conducted to evaluate the heating performance of single-stage compression, two-stage compression, and two-stage compression integrated with front mechanical subcooling (FMC) under varying operating conditions. Furthermore, environmental and economic assessments are performed based on actual annual heating demand to comprehensively evaluate the applicability and sustainability of the different system configurations. The results indicate that the coefficient of performance (COP) of the two-stage cycle is 26% higher than that of the single-stage cycle. The integration of front mechanical subcooling effectively reduces the optimal high-side pressure of the two-stage system. At an evaporation temperature of −30 °C, the COP of the FMC-enhanced cycle increases by up to 12.7% compared to the standard cycle, and by 5.08% under optimal high-side pressure conditions. Economic analysis reveals that although the OTHS+FMC system requires higher initial capital investment, its superior energy efficiency and emission reduction potential over long-term operation make it more favorable in terms of both environmental and economic performance.

Key words: Heat Pump, Heating System, CO₂, Economic Analysis, Cycle Optimization