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Influence of local geological data on the performance of horizontal ground-coupled heat pump system integrated with building thermal loads

机译:局部地质数据对结合建筑物热负荷的水平地面耦合热泵系统性能的影响

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摘要

Horizontal ground-couple heat pump (GCHP) system incurs lower installation cost compared with the vertical GCHP system. However, the shallow burial depth makes the heat transfer process susceptible to seasonal variations. This paper analyzes the short-term and annual performance of different geothermal heat exchangers' (GHEs) configurations and geological conditions by developing 3D finite element models. Field monitored data of ground temperature and thermal property are incorporated. Six common types of GHE configurations are analyzed, from which the most efficient patterns are identified. The annual performance of optimal GCHP pattern integrated with different types of building loads are analyzed. Major conclusions include (1) application of soil temperature harmonic function as commonly done in the current practice will lead to overestimation of thermal build-up effects underground; (2) utilization of local geological data (i.e., field measured ground temperature and soil thermal properties) helps improve the annual performance of horizontal GCHP system; (3) shift of ground temperature is less significant for GCHP operating in heating dominant areas due to balanced heat injection and extraction. This study indicates incorporating local geological data reduce the GHE design length by 25%-60% and therefore is a viable strategy to achieve cost effectiveness. (C) 2017 Published by Elsevier Ltd.
机译:与立式GCHP系统相比,卧式接地热泵(GCHP)系统的安装成本较低。然而,浅埋深度使传热过程易受季节变化的影响。本文通过开发3D有限元模型,分析了不同地热热交换器(GHE)的构造和地质条件的短期和年度性能。结合了地面温度和热特性的现场监测数据。分析了六种常见的GHE配置类型,从中可以识别出最有效的模式。分析了与不同类型的建筑负荷相结合的最佳GCHP模式的年度性能。主要结论包括:(1)当前实践中普遍采用的土壤温度谐波函数将导致高估地下的热累积效应; (2)利用当地的地质数据(即现场测量的地面温度和土壤热特性)有助于提高水平GCHP系统的年度性能; (3)由于平衡的热量注入和提取,对于在加热占主导地位的地区运行的GCHP,地温的变化不太明显。这项研究表明,结合当地地质数据可以将GHE设计长度减少25%-60%,因此是实现成本效益的可行策略。 (C)2017由Elsevier Ltd.发布

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