Discharge-Targeted Hydraulic Tomography to Quantify and Locate Aquifer Discharge

IF 2.6 4区 地球科学 Q3 GEOSCIENCES, MULTIDISCIPLINARY
Groundwater Pub Date : 2026-07-10 Epub Date: 2026-05-15 DOI:10.1111/gwat.70081
Konstantin Drach, Carsten Leven, Olaf A. Cirpka
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引用次数: 0

Abstract

Quantifying and localizing groundwater discharge is inherently difficult. It requires knowledge about hydraulic conductivity and the hydraulic gradient on the scale of interest. Conventional hydraulic testing, such as pumping tests, may fail in the presence of heterogeneity and complex structural boundaries. While advanced 2D and 3D hydraulic tomography may resolve small-scale heterogeneity, it is typically limited to small spatial scales and requires costly field installations. We propose a simplified tomographic approach using a limited number of pumping and observation wells spatially distributed over a well profile in the order of 100 m transverse to the direction of ambient flow. To infer the spatially variable hydraulic-conductivity field from drawdown data with its uncertainty, we apply an iterative ensemble smoother. Subsequently, the posterior ensemble of hydraulic-conductivity fields is used to calculate total and specific discharge based on the observed ambient hydraulic heads in the same wells. We test our approach in a synthetic scenario mimicking a channel-like aquifer such as the quaternary fill in a small river valley. The results demonstrate that multiple spatially distributed pumping tests are suitable to quantify total discharge and its associated uncertainty. The approach is more reliable than a conventional one that estimates effective transmissivity from fitting analytical solutions to pumping-test data. The tomographic analysis additionally allows locating spatial patterns of specific discharge at a resolution similar to the spacing of the wells, which may be important when assessing and remediating contaminant plumes.

Abstract Image

以流量为目标的水力断层成像技术量化和定位含水层流量。
地下水排放的量化和局部化本身就是困难的。它需要有关水力导电性和水力梯度的知识。传统的水力试验,如抽水试验,在非均质性和复杂结构边界存在时可能失败。虽然先进的2D和3D水力层析成像技术可以解决小规模的非均质性问题,但通常仅限于小空间尺度,并且需要昂贵的现场安装。我们提出了一种简化的层析方法,使用有限数量的泵送井和观测井,这些井在空间上分布在与环境流动方向横向100米的井剖面上。为了从具有不确定性的压降数据中推断出空间可变的水力导电性场,我们采用了迭代集合平滑法。随后,根据观察到的同口井的环境水头,利用水力传导场的后验集合计算总流量和比流量。我们在一个模拟河道样含水层的合成场景中测试了我们的方法,比如一个小河谷的第四纪填充物。结果表明,多个空间分布的抽水试验适合于量化总流量及其相关不确定性。该方法比传统方法更可靠,传统方法是通过拟合分析解和泵送测试数据来估计有效透射率。层析分析还可以以类似于井间距的分辨率定位特定排放的空间模式,这在评估和修复污染羽流时可能很重要。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Groundwater
Groundwater 环境科学-地球科学综合
CiteScore
4.80
自引率
3.80%
发文量
0
审稿时长
12-24 weeks
期刊介绍: Ground Water is the leading international journal focused exclusively on ground water. Since 1963, Ground Water has published a dynamic mix of papers on topics related to ground water including ground water flow and well hydraulics, hydrogeochemistry and contaminant hydrogeology, application of geophysics, groundwater management and policy, and history of ground water hydrology. This is the journal you can count on to bring you the practical applications in ground water hydrology.
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