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An experimental study of a direct expansion ground-coupled heat pump system in heating mode

机译:加热模式下直接膨胀式地热泵系统的实验研究

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摘要

In this paper, an experimental performance evaluation of a direct expansion ground-coupled heat pump (DX-GCHP) system in heating mode is presented. The DX-GCHP uses R134a as the refrigerant, and consists of three single U-tube copper ground heat exchangers (GHEs) placed in three 30 m vertical boreholes. During the on-off operations from December 25, 2007, to February 6, 2008, the heat pump supplied hot water to fan-coil at around 50.4℃, and its heating capacity was about 6.43 kW. The energy-based heating coefficient of performance (COP) values of the heat pump and the whole system were found to be on average 3.55 and 3.28 at an evaporating temperature of 3.14℃ and a condensing temperature of 53.4℃, respectively. The second law efficiency on the DX-GCHP unit basis was around 0.36. The exergetic COP values of the heat pump and the whole system were obtained to be 0.599 and 0.553 (the reference state temperature was set equal to the average outdoor temperature of - 1.66℃ during the tests), respectively. The authors also discussed some practical points such as the heat extraction rate from the ground, refrigerant charge and two possible new configurations to simultaneously deal with maldistribution and instability of parallel GHE evaporators. This paper may reveal insights that will aid more efficient design and improvement for potential investigators, designers and operators of such DX-GCHP systems.
机译:在本文中,对直接膨胀式地面耦合热泵(DX-GCHP)系统在加热模式下的实验性能进行了评估。 DX-GCHP使用R134a作为制冷剂,由三个放置在三个30 m垂直井眼中的三个U型单铜地面热交换器(GHE)组成。在2007年12月25日至2008年2月6日的开-关运行期间,热泵向风机盘管提供的热水约为50.4℃,其热容量约为6.43 kW。发现在蒸发温度为3.14℃和冷凝温度为53.4℃的情况下,热泵和整个系统的基于能量的性能系数(COP)分别为3.55和3.28。在DX-GCHP单位基础上的第二定律效率约为0.36。热泵和整个系统的有效COP值分别为0.599和0.553(参考状态温度设置为等于测试期间的平均室外温度-1.66℃)。作者还讨论了一些实际问题,例如从地面的热量提取率,制冷剂充注量和两种可能的新配置,以同时处理并行GHE蒸发器的分布不均和不稳定。本文可能会揭示一些见解,这些见解将有助于此类DX-GCHP系统的潜在研究人员,设计人员和操作人员进行更有效的设计和改进。

著录项

  • 来源
    《International journal of energy research》 |2009年第15期|1367-1383|共17页
  • 作者单位

    Key Laboratory of Enhanced Heat Transfer and Energy Conservation, Ministry of Education of China, People's Republic of China Key Laboratory of Heat Transfer and Energy Conversion, Beijing Education Commission, College of Environmental and Energy Engineering, Beijing University of Technology, No. 100 Pingleyuan, Chaoyang District, Beijing 100022, People's Republic of China;

    rnKey Laboratory of Enhanced Heat Transfer and Energy Conservation, Ministry of Education of China, People's Republic of China Key Laboratory of Heat Transfer and Energy Conversion, Beijing Education Commission, College of Environmental and Energy Engineering, Beijing University of Technology, No. 100 Pingleyuan, Chaoyang District, Beijing 100022, People's Republic of China;

    rnKey Laboratory of Enhanced Heat Transfer and Energy Conservation, Ministry of Education of China, People's Republic of China Key Laboratory of Heat Transfer and Energy Conversion, Beijing Education Commission, College of Environmental and Energy Engineering, Beijing University of Technology, No. 100 Pingleyuan, Chaoyang District, Beijing 100022, People's Republic of 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

    heat pump; ground source; ground-coupled; direct expansion; ground heat exchanger;

    机译:热泵;地面源接地耦合直接扩张;地面换热器;

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