首页> 外文期刊>Water resources research >Temporal Moments In Geoelectrical Monitoring Of Salt Tracer Experiments
【24h】

Temporal Moments In Geoelectrical Monitoring Of Salt Tracer Experiments

机译:盐追踪实验的地电监测中的时间矩

获取原文
获取原文并翻译 | 示例
           

摘要

Monitoring of salt tracer experiments by electrical resistivity tomography (ERT) has been shown to be a valuable tool for characterizing the hydraulics of an aquifer, but efficient approaches of determining the spatial hydraulic conductivity distribution from ERT data are still missing. Standard inversion of ERT data obtained during salt tracer tests may even lead to estimates of the concentration distribution that are in contradiction to flow and transport of conservative compounds in porous media. In order to avoid nonphysical behavior, we consider the governing equations of groundwater flow, solute transport, and geoelectrics as a coupled system. While the tracer passes through the part of the domain that is sensitive for a particular electrode configuration, the measured electrical potential differences are perturbed. We characterize these perturbations by their temporal moments and relate them to the temporal moments of concentration, which themselves depend on hydraulic conductivity. We present temporal moment-generating equations leading from the hydraulic conductivity field via heads and velocities to the temporal moments of concentration and electrical potential perturbations. The approach makes use of a linearized version of the Poisson equation. On the basis of this system of coupled steady state equations, we compute the sensitivity of electrical potential perturbations with respect to the log hydraulic conductivity distribution by the continuous adjoint state method for coupled systems. For demonstration, we simulate salt tracer experiments in a virtual quasi-two-dimensional sandbox, monitored by ERT. We show that the ratio of the first over the zeroth temporal moment of potential perturbation is less affected by the linearization of the Poisson equation than the zeroth and first moments themselves. Thus, it appears recommendable to use the ratio of first to zeroth moments also as data in inversion. We compare sensitivity patterns resulting from different electrode configurations. The methods of forward simulations and sensitivity calculations presented in this paper can be combined with any inverse kernel to develop a complete inverse model. Altogether, using temporal moments of potential perturbation appears promising for fully coupled hydrogeophysical inversion of ERT surveys during salt tracer tests.
机译:通过电阻层析成像(ERT)监视盐示踪剂实验是表征含水层水力的有价值的工具,但是仍然缺少从ERT数据确定空间水力传导率分布的有效方法。在盐示踪剂测试期间获得的ERT数据的标准反演甚至可能导致浓度分布的估计,这与保守化合物在多孔介质中的流动和运输相矛盾。为了避免非物理行为,我们将地下水流量,溶质运移和地电的控制方程式视为耦合系统。当示踪剂穿过对特定电极配置敏感的区域部分时,所测得的电势差就会受到干扰。我们用它们的瞬时矩来表征这些扰动,并将它们与集中的瞬时矩相关联,而这些瞬时矩本身又取决于水力传导率。我们提出了瞬时矩产生方程,这些方程从水力传导率场通过水头和速度到浓度和电势扰动的瞬时矩。该方法利用了泊松方程的线性化形式。在此耦合稳态方程系统的基础上,我们通过连续伴随状态方法对耦合系统计算了相对于对数水力传导率分布的电势扰动灵敏度。为了演示,我们在由ERT监控的虚拟准二维沙箱中模拟了盐示踪剂实验。我们表明,与零和第一和第一时刻本身相比,泊松方程的线性化对第一和零时刻的瞬时时刻之比的潜在影响较小。因此,似乎推荐将第一时刻与零时刻的比率也用作反演数据。我们比较了不同电极配置导致的灵敏度模式。本文提出的正演模拟和灵敏度计算方法可以与任何反核结合使用,以开发出完整的反模型。总之,在盐示踪剂测试过程中,使用潜在扰动的瞬时矩对于ERT调查的完全耦合的水文地球物理反演似乎很有希望。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号