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Investigation of dynamic heat transfer process through coaxial heat exchangers in the ground

机译:地下同轴换热器动态传热过程研究

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Recently, researchers are focussing on using ground coupled heat pump systems as a heat source or sink rather than air source heat pumps for HVAC needs due to the stable temperature and the high thermal inertia of the soil. The investment cost of these systems is too expensive therefore the precise thermal analysis, design and parameter optimization are essential. For an accurate design, the maximum of physical phenomena such as: axial effects, seasonal effects, underground water flow and BHE dynamic behaviour must be accounted for in order to reflect exactly the real physical situation. In the present paper thermal interferences are investigated under seasonal effects and a dynamic heat flux for a vertical coaxial borehole heat exchangers field. This enables to avoid thermal interferences by predicting efficient period of operation corresponding to the beginning of the studied phenomena (interferences) for a given separation distance between two boreholes. To reach this purpose, as a first step, a transient 2D Finite volume method (FVM) for a single borehole heat exchanger was built using MATLAB, which accounts for accurate axial and seasonal effects and a dynamic heat flux that is function of depth and time. This model has been validated against the Finite Line Source (FLS) analytical solution and good agreement between analytical and numerical methods has been obtained. Then the model has been extended to a quasi-3D model in order to investigate thermal interferences between two neighbouring boreholes. After 500 h and at the mid-point of the separating distance (1.5 m) where interferences are the strongest, the temperature is 50% (6.64 degrees C) lower than the case where there are no interferences. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:最近,由于土壤温度稳定且热惯性高,研究人员正在集中精力使用地面耦合热泵系统作为热源或散热器,而不是空气源热泵来满足HVAC的需求。这些系统的投资成本太高,因此精确的热分析,设计和参数优化至关重要。为了进行准确的设计,必须考虑最大的物理现象,例如:轴向效应,季节效应,地下水流量和BHE动态行为,以准确反映实际的物理情况。在本文中,研究了季节效应和垂直同轴钻孔热交换器场的动态热通量下的热干扰。对于两个钻孔之间的给定间隔距离,这可以通过预测与所研究现象(干扰)的开始相对应的有效运行时间来避免热干扰。为了达到这个目的,第一步是使用MATLAB建立单个钻孔换热器的瞬态2D有限体积法(FVM),该方法考虑了准确的轴向和季节影响以及动态热通量,该热通量是深度和时间的函数。该模型已针对有限线源(FLS)分析解决方案进行了验证,并且在分析方法和数值方法之间取得了良好的一致性。然后,该模型已扩展为准3D模型,以研究两个相邻钻孔之间的热干扰。 500小时后,在最强干扰的分隔距离(1.5 m)的中点,温度比没有干扰的情况低50%(6.64摄氏度)。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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