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Improved Resolution of Ambient Flow through Fractured Rock with Temperature Logs

机译:通过温度测井提高通过裂隙岩的环境流动的分辨率

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摘要

In contaminant hydrogeology, investigations at fractured rock sites are typically undertaken to improve understanding of the fracture networks and associated groundwater flow that govern past and/or future contaminant transport. Conventional hydrogeologic, geophysical, and hydrophysical techniques used to develop a conceptual model are often implemented in open boreholes under conditions of cross-connected flow. A new approach using high-resolution temperature (±0.001 ℃) profiles measured within static water columns of boreholes sealed using continuous, water-inflated, flexible liners (FLUTe?) identifies hydraulically active fractures under ambient (natural) groundwater flow conditions. The value of this approach is assessed by comparisons of temperature profiles from holes (100 to 200 m deep) with and without liners at four contaminated sites with distinctly different hydrogeologic conditions. The results from the lined holes consistently show many more hydraulically active fractures than the open-hole profiles, in which the influence of vertical flow through the borehole between a few fractures masks important intermediary flow zones. Temperature measurements in temporarily sealed boreholes not only improve the sensitivity and accuracy of identifying hydraulically active fractures under ambient conditions but also offer new insights regarding previously unresolvable flow distributions in fractured rock systems, while leaving the borehole available for other forms of testing and monitoring device installation.
机译:在污染物水文地质学中,通常在裂隙岩石现场进行调查,以增进对控制过去和/或未来污染物运移的裂缝网络和相关地下水流量的了解。用于开发概念模型的常规水文地质,地球物理和水文物理技术通常在交叉流动的条件下在裸眼井中实施。一种采用高分辨率温度(±0.001℃)剖面的新方法,该剖面是在井眼的静态水柱中测量的,该井眼使用连续的,充水的,柔性的衬管(FLUTe?)进行了密封,可识别环境(自然)地下水流动条件下的液压活动裂缝。该方法的价值通过比较四个受污染地点(水文地质条件不同)有无衬砌的洞(100至200 m深)的温度曲线进行评估。衬里孔的结果始终显示出比裸眼剖面更多的水力活动裂缝,其中在垂直裂缝中穿过井眼的一些裂缝之间的影响掩盖了重要的中间流动区域。临时密封井眼中的温度测量不仅可以提高在环境条件下识别水力活动裂缝的灵敏度和准确性,而且还可以提供有关裂隙岩石系统中以前无法解决的流量分布的新见解,同时还可以将井眼用于其他形式的测试和监测设备安装。

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  • 来源
    《Ground water》 |2010年第2期|191-205|共15页
  • 作者单位

    Department of Earth Sciences, University of Waterloo, 200 University Avenue West, Waterloo, Ontario, Canada N2L 3G1;

    School of Engineering, University of Guelph, 50 Stone Road East, Guelph, Ontario, N1G 2W1, Canada;

    Department of Earth Sciences, University of Waterloo, 200 University Avenue West, Waterloo, Ontario, Canada N2L 3G1, Canada;

    P0 Box 122, Tobermory, ON NOB 1N0;

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