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Analysis and comparison of influence factors of hot water temperature in transcritical CO_2 heat pump water heater: An experimental study

机译:跨临界CO_2热泵热水加热器热水温度影响因素的分析与比较:实验研究

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摘要

In order to investigate the factors that affect the hot water outlet temperature on air-source transcritical CO2 heat pump water heater, an experimental research is designed where the expansion valve opening is controlled to adjust the discharge pressure. The experiments are conducted at different compressor speeds, water-inlet flowrates and water-inlet temperatures. Then, a new indicator named unit temperature-lift cost (UTC) is proposed to evaluate the lifting effects of hot water temperature. The results show that the rise of hot water temperature leads to the decrease of the maximum coefficient of performance (COP) but the increase in both the gas-cooler outlet temperature at the optimal status and the optimal discharge pressure, which are mainly caused by the variations of gas-cooler outlet status. At ranges of compressor speeds, water-inlet flowrates and water-inlet temperatures, the UTCs always show a drop with a higher required hot water temperature, and the corresponding average UTCs are 0.054 degrees C-1, 0.042 degrees C-1 and 0.099 degrees C-1, respectively. According to the results, the method of controlling the water inlet flowrate should be taken as a priority to lift the hot water temperature of the system. The compressor speed is suitable to meet the needs of increasing hot water temperature and heating capacity simultaneously. It is not advisable to increase the hot water temperature by adjusting the water inlet temperature.
机译:为了研究影响气源跨临界CO2热泵热泵热泵热泵热水器的热水出口温度的因素,设计了一种实验研究,其中控制了膨胀阀开口调节放电压力。实验以不同的压缩机速度,水入口流量和进水温度进行。然后,提出了一种名为单位温度升降成本(UTC)的新指示器,以评估热水温度的提升效果。结果表明,热水温度的升高导致最大性能系数(COP)的降低,而是在最佳状态下的气体冷却器出口温度和最佳排出压力增加,主要是由此引起的气体冷却器出口状态的变化。在压缩机速度的范围内,水入口流量和进水温度,UTCs总是显示出较高所需的热水温度的下降,相应的平均UTC为0.054摄氏度,0.042℃-1和0.099度C-1分别。根据结果​​,应将控制进水流量的方法作为优先提升系统的热水温度。压缩机速度适用于满足同时增加热水温度和加热能力的需求。不建议通过调节进水温度来增加热水温度。

著录项

  • 来源
    《Energy Conversion & Management》 |2019年第10期|111836.1-111836.9|共9页
  • 作者单位

    Zhengzhou Univ Sch Chem Engn & Energy Zhengzhou 450001 Henan Peoples R China|Zhengzhou Univ Minist Educ Engn Res Ctr Energy Saving Technol & Equipment Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Chem Engn & Energy Zhengzhou 450001 Henan Peoples R China|Zhengzhou Univ Minist Educ Engn Res Ctr Energy Saving Technol & Equipment Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Chem Engn & Energy Zhengzhou 450001 Henan Peoples R China|Zhengzhou Univ Minist Educ Engn Res Ctr Energy Saving Technol & Equipment Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Chem Engn & Energy Zhengzhou 450001 Henan Peoples R China|Zhengzhou Univ Minist Educ Engn Res Ctr Energy Saving Technol & Equipment Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Chem Engn & Energy Zhengzhou 450001 Henan Peoples R China|Zhengzhou Univ Minist Educ Engn Res Ctr Energy Saving Technol & Equipment Zhengzhou 450001 Henan Peoples R China;

    Zhengzhou Univ Sch Chem Engn & Energy Zhengzhou 450001 Henan Peoples R China|Zhengzhou Univ Minist Educ Engn Res Ctr Energy Saving Technol & Equipment Zhengzhou 450001 Henan Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Transcritical CO2 cycle; Heat pump; Hot water; COP;

    机译:跨临界二氧化碳循环;热泵;热水;警察;

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