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Simulation of seismic real and virtual data using the three-dimensional finite-difference technique and representation theorem.

机译:使用三维有限差分技术和表示定理模拟地震真实和虚拟数据。

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摘要

Seismic modeling is a technique for simulating wave propagation through the subsurface. For a given geological model, seismic modeling allows us to generate snapshots of wave propagation and synthetic data. In my dissertation, for real seismic events I have chosen to implement the finite-difference modeling technique. When adequate discretization in space and time is possible, the finite-difference technique is by far one of the most accurate tools for simulating elastic-wave propagation through complex geological models.;In recent years, a significant amount of work has been done in our group using 2D finite-difference modeling. For complex salt structures which exploration and production industries meet today, 2D finite-difference modeling is not sufficient to study subsalt imaging or the demultiple of subsalt models. That is why I have developed a 3D finite-difference modeling code.;One of the key challenges that I have met in developing the 3D finite-difference code is to adapt the absorbing boundary conditions. Absorbing boundary conditions are needed to describe the infinite geological models by limited computing domain. I have validated the 3D finite-difference code by comparing its results with analytic solutions. I have used 3D finite-difference program to generate data corresponding to 3D complex model which describes salt and subsalt structures of Gulf of Mexico. The resulting data include reflections, diffractions and other scattering phenomena. I have also used finite-difference program in anisotropic context to show that we can effectively predict shear-wave splitting and triplication in the data.;There are new sets of events that are not directly recorded in seismic data, they have been called virtual events. These events are turning to be as important as real events in modern data processing. Therefore we also have to learn how to model them. Unfortunately, they cannot yet be modeled directly from finite-difference. Here I will describe how to model these events by using cross correlation type representation theorem. As illustration of how important of virtual events for seismic data processing, I also described an internal multiple attenuation technique which utilized virtual events.
机译:地震建模是一种模拟波在地下传播的技术。对于给定的地质模型,地震建模使我们能够生成波传播和合成数据的快照。在本文中,对于真实的地震事件,我选择了实施有限差分建模技术。当可以在空间和时间上进行足够的离散化时,有限差分技术是迄今为止通过复杂地质模型模拟弹性波传播的最准确工具之一。近年来,我们已经完成了大量工作。组使用2D有限差分建模。对于当今勘探和生产行业遇到的复杂盐结构,二维有限差分建模不足以研究盐下成像或盐下模型的倍数。这就是为什么我开发了3D有限差分建模代码的原因。在开发3D有限差分代码时遇到的主要挑战之一就是适应吸收边界条件。通过有限的计算域来描述无限的地质模型需要吸收边界条件。我已经通过将3D有限差分代码的结果与解析解决方案进行比较来验证3D有限差分代码。我已经使用3D有限差分程序来生成与3D复杂模型相对应的数据,该模型描述了墨西哥湾的盐和盐下层结构。所得数据包括反射,衍射和其他散射现象。我还使用了各向异性情况下的有限差分程序来表明我们可以有效地预测数据中的剪切波分裂和三重化。;有一些新的事件集没有直接记录在地震数据中,它们被称为虚拟事件。 。这些事件在现代数据处理中正变得与真实事件一样重要。因此,我们还必须学习如何对其建模。不幸的是,它们还不能直接由有限差分建模。在这里,我将描述如何使用互相关类型表示定理对这些事件进行建模。为了说明虚拟事件对地震数据处理的重要性,我还描述了一种利用虚拟事件的内部多重衰减技术。

著录项

  • 作者

    Yang, Xiujun.;

  • 作者单位

    Texas A&M University.;

  • 授予单位 Texas A&M University.;
  • 学科 Geophysics.
  • 学位 Ph.D.
  • 年度 2008
  • 页码 165 p.
  • 总页数 165
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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