利用三维混合维度代码进行垃圾填埋场直流地质电学调查的敏感性分析:合成试验

IF 1.8 3区 地球科学 Q3 GEOCHEMISTRY & GEOPHYSICS
Lorenzo Panzeri, Alessio Fumagalli, Laura Longoni, Monica Papini, Diego Arosio
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引用次数: 0

摘要

电阻率层析成像技术是一种适合于城市生活垃圾填埋场非侵入性监测的技术,但准确的灵敏度分析是评价地电调查的有效性和可靠性以及合理设计数据采集的必要条件。通常,在废物下面放置一层薄的高电阻膜,以防止渗滤液泄漏。在灵敏度计算的数值框架的构建中,考虑到电极的实际尺寸,特别是膜的实际尺寸,可能导致极高的计算成本。在这项工作中,我们提出了一种新的方法,通过采用混合维框架来有效地数值计算灵敏度,其中膜近似为二维物体,电极近似为一维物体。该代码首先针对简单的四电极阵列和均匀介质的解析表达式进行了验证。然后在简化的垃圾填埋场模型中进行测试,其中二维箱形衬垫将垃圾填埋场与周围介质分开,使用48个电极。结果表明,沿盒形衬垫周缘两侧线性排列的电极有望检测衬垫损伤,即使对直径仅为电极间距六分之一的损伤,灵敏度也能提高2至3个数量级。当模拟垃圾填埋场与周围介质之间的电气连接时,也获得了良好的结果,而不是由于衬垫损坏。在衬垫正下方具有最高灵敏度的结构是四极,其中电流和电压偶极子在衬垫内部和外部都有一个电极,并且电极的二维排列。线性下的模拟灵敏度值接近于从任意和简化的假设中得出的最小灵敏度阈值。我们相信直流电测量有可能检测衬垫损坏,使用沿衬垫周长放置的电极散布,在垃圾填埋场内外。然而,需要进行小规模的实验室试验来验证模型结果,并确认计算出的灵敏度值是否足够高,能够可靠地检测出衬里损伤。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Sensitivity analysis with a 3D mixed-dimensional code for direct current geoelectrical investigations of landfills: synthetic tests

Sensitivity analysis with a 3D mixed-dimensional code for direct current geoelectrical investigations of landfills: synthetic tests

Electrical resistivity tomography is a suitable technique for non-invasive monitoring of municipal solid waste landfills, but accurate sensitivity analysis is necessary to evaluate the effectiveness and reliability of geoelectrical investigations and to properly design data acquisition. Typically, a thin high-resistivity membrane is placed underneath the waste to prevent leakage of leachate. In the construction of a numerical framework for sensitivity computation, taking into account the actual dimensions of the electrodes and, in particular, of the membrane, can lead to extremely high computational costs. In this work, we present a novel approach for numerically computing sensitivity effectively by adopting a mixed-dimensional framework, where the membrane is approximated as a two-dimensional object and the electrodes as one-dimensional objects. The code is first validated against analytical expressions for simple four-electrode arrays and a homogeneous medium. Then it is tested in simplified landfill models, where a two-dimensional box-shaped liner separates the landfill body from the surrounding media, and 48 electrodes are used. The results show that electrodes arranged linearly along both sides of the perimeter edges of the box-shaped liner are promising for detecting liner damage, with sensitivity increasing by 2 to 3 orders of magnitude, even for damage as small as one-sixth of the electrode spacing in diameter. Good results are also obtained when simulating an electrical connection between the landfill and the surrounding media that is not due to liner damage. The configurations with the highest sensitivity directly beneath the liner are quadrupoles in which both the current and voltage dipoles have one electrode inside the liner and one electrode outside, and a two-dimensional arrangement of the electrodes. The modelled sensitivity values beneath the liner are close to a minimum sensitivity threshold derived from arbitrary and simplified assumptions. We believe that direct current surveys have the potential to detect liner damage using electrode spreads positioned along the liner perimeter, both inside and outside the landfill. However, down-scaled laboratory tests will be necessary to validate the modelling results and confirm whether the computed sensitivity values are sufficiently high to reliably detect liner damage.

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来源期刊
Geophysical Prospecting
Geophysical Prospecting 地学-地球化学与地球物理
CiteScore
4.90
自引率
11.50%
发文量
118
审稿时长
4.5 months
期刊介绍: Geophysical Prospecting publishes the best in primary research on the science of geophysics as it applies to the exploration, evaluation and extraction of earth resources. Drawing heavily on contributions from researchers in the oil and mineral exploration industries, the journal has a very practical slant. Although the journal provides a valuable forum for communication among workers in these fields, it is also ideally suited to researchers in academic geophysics.
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