首页> 外文期刊>Tectonophysics: International Journal of Geotectonics and the Geology and Physics of the Interior of the Earth >A successive three-point perturbation method for fast ray tracing in complex 2D and 3D geological models
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A successive three-point perturbation method for fast ray tracing in complex 2D and 3D geological models

机译:在复杂的2D和3D地质模型中快速射线追踪的连续三点摄动方法

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This paper presents new 2D and 3D ray-tracing methods that can be applied to traveltime and ray path computations for transmitted, reflected and turning seismic waves in complex geologic models. The new ray-tracing scheme combines segmentally iterative ray tracing (SIRT) and pseudo-bending methods to address both stratified and arbitrarily shaped block models. The new method robustly extends our previous constant block models and constant gradient block models to generally heterogeneous block models, and incorporates cubic splines or triangulated interfaces to boundaries of complex geological bodies. The method is thus more widely applicable to practical problems. A successive three-point perturbation scheme is formulated that iteratively updates the midpoints of a segment based on an initial ray path. The midpoints are corrected by applying first-order analytic formulae to locations of the midpoint inside the block or on the boundaries of the blocks, which are then updated with the pseudo-bending method and SIRT algorithm instead of the traditional iterative methods. Empirical applications, including an example addressing the Bohemian Massif, demonstrate that this successive three-point perturbation scheme successfully performs kinematic ray tracing in heterogeneous complex 2D and 3D media. (C) 2014 Elsevier B.V. All rights reserved.
机译:本文提出了新的2D和3D射线追踪方法,这些方法可用于传播时间,射线路径以及复杂地质模型中透射,反射和转向地震波的计算。新的光线跟踪方案结合了分段迭代光线跟踪(SIRT)和伪弯曲方法,以解决分层和任意形状的块模型。新方法将我们以前的恒定块模型和恒定梯度块模型稳健地扩展到了一般的非均质块模型,并且将三次样条或三角剖分界面合并到了复杂地质体的边界。因此,该方法更广泛地适用于实际问题。制定了一个连续的三点摄动方案,该方案基于初始射线路径迭代更新分段的中点。通过对块内部或块边界上的中点位置应用一阶解析公式来校正中点,然后使用伪弯曲方法和SIRT算法代替传统的迭代方法对其进行更新。包括解决波西米亚断层的示例在内的经验应用表明,这种连续的三点摄动方案可以在异类复杂的2D和3D介质中成功执行运动射线跟踪。 (C)2014 Elsevier B.V.保留所有权利。

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