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Performance of a cold storage air-cooled heat pump system with phase change materials for space cooling

机译:具有相变材料的冷藏空气冷却热泵系统的性能,用于空间冷却

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摘要

This paper studies the performance of a cold storage heat pump system integrated with phase change materials (PCMs) for space cooling. An air-cooled heat pump unit comprising of two constant rotation speed compressors is selected. The PCM is an organic material that is commercially available, and has a phase change temperature of 10-12 degrees C. A coupled computational heat transfer model of the heat pump unit, fan coil units, and a cold storage tank filled with PCM slabs is developed. The simulations are performed under the climatic condition of Fuzhou, China. The operational behaviors of the cold charging and discharging processes of the system are analyzed. Furthermore, the overall electrical energy and electricity charge consumptions at various indoor temperature set points are compared. The results indicate that, the electrical energy consumption of the cold storage heat pump system increases as the indoor temperature increases. However, there is very little difference in the electrical energy consumption of the conventional heat pump system and the cold storage system. While under the demand tariff, the electricity charge saving ratio of the cold storage system over the conventional system is 9.07%-11.28%. In general, as the indoor temperature set point reduces, the electricity charge saving ratio increases. Moreover, the effect of cold charging temperature is also discussed. It is found that higher cold charging temperature consumes less electrical energy, however, takes longer to store the same amount of cold, and the differences relies on the required amount of cold. (C) 2020 Elsevier B.V. All rights reserved.
机译:本文研究了集成了与相变材料(PCM)集成的冷藏热泵系统进行空间冷却的性能。选择包括两个恒定转速压缩机的风冷热泵单元。 PCM是可商购的有机材料,相变温度为10-12℃。热泵单元,风扇线圈单元和充满PCM板坯的冷藏箱的耦合计算传热模型是发达。模拟是根据中国福州的气候条件进行的。分析了系统的冷充电和放电过程的操作行为。此外,比较各种室内温度设定点处的整体电能和电力消耗。结果表明,随着室内温度的增加,冷藏热泵系统的电能消耗增加。然而,传统热泵系统的电能消耗和冷库系统的电能消耗差异很小。在需求关税下,传统系统上冷藏系统的电费汇率为9.07%-11.28%。通常,随着室内温度设定点降低,电荷节约率增加。此外,还讨论了冷充电温度的影响。结果发现,较高的冷充电温度消耗较少的电能,但储存相同量的冷,差异依赖于所需的寒冷。 (c)2020 Elsevier B.v.保留所有权利。

著录项

  • 来源
    《Energy and Buildings》 |2020年第12期|110405.1-110405.12|共12页
  • 作者单位

    Fujian Prov Univ Key Lab New Energy & Energy Saving Bldg Fuzhou 350108 Peoples R China|Fujian Univ Coll Ecol Environm & Urban Construct Fuzhou 350108 Peoples R China;

    Hunan Univ Coll Civil Engn Changsha 410082 Peoples R China;

    Univ Colorado Dept Civil Environm & Architectural Engn Boulder CO 80309 USA;

    Fujian Prov Univ Key Lab New Energy & Energy Saving Bldg Fuzhou 350108 Peoples R China|Fujian Univ Coll Ecol Environm & Urban Construct Fuzhou 350108 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

    Thermal energy storage; Phase change material (PCM); Heat pump system; Cold charging temperature; Performance;

    机译:热能存储;相变材料(PCM);热泵系统;冷充电温度;性能;

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