论文标题

在各向异性介质中具有很强对比度的杂种艾科纳尔求解器,用于准确的第一到达旅行时间计算

A hybrid eikonal solver for accurate first-arrival traveltime computation in anisotropic media with strong contrasts

论文作者

Gao, Kai, Huang, Lianjie

论文摘要

对于许多应用,例如旅行时间层析成像,Kirchhoff迁移等许多应用至关重要。在常规的Eikonal求解器中存在两个主要问题:源奇异性问题和复杂媒体中的数值不足。一些现有的Eikonal求解器还表现出具有强度对比度的媒体中的稳定性问题。我们开发了一个稳定而准确的混合艾科纳尔求解器,用于具有倾斜的对称轴(TTI或倾斜的横向性介质)的2D和3D横向各向同性培养基。我们的新Eikonal求解器结合了旅行时场分解技术,第三阶Lax-friedrichs Update Schepent和一种用于计算基本旅行时间字段的新方法。求解器具有以下三个优点。首先,无需在近源区域中分配精确的旅行时间值,即使对于具有强各向异性的TTI媒体,源位置附近的计算出的旅行时间字段也是准确的。其次,计算出的旅行时间字段在空间上是高度准确的。第三,对于具有较强各向异性,复杂结构和培养基中强对比的2D和3D TTI介质,求解器在数值上是稳定的。我们使用几个2D和3D TTI培养基示例来验证混合Eikonal求解器的稳定性和准确性。结果表明,我们的求解器在2D和3D复杂的TTI媒体中稳定且准确,产生了与全波场解决方案一致的首次出行旅行时间字段。

First-arrival traveltime computation is crucial for many applications such as traveltime tomography, Kirchhoff migration, etc. There exist two major issues in conventional eikonal solvers: the source singularity issue and insufficient numerical accuracy in complex media. Some existing eikonal solvers also exhibit the stability issue in media with strong contrasts in medium properties. We develop a stable and accurate hybrid eikonal solver for 2D and 3D transversely isotropic media with a tilted symmetry axis (TTI, or tilted transversely isotropic media). Our new eikonal solver combines the traveltime field factorization technique, the third-order Lax-Friedrichs update scheme, and a new method for computing the base traveltime field. The solver has the following three advantages. First, there is no need to assign exact traveltime values in the near-source region, and the computed traveltime field near the source location is accurate even for TTI media with strong anisotropy. Second, the computed traveltime field is high-order accurate in space. Third, the solver is numerically stable for 2D and 3D TTI media with strong anisotropy, complex structures, and strong contrasts in medium properties. We verify the stability and accuracy of our hybrid eikonal solver using several 2D and 3D TTI medium examples. The results show that our solver is stable and accurate in 2D and 3D complex TTI media, producing first-arrival traveltime fields that are consistent with full-wavefield solutions.

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