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Full-waveform inversion of surface ground penetrating radar data and coupled hydrogeophysical inversion for soil hydraulic property estimation

机译:地表穿透雷达数据的全波形反演和耦合水文地球物理反演用于土壤水力特性估算

摘要

Non-invasive electromagnetic methods are increasingly applied for a wide range of applications in geophysical engineering, infrastructure characterization and environmental and hydrological studies. A variety of geophysical techniques are routinely used to estimate medium properties, monitor shallow soil conditions and provide valuable estimates of soil water content and the soil hydraulic parameters needed for the understanding of the highly dynamic hydrological processes in the subsurface. Traditionally, estimates of the soil water content are obtained using the subsurface permittivity and conductivity in combination with petrophysical relationships such as the Complex Refractive Index Model (CRIM) or empirical relationships such as Topp's equation and Archie's law. Here, especially surface ground penetrating radar (GPR) is a technique that enables a quick and effective mapping of the subsurface dielectric permittivity. Although GPR has the potential to return permittivities and conductivities for the same sensing volume at the field scale, estimates of the conductivity based on conventional ray-based techniques that only use part of the measured data and simplified approximations of the reality contain relatively large errors. Full-waveform inversion (FWI) overcomes these limitations by using an accurate forward modeling and inverts significant parts of the measured data to return reliable quantitative estimates of both permittivity and conductivity.In this work, we introduce a novel full-waveform inversion scheme that is able to reliably estimate permittivity and conductivity values from surface GPR data. It is based on a frequency-domain solution of Maxwell’s equations including far-, intermediate- and near-fields assuming a three-dimensional, horizontally layered model of the subsurface, and requires a starting model of the subsurface properties as well as the estimation of a source wavelet. Although the full-waveform inversion is relatively independent of the permittivity starting model, inaccuracies in the conductivity starting model result in erroneous effectivewavelet amplitudes and therefore in erroneous inversion results, since the conductivity and wavelet amplitudes are coupled. Therefore, the permittivity and conductivity are updated simultaneously with the phase and amplitude of the source wavelet. Here, optimizing the medium properties and reducing the misfit is carried out using a gradient free approach. This novel FWI is applied the analysis of ground waves and reflected waves. In the case of synthetic single layered and waveguide data, where the starting model differs significantly from the true model parameter, we were able to reconstruct the obtained model properties and the effective source wavelet. For measured waveguide data, different starting values returned the same quantitative medium properties and a data-driven effective source wavelet. ...
机译:非侵入性电磁方法越来越多地应用于地球物理工程,基础设施表征以及环境和水文研究中。通常使用各种地球物理技术来估计介质特性,监测浅层土壤条件并提供有价值的土壤水分含量和土壤水力参数估计值,以了解地下的高动态水文过程。传统上,使用地下介电常数和电导率结合岩石物理关系(例如复数折射率模型(CRIM))或经验关系(例如Topp方程和阿奇定律)来获得土壤含水量的估计值。在此,尤其是地表穿透雷达(GPR)是一种能够快速有效地绘制地下介电常数的技术。尽管GPR有潜力在场尺度上返回相同感测体积的介电常数和电导率,但是基于常规的基于射线的技术(仅使用部分测量数据和简化的现实近似值)对电导率的估计仍存在较大的误差。全波形反演(FWI)通过使用精确的正向建模克服了这些限制,并且对测量数据的重要部分进行了反演,以返回可靠的介电常数和电导率的定量估计值。在本文中,我们介绍了一种新颖的全波形反演方案,即能够根据表面GPR数据可靠地估算介电常数和电导率值。它基于Maxwell方程的频域解,包括远,中和近场,并假设了地下三维水平分层模型,并且需要地下属性的初始模型以及对源小波。尽管全波形反演相对独立于介电常数起始模型,但电导率起始模型的不正确会导致错误的有效小波幅度,因此会导致错误的反演结果,因为电导率和小波幅度是耦合的。因此,介电常数和电导率与源子波的相位和幅度同时更新。在这里,使用无梯度方法可以优化介质性能并减少失配。这种新颖的FWI被应用于地波和反射波的分析。在合成的单层和波导数据的情况下,起始模型与真实模型参数显着不同,我们能够重构获得的模型属性和有效源小波。对于测量的波导数据,不同的起始值返回相同的定量介质属性和数据驱动的有效源子波。 ...

著录项

  • 作者

    Busch Sebastian;

  • 作者单位
  • 年度 2013
  • 总页数
  • 原文格式 PDF
  • 正文语种 eng
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