首页> 外文期刊>Applied thermal engineering: Design, processes, equipment, economics >Soil temperature distribution around a U-tube heat exchanger in a multi-function ground source heat pump system
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Soil temperature distribution around a U-tube heat exchanger in a multi-function ground source heat pump system

机译:多功能地源热泵系统中U型管换热器周围的土壤温度分布

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摘要

The imbalance of heat extracted from the earth by the underground heat exchangers in winter and ejected into it in summer is expected to affect the long term performance of conventional ground source heat pump (GSHP) in territories with a cold winter and a warm summer such as the middle and downstream areas of the Yangtze River in China. This paper presents a new multi-function ground source heat pump (MFGSHP) system which supplies hot water as well as space cooling/heating to mitigate the soil imbalance of the extracted and ejected heat by a ground source heat pump system. The heat transfer characteristic is studied and the soil temperature around the underground heat exchangers are simulated under a typical climatic condition of the Yangtze River. A three-dimensional model was constructed with the commercial computational fluid dynamics software FLUENT based on the inner heat source theory. Temperature distribution and variation trend of a tube cluster of the underground heat exchanger are simulated for the long term performance. The results show that the soil temperature around the underground tube keeps increasing due to the surplus heat ejected into the earth in summer, which deteriorates the system performance and may lead to the eventual system deterioration. The simulation shows that MFGSHP can effectively alleviate the temperature rise by balancing the heat ejected to/extracted from underground by the conventional ground source heat pump system. The new system also improves the energy efficiency.
机译:冬季,地下换热器从地球抽出的热量在夏天排放到地球的热量的不平衡,预计会影响传统的地源热泵在冬季寒冷和夏季温暖的地区的长期性能,例如中国长江中下游地区。本文提出了一种新型的多功能地源热泵(MFGSHP)系统,该系统可提供热水以及空间冷却/加热,以减轻地源热泵系统提取和排出的热量对土壤的不平衡。研究了长江典型气候条件下的换热特性,模拟了地下换热器周围的土壤温度。基于内部热源理论,使用商业计算流体力学软件FLUENT构建了三维模型。为了长期运行,模拟了地下热交换器管束的温度分布和变化趋势。结果表明,夏季多余的热量散发到地下,地下管道周围的土壤温度持续升高,这会降低系统性能,并可能导致最终的系统恶化。仿真表明,MFGSHP可通过平衡常规地面源热泵系统从地下散发出来的热量或从地下散出的热量来有效地缓解温度升高。新系统还提高了能源效率。

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