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Monitoring ground water storage at mesoscale using seismic noise: 30 years of continuous observation and thermo-elastic and hydrological modeling

机译:使用地震噪声监测中尺度的地下水储量:30年的连续观测以及热弹性和水文模拟

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摘要

Groundwater is a vital freshwater resource for both humans and ecosystems. Achieving sustainable management requires a detailed knowledge of the aquifer structure and of its behavior in response to climatic and anthropogenic forcing. Traditional monitoring is carried out using piezometer networks, and recently complemented with new geophysical or satellite-based observations. These techniques survey either local (small-scale) water systems or regional areas (large scale) but, to date, adequate observation tools are lacking at the water management scale (i.e. several tens of kms), which is generally explored by modeling. Using 30 years of continuous recording by four seismic stations of the Gräfenberg Array (Germany), we demonstrate that long-term observations of velocity variations (approximately 0.01%) of surface waves can be extracted from such recordings of ocean-generated seismic noise. These small variations can be explained by changes to mechanical properties of the complex aquifer system in the top few hundred meters of the crust. The velocity changes can be interpreted as effects of temperature diffusion and water storage changes. Seismic noise recordings may become a new and valuable tool to monitor heterogeneous groundwater systems at mesoscale, in addition to existing observation methods.
机译:地下水是人类和生态系统的重要淡水资源。实现可持续管理需要对含水层结构及其响应气候和人为强迫的行为的详细了解。传统的监测是使用测压计网络进行的,并且最近又有了新的地球物理或卫星观测的补充。这些技术对地方(小规模)供水系统或区域(大规模)供水系统进行了调查,但是迄今为止,在水管理规模(即几十公里)上缺乏足够的观测工具,通常通过建模来探索。通过使用Gräfenberg阵列(德国)的四个地震台站进行了30年的连续记录,我们证明了可以从这种海洋产生的地震噪声记录中提取出长期观察到的表面波速度变化(约0.01%)。这些小的变化可以通过改变地壳顶部几百米的复杂含水层系统的机械性能来解释。速度变化可以解释为温度扩散和储水量变化的影响。除现有的观测方法外,地震噪声记录可能成为监测中尺度非均质地下水系统的一种新的有价值的工具。

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