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Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography

机译:地震波方程建模,成像和层析成像的混合运动动力学方法

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Estimation of the structure response to seismic motion is an important part of structural analysis related to mitigation of seismic risk caused by earthquakes. Many methods of computing structure response require knowledge of mechanical properties of the ground which could be derived from near-surface seismic studies. In this paper we address computationally efficient implementation of the wave-equation tomography. This method allows inverting first-arrival seismic waveforms for updating seismic velocity model which can be further used for estimating mechanical properties. We present computationally efficient hybrid kinematic-dynamic method for finite-difference (FD) modeling of the first-arrival seismic waveforms. At every time step the FD computations are performed only in a moving narrowband following the first-arrival wavefront. In terms of computations we get two advantages from this approach: computation speedup and memory savings when storing computed first-arrival waveforms (it is not necessary to make calculations or store the complete numerical grid). Proposed approach appears to be specifically useful for constructing the so-called sensitivity kernels widely used for tomographic velocity update from seismic data. We then apply the proposed approach for efficient implementation of the wave-equation tomography of the first-arrival seismic waveforms.
机译:估计结构对地震运动的响应是与减轻地震引起的地震风险有关的结构分析的重要部分。许多计算结构响应的方法都需要了解地面的机械特性,这些知识可以从近地表地震研究中得出。在本文中,我们讨论了波方程层析成像的高效计算实现。该方法允许反转初到地震波形以更新地震速度模型,该模型可以进一步用于估计机械性能。我们提出了一种计算有效的混合运动学动力学方法,用于初到地震波形的有限差分(FD)建模。在每个时间步长,FD计算仅在跟随初到波前的移动窄带中执行。在计算方面,我们从这种方法中获得了两个好处:存储已计算的先到达波形时,计算速度提高了,内存节省了(不必进行计算或存储完整的数值网格)。所提出的方法对于构建被广泛用于从地震数据中进行层析速度更新的所谓的敏感性内核似乎特别有用。然后,我们将所提出的方法有效地应用于首次到达地震波形的波方程层析成像。

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