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Efficiency and economic analysis of utilizing latent heat from groundwater freezing in the context of borehole heat exchanger coupled ground source heat pump systems

机译:井下换热器耦合地源热泵系统中利用地下水冻结潜热的效率和经济分析

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摘要

TQ utilize the shallow geothermal energy, heat pumps are often coupled with borehole heat exchangers (BHE) to provide heating and cooling for buildings. In cold regions, soil freezing around the BHE is a potential problem which will dramatically influence the underground soil temperature distribution, subsequently the inlet and outlet circulating fluid temperature of the BHE, and finally the efficiency of the heat pump. In this study, a numerical model has been developed to simulate the coupled temperature evolution both inside the BHE, and the propagating freezing front in the surrounding soil. The coupled model was validated against analytical solutions and experimental data. The influence of the freezing process on the overall system performance is investigated by comparing one long BHE configuration without freezing and another short one with latent heat from the frozen groundwater. It is found that when freezing happens, the coefficient of performance (COP) of the heat pump will decrease by around 0:5, leading to more electricity consumption. Furthermore, analysis of the simulation result reveals that the exploitation of latent heat through groundwater freezing is only economically attractive if electricity price is low and interest rate high, and it is not the case is most European countries. (C) 2016 Elsevier Ltd. All rights reserved.
机译:TQ利用浅层地热能,热泵通常与钻孔热交换器(BHE)结合使用,为建筑物提供加热和冷却。在寒冷地区,BHE周围的土壤冻结是一个潜在问题,它将极大地影响地下土壤的温度分布,进而影响BHE的入口和出口循环流体温度,最后影响热泵的效率。在这项研究中,已经开发了一个数值模型来模拟BHE内部以及周围土壤中传播的冻结前沿的耦合温度演化。耦合模型针对分析解决方案和实验数据进行了验证。通过比较一个没有冻结的长BHE配置和另一个有来自冻结地下水的潜热的简短BHE配置,研究了冻结过程对整个系统性能的影响。发现当发生冻结时,热泵的性能系数(COP)将降低约0:5,从而导致更多的电能消耗。此外,对模拟结果的分析表明,仅在电价低,利率高的情况下,通过地下水冻结利用潜热才具有经济吸引力,而大多数欧洲国家并非如此。 (C)2016 Elsevier Ltd.保留所有权利。

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