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Optimization schemes for the inversion of Bouguer gravity anomalies.

机译:布格重力异常反演的优化方案。

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摘要

Data sets obtained from measurable physical properties of the Earth structure have helped advance the understanding of its tectonic and structural processes and constitute key elements for resource prospecting. 2-Dimensional (2-D) and 3-D models obtained from the inversion of geophysical data sets are widely used to represent the structural composition of the Earth based on physical properties such as density, seismic wave velocities, magnetic susceptibility, conductivity, and resistivity. The inversion of each one of these data sets provides structural models whose consistency depends on the data collection process, methodology, and overall assumptions made in their individual mathematical processes. Although sampling the same medium, seismic and non-seismic methods often provide inconsistent final structural models of the Earth with varying accuracy, sensitivity, and resolution. Taking two or more geophysical data sets with complementary characteristics (e.g. having higher resolution at different depths) and combining their individual strengths to create a new improved structural model can help achieve higher accuracy and resolution power with respect to its original components while reducing their ambiguity and uncertainty effects. Gravity surveying constitutes a cheap, non-invasive, and non-destructive passive remote sensing method that helps to delineate variations in the gravity field. These variations can originate from regional anomalies due to deep density variations or from residual anomalies related to shallow density variations [41]. Since gravity anomaly inversions suffer from significant non-uniqueness (allowing two or more distinct density structures to have the same gravity signature) and small changes in parameters can highly impact the resulting model, the inversion of gravity data represents an ill-posed mathematical problem. However, gravity studies have demonstrated the effectiveness of this method to trace shallow subsurface density variations associated with structural changes [16]; therefore, it complements those geophysical methods with the same depth resolution that sample a different physical property (e.g. electromagnetic surveys sampling electric conductivity) or even those with different depth resolution sampling an alternative physical property (e.g. large scale seismic reflection surveys imaging the crust and top upper mantle using seismic velocity fields). In order to improve the resolution of Bouguer gravity anomalies, and reduce their ambiguity and uncertainty for the modeling of the shallow crust, we propose the implementation of primal-dual interior point methods for the optimization of density structure models through the introduction of physical constraints for transitional areas obtained from previously acquired geophysical data sets. This dissertation presents in Chapter 2 an initial forward model implementation for the calculation of Bouguer gravity anomalies in the Porphyry Copper-Molybdenum (Cu-Mo) Copper Flat Mine region located in Sierra County, New Mexico. In Chapter 3, we present a constrained optimization framework (using interior-point methods) for the inversion of 2-D models of Earth structures delineating density contrasts of anomalous bodies in uniform regions and/or boundaries between layers in layered environments. We implement the proposed algorithm using three different synthetic gravitational data sets with varying complexity. Specifically, we improve the 2-dimensional density structure models by getting rid of unacceptable solutions (geologically unfeasible models or those not satisfying the required constraints) given the reduction of the solution space. Chapter 4 shows the results from the implementation of our algorithm for the inversion of gravitational data obtained from the area surrounding the Porphyry Cu-Mo Cooper Flat Mine in Sierra County, NM. Information obtained from previous induced polarization surveys and core samples served as physical constraints for the inversion parameters. Finally, in order to achieve higher resolution, Chapter 5 introduces a 3-D theoretical framework for the joint inversion of Bouguer gravity anomalies and surface wave dispersion using interior-point methods. Through this work, we expect to contribute to the creation of additional tools for the development of 2- and 3-D models depicting the Earth's geological processes and to the widespread use of constrained optimization techniques for the inversion of geophysical data sets.
机译:从地球结构的可测量物理特性获得的数据集有助于增进对地球构造和结构过程的理解,并构成资源勘探的关键要素。从地球物理数据集的反演中获得的二维(2-D)和3-D模型被广泛用于基于物理特性(例如密度,地震波速度,磁化率,电导率和电导率)来表示地球的结构组成。电阻率。这些数据集中的每个数据集的反转都提供了结构模型,其一致性取决于数据收集过程,方法论以及在其各自的数学过程中做出的总体假设。尽管采用相同的介质采样,但地震和非地震方法通常会以不同的精度,灵敏度和分辨率提供不一致的地球最终结构模型。选取两个或多个具有互补特征的地球物理数据集(例如,在不同深度具有更高的分辨率)并将其各自的优势相结合以创建新的改进的结构模型,可以帮助实现相对于其原始组件的更高的精度和分辨率,同时减少其歧义性和不确定性影响。重力测量是一种廉价的,非侵入性的,无损的被动遥感方法,有助于描述重力场的变化。这些变化可能源于深密度变化引起的区域异常,也可能源于与浅密度变化有关的残余异常[41]。由于重力异常反演会出现明显的非唯一性(允许两个或多个不同的密度结构具有相同的重力特征),并且参数的微小变化会严重影响生成的模型,因此重力数据的反演代表了不适定的数学问题。然而,重力研究证明了这种方法对于追踪与结构变化有关的浅层地下密度变化的有效性[16]。因此,它可以对那些具有相同深度分辨率的地球物理方法进行补充,这些深度分辨率可以对不同的物理属性进行采样(例如,电磁测量对电导率进行采样),甚至可以对具有不同深度分辨率的其他物理属性进行采样(例如对地壳和顶部成像的大规模地震反射测量)使用地震速度场的上地幔)。为了提高布格重力异常的分辨率,并减少其对浅地壳建模的不确定性和不确定性,我们建议通过引入物理约束来实现原始-双内点法来优化密度结构模型。从先前获取的地球物理数据集获得的过渡区域。本文在第二章中提出了一种新的正演模型实现方法,用于计算新墨西哥州塞拉县的斑岩铜钼(Cu-Mo)铜扁平矿区的布格重力异常。在第3章中,我们提出了一个约束优化框架(使用内点方法),用于反演地球结构的二维模型,该模型描述了均匀区域中异常物体的密度对比和/或分层环境中各层之间的边界的密度对比。我们使用具有不同复杂度的三个不同的合成重力数据集来实现所提出的算法。具体而言,在解决方案空间减小的情况下,我们通过消除不可接受的解(地质上不可行的模型或不满足所需约束的模型)来改进二维密度结构模型。第4章显示了我们算法的执行结果,该算法用于反演从新墨西哥州塞拉县的斑岩铜钼库珀扁平矿周围获得的重力数据。从先前的极化调查和岩心样本获得的信息成为反演参数的物理约束。最后,为了获得更高的分辨率,第5章介绍了一种3D理论框架,用于使用内点方法联合反演布格重力异常和面波频散。通过这项工作,我们希望为创建其他工具以开发用于描述地球地质过程的2维和3维模型,以及为地球物理数据集的反演优化技术的广泛使用做出贡献。

著录项

  • 作者

    Zamora, Azucena.;

  • 作者单位

    The University of Texas at El Paso.;

  • 授予单位 The University of Texas at El Paso.;
  • 学科 Applied mathematics.;Geophysics.
  • 学位 Ph.D.
  • 年度 2015
  • 页码 136 p.
  • 总页数 136
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 语言学;
  • 关键词

  • 入库时间 2022-08-17 11:52:46

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