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Improved extraction of hydrologic information from geophysical data through coupled hydrogeophysical inversion

机译:通过耦合水文地球物理反演改进了从地球物理数据中提取水文信息的方法

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摘要

There is increasing interest in the use of multiple measurement types, including indirect (geophysical) methods, to constrain hydrologic interpretations. To date, most examples integrating geophysical measurements in hydrology have followed a three-step, uncoupled inverse approach. This approach begins with independent geophysical inversion to infer the spatial and/or temporal distribution of a geophysical property (e.g., electrical conductivity). The geophysical property is then converted to a hydrologic property (e.g., water content) through a petrophysical relation. The inferred hydrologic property is then used either independently or together with direct hydrologic observations to constrain a hydrologic inversion. We present an alternative approach, coupled inversion, which relies on direct coupling of hydrologic models and geophysical models during inversion. We compare the abilities of coupled and uncoupled inversion using a synthetic example where surface-based electrical conductivity surveys are used to monitor one-dimensional infiltration and redistribution. Through this illustrative example, we show that the coupled approach can provide significant reductions in uncertainty for hydrologic properties and associated predictions if the underlying model is a faithful representation of the hydrologic processes. However, if the hydrologic model exhibits structural errors, the coupled inversion may not improve the hydrologic interpretation. Despite this limitation, our results support the use of coupled hydrogeophysical inversion both for the direct benefits of reduced errors during inversion and bEC_ause of the secondary benefits that accrue bEC_ause of the extensive communication and sharing of data nEC_essary to produce a coupled model, which will likely lead to more thoughtful use of geophysical data in hydrologic studies.
机译:人们越来越关注使用多种测量类型(包括间接(地球物理)方法)来限制水文解释。迄今为止,大多数将地球物理测量结果整合到水文学中的例子都遵循了三步,非耦合逆方法。该方法以独立的地球物理反演开始,以推断地球物理性质(例如,电导率)的空间和/或时间分布。然后通过岩石物理关系将地球物理性质转换为水文性质(例如,水含量)。然后,可以将推论的水文特性单独使用,或者与直接的水文观测一起使用,以限制水文反演。我们提出了一种替代方法,耦合反演,它依赖于反演过程中水文模型和地球物理模型的直接耦合。我们使用一个综合示例比较了耦合和非耦合反演的能力,其中基于表面的电导率调查用于监控一维渗透和再分布。通过这个说明性示例,我们表明,如果基础模型是水文过程的忠实代表,则耦合方法可以显着降低水文属性和相关预测的不确定性。但是,如果水文模型显示出结构误差,则耦合反演可能无法改善水文解释。尽管有这个限制,我们的研究结果仍支持使用耦合水文地球物理反演,既可以减少反演过程中误差的直接好处,又可以支持bEC_a使用次要好处,即产生bEC_a使用广泛的通信和共享数据nEC_essary来生成耦合模型,这很可能会导致在水文研究中更周到地使用地球物理数据。

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  • 来源
    《Water resources research》 |2010年第4期|p.W00D040.1-W00D040.14|共14页
  • 作者单位

    Hydrology and Water Resources, University of Arizona, Tucson, AZ 85721-0011, USA;

    Hydrology and Water Resources, University of Arizona, Tucson, AZ 85721-0011, USA;

    Center for Nonlinear Studies, Mail Stop B258, Los Alamos, NM 87545, USA ,Department of Civil and Environmental Engineering, Henri Samueli School of Engineering, University of California, Irvine, California, USA;

    ICG 4 Agrosphere, Forschungszentrum Jiilich, D-52425 Jiilich, Germany;

    Environmental Engineering and Earth Sciences, Clemson University, Clemson, SC 29634, USA;

    ICG 4 Agrosphere, Forschungszentrum Jiilich, D-52425 Jiilich, Germany;

    Earth Sciences Division, Lawrence Berkeley National Laboratory, Berkeley, CA 94720, USA;

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