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Hydraulic characterization of aquifers by thermal response testing: Validation by large-scale tank and field experiments

机译:通过热响应测试对含水层进行水力表征:通过大型储罐和现场实验进行验证

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摘要

[1] Thermal response tests (TRTs) are a common field method in shallow geothermics to estimate thermal properties of the ground. During the test, a constantly heated fluid is circulated in closed tubes within a vertical borehole heat exchanger (BHE). The observed temperature development of the fluid is characteristic for the thermal properties of the ground and the BHE. We show that, when the BHE is installed in an aquifer with significant horizontal groundwater flow, this test can also be used for hydrogeological characterization of the penetrated subsurface. An evaluation method based on the moving line source equation and considering the natural occurring variability of the thermal transport parameters is presented. It is validated by application to a well-controlled, large-scale tank experiment with 9 m length, 6 m width, and 4.5 m depth, and by data interpretation from a field-scale test. The tank experiment imitates an advection-influenced TRT in a well-known layered aquifer. The field experiment was recorded with a 100 m deep BHE, installed in a gravel aquifer in southwest Germany. The evaluations of both experiments result in similar hydraulic conductivity ranges as determined by standard hydraulic investigation methods such as pumping tests and sieve analyses. Thus, advection-influenced TRTs could also potentially be used to determine integral hydraulic conductivity of the subsurface.
机译:[1]热响应测试(TRT)是浅层地热学中用于估算地面热特性的通用现场方法。在测试过程中,持续加热的流体在垂直钻孔热交换器(BHE)内的封闭管中循环。观察到的流体温度升高是地面和BHE的热特性的特征。我们表明,当将BHE安装在地下水水位较大的含水层中时,该测试也可用于渗透地下的水文地质特征。提出了一种基于动线源方程并考虑热输运参数自然发生变化的评估方法。通过将其应用到长度9 m,宽度6 m和深度4.5 m的良好控制的大型储罐实验中,并通过现场规模试验的数据解释,可以验证该结果。储罐实验模仿了众所周知的分层含水层中受平流影响的TRT。用安装在德国西南部砾石含水层中的100 m深BHE记录现场试验。通过标准的水力研究方法(例如抽水试验和筛分分析)确定,两个实验的评估结果得出相似的水力传导率范围。因此,受平流影响的TRTs也可能用于确定地下的整体水力传导率。

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  • 来源
    《Water resources research》 |2014年第1期|71-85|共15页
  • 作者单位

    Karlsruhe Institute of Technology, Institute for Applied Geosciences, Kaiserstrasse 12, Karlsruhe DE-76131,Germany;

    ETH Zurich, Geological Institute, Zurich, Switzerland;

    University of Stuttgart, Institute for Modeling Hydraulic and Environmental Systems, Stuttgart, Germany;

    Tewag Technologie-Erdwaermeanlagen-Umweltschutz GmbH, Starzach-Felldorf, Germany;

    Karlsruhe Institute of Technology (KIT), Institute for Applied Geosciences, Karlsruhe, Germany;

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