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首页> 外文期刊>Journal of Hydrology >Experimental investigation of the thermal dispersion coefficient under forced groundwater flow for designing an optimal groundwater heat pump (GWHP) system
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Experimental investigation of the thermal dispersion coefficient under forced groundwater flow for designing an optimal groundwater heat pump (GWHP) system

机译:迫使地下水流动下热分散系数设计优化地下水热泵(GWHP)系统试验研究

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Mechanical thermal dispersion has often been neglected or underestimated in the simulation of heat transport in porous media, e.g., by using zero or the default value in simulators, or by using the scaling law for solute dispersivity as a thermal dispersivity value. However, large amounts of water usually injected in groundwater heat pump (GWHP) systems may increase the groundwater flow velocity much faster than natural flow and thus change the importance of mechanical dispersion in heat transport. In this study, to investigate the effects of water injection on the flow field, thermal dispersion coefficient, and associated heat transport process, a laboratory experiment using two different heat sources as tracers was performed at various background flow velocities (Re 0.52). The analysis results from analytical and numerical models indicate that injected water increases both flow velocities and thermal dispersion coefficients, especially near the injection well, and thus makes the effect of mechanical dispersion on heat transport very important even at low background flow velocity. This result was also found in the field-based modeling results, but the radius of hydraulic and thermal effects was larger. In particular, thermal dispersivity on a field scale is known to increase depending on the scale of measurement and the degree of aquifer heterogeneity. Therefore, to ensure the efficiency and sustainability in field applications such as GWHP systems, it is necessary to evaluate site-specific thermal dispersivity through field experiments.
机译:在多孔介质的热传输模拟中通常被忽略或低估机械热分散体,例如,通过使用零或模拟器中的默认值,或者通过使用缩放法作为热分散性值来溶解分散性。然而,通常在地下水热泵(GWHP)系统中喷射的大量水可能比自然流动的速度提高了地下水流速,因此改变了机械分散在热传输中的重要性。在该研究中,为了研究水喷射对流场的影响,热分散系数和相关的传热过程,在各种背景流速下进行使用两个不同热源的实验室实验(RE <0.52)。分析和数值模型的分析结果表明注入的水增加了流速和热分散系数,特别是在注射孔附近,因此即使在低背景流速下也使机械分散对热传输的影响非常重要。该结果也在基于现场的建模结果中发现,但液压和热效应的半径较大。特别地,已知在场比例上的热分散性根据测量规模和含水层异质性的程度而增加。因此,为了确保现场应用中的效率和可持续性,例如GWHP系统,必须通过现场实验评估特定于特的热分散性。

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