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Optimization of Electrical Geophysical Survey Design for Hydrogeological Applications and Subsurface Target Discrimination

机译:水文地质应用和地下目标识别的电地球物理勘测设计优化

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摘要

Geophysical imaging methods significantly enhance our knowledge of subsurface characteristics and their use has become prevalent over a range of subsurface investigations. These methods facilitate the detection and characterization of both metallic and nonmetallic subsurface targets, and can provide spatially extensive information on subsurface structure and characteristics that is often impractical to obtain using standard drilling and sampling procedures alone. Electrical imaging methods such as electrical resistivity tomography (ERT) have proven to be particularly useful in hydrogeologic and geotechnical investigations because of the strong dependence of the electrical properties of soils to water saturation, soil texture, and solute concentration. Given the available geophysical tools as well as their applications, the selection of the appropriate geophysical survey design is an essential part of every subsurface geophysical investigation. Where investigations are located in an area with subsurface information already available, this information may be used as a guide for the design of a geophysical survey. In some instances, no subsurface information is available and a survey must be designed to cover a range of possible circumstances. Yet, in other instances, there may be significant subsurface information available, but because of subsurface complexities, a geophysical survey must still be designed to cover a broad range of possibilities. Demonstrating the application and limitations of ERT in a specific field application, the first investigation presented in this document provides guidance for developing methods to improve the design and implementation of ERT surveys in a complex subsurface environment. The two investigations that follow present the development of a relatively simple optimization approach based on limited forward modeling of the geophysical response for both static and mobile surveys. This process is demonstrated through examples of selecting a limited number of ERT surveys to identify and discriminate subsurface target tunnels (with a simple cylindrical geometry). These examples provide insights into the practical application of the optimization process for improved ERT survey design for subsurface target detection. Because of their relative simplicity, the optimization procedures developed here may be used to rapidly identify optimal array configurations without the need for computationally expensive inversion techniques.
机译:地球物理成像方法极大地增强了我们对地下特征的了解,并且在许多地下研究中已广泛使用它们。这些方法有助于金属和非金属地下目标的检测和表征,并且可以提供有关地下结构和特征的空间广泛信息,而这些信息通常仅使用标准钻孔和采样程序难以获得。由于土壤电特性对水饱和度,土壤质地和溶质浓度的强烈依赖性,诸如电阻率层析成像(ERT)等电成像方法已被证明在水文地质和岩土工程研究中特别有用。考虑到可用的地球物理工具及其应用,选择合适的地球物理勘测设计是每个地下地球物理勘测的重要组成部分。如果调查位于已经具备地下信息的区域中,则该信息可以用作地球物理勘测设计的指南。在某些情况下,没有地下信息可用,必须设计调查以涵盖各种可能的情况。但是,在其他情况下,可能会有大量的地下信息可用,但是由于地下信息的复杂性,必须对地球物理勘测进行设计以涵盖广泛的可能性。为了证明ERT在特定现场应用中的应用和局限性,本文档中提出的首次调查为开发方法提供了指导,以改进复杂地下环境中ERT测量的设计和实施。接下来的两个调查基于静态和移动调查的地球物理响应的有限正演模型,提出了一种相对简单的优化方法。通过选择有限数量的ERT调查来识别和区分地下目标隧道(具有简单的圆柱几何形状)的示例说明了该过程。这些示例为优化过程的实际应用提供了见识,以改进用于地下目标检测的ERT调查设计。由于它们的相对简单性,此处开发的优化过程可用于快速识别最佳阵列配置,而无需计算上昂贵的反演技术。

著录项

  • 作者

    Goode Tomas Charles;

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  • 年度 2012
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  • 原文格式 PDF
  • 正文语种 en
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