首页> 外文会议>Geotechnical Special Publication no.144; Multidisciplinary Conference; 20050924-28; San Antonio,TX(US) >Application of Geophysical Logging Techniques for Multi-Channel Well Design And Installation in a Karst Aquifer
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Application of Geophysical Logging Techniques for Multi-Channel Well Design And Installation in a Karst Aquifer

机译:物探技术在岩溶含水层多道井设计安装中的应用

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HydroPhysical™ logging, along with optical and acoustic televiewer logging, was applied in five open bedrock boreholes at the Volunteer Army Ammunition Plant (VOAAP) in Chattanooga, Tennessee to identify water-bearing fractures and conduits. Data obtained from the HydroPhysical™ (HpL) and geophysical logging was evaluated in real time in the field so that Solinist Continuous Multi-channel Tubing "CMT" wells with multiple sampling chambers could be properly constructed. The fracture zones were identified to evaluate the distribution of explosive contaminants in the karst aquifer wherein primary flow paths are through solution-enlarged fractures and bedding planes. The CMT wells are designed to provide vertical head distribution within fracture zones and vertical contaminant profiles in support of the groundwater corrective measures study (CMS) and long term monitoring points. The HpL logging techniques identified water-bearing fracture zones in each borehole under ambient and stressed conditions with flow rates ranging from 0.007 to 18.5 gpm. The number of waterbearing fracture zones identified ranged from one to eight per borehole. Additionally, optical or acoustic televiewer data was acquired for greater depth resolution of fractures and fracture orientation information. Based on the HydroPhysical™ data, CMT wells were installed in each borehole with multiple fracture zones with the well screens targeting specific water-bearing fractures. The depths of the screened intervals for the multi-chamber wells ranged from 43 to 145 feet bgs. Contaminant profiles generated from the multi-chamber wells showed concentrations of explosives varied widely among fractures within each well. The HpL and geophysical logging accurately defined preferential flow zones at lower cost and requiring less time than traditional techniques. Once logged, data were evaluated in the field, which allowed the CMT wells to be designed, constructed, and installed by the geologist with minimal delays.
机译:在田纳西州查塔努加的志愿军弹药厂(VOAAP)的五个敞开的基岩钻孔中使用了HydroPhysical™测井以及光学和声学的远景测井,以识别含水裂缝和导管。在现场实时评估了从HydroPhysical™(HpL)和地球物理测井获得的数据,以便可以正确构造具有多个采样室的Solinist连续多通道油管“ CMT”井。确定裂缝区域以评估岩溶含水层中爆炸性污染物的分布,其中主要流动路径是通过溶液扩大的裂缝和层理平面。 CMT井旨在提供压裂区内的垂直压头分布和垂直的污染物分布,以支持地下水纠正措施研究(CMS)和长期监测点。 HpL测井技术在环境和压力条件下确定了每个钻孔中的含水裂缝带,流量范围为0.007至18.5 gpm。识别出的含水裂缝区域的数量为每个钻孔1到8个。此外,还可以获取光学或声学的电视取景器数据,以实现更高的裂缝深度分辨率和裂缝方向信息。根据HydroPhysical™数据,将CMT井安装在每个带有多个裂缝带的井眼中,并针对特定含水裂缝确定筛网。多室井的筛选间隔深度范围为43至145英尺bgs。从多室井中产生的污染物剖面图显示,每口井中的裂缝之间爆炸物浓度差异很大。与传统技术相比,HpL和地球物理测井以较低的成本和更少的时间准确地定义了优先流动区。一旦记录下来,就可以在现场评估数据,这使得地质学家能够以最小的延迟设计,建造和安装CMT井。

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