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The emergence of hydrogeophysics for improved understanding of subsurface processes over multiple scales

机译:水文地球物理学的出现可以更好地理解多个尺度的地下过程

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摘要

Geophysics provides a multidimensional suite of investigative methods that are transforming our ability to see into the very fabric of the subsurface environment, and monitor the dynamics of its fluids and the biogeochemical reactions that occur within it. Here we document how geophysical methods have emerged as valuable tools for investigating shallow subsurface processes over the past two decades and offer a vision for future developments relevant to hydrology and also ecosystem science. The field of “hydrogeophysics” arose in the late 1990s, prompted, in part, by the wealth of studies on stochastic subsurface hydrology that argued for better field‐based investigative techniques. These new hydrogeophysical approaches benefited from the emergence of practical and robust data inversion techniques, in many cases with a view to quantify shallow subsurface heterogeneity and the associated dynamics of subsurface fluids. Furthermore, the need for quantitative characterization stimulated a wealth of new investigations into petrophysical relationships that link hydrologically relevant properties to measurable geophysical parameters. Development of time‐lapse approaches provided a new suite of tools for hydrological investigation, enhanced further with the realization that some geophysical properties may be sensitive to biogeochemical transformations in the subsurface environment, thus opening up the new field of “biogeophysics.” Early hydrogeophysical studies often concentrated on relatively small “plot‐scale” experiments. More recently, however, the translation to larger‐scale characterization has been the focus of a number of studies. Geophysical technologies continue to develop, driven, in part, by the increasing need to understand and quantify key processes controlling sustainable water resources and ecosystem services.
机译:地球物理学提供了一套多维的调查方法,这些方法正在改变我们观察地下环境的结构,监视其流体的动力学以及其中发生的生物地球化学反应的能力。在这里,我们记录了地球物理方法如何成为过去二十年来研究浅层地下过程的有价值的工具,并为与水文学以及生态系统科学有关的未来发展提供了远景。 1990年代末期出现了“水文地球物理学”领域,部分原因是大量关于地下地下随机水文学的研究,这些研究要求采用更好的基于现场的调查技术。这些新的水文地球物理方法得益于实用且可靠的数据反演技术的出现,在许多情况下,这些技术旨在量化浅层地下非均质性和地下流体的相关动力学。此外,对定量表征的需求激发了对岩石物理关系的大量新研究,这些研究将水文相关性质与可测量的地球物理参数联系起来。时移方法的开发提供了一套新的水文调查工具,并随着认识到某些地球物理性质可能对地下环境中的生物地球化学转变敏感而进一步增强,从而开辟了“生物地球物理学”的新领域。早期的水文地球物理研究通常集中在相对较小的“地块规模”实验上。但是,近来,将其转换为更大规模的表征已成为许多研究的重点。地球物理技术继续发展,部分原因是越来越需要了解和量化控制可持续水资源和生态系统服务的关键过程。

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