Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography
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-surfa...
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Series: | Mathematical Problems in Engineering |
Online Access: | http://dx.doi.org/10.1155/2015/543540 |
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doaj-7b8d3dab19804ca8a0d482d4e90d4e102020-11-24T20:56:18ZengHindawi LimitedMathematical Problems in Engineering1024-123X1563-51472015-01-01201510.1155/2015/543540543540Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and TomographyAlexandr S. Serdyukov0Anton A. Duchkov1Institute of Petroleum Geology and Geophysics SB RAS, Pr. Ac. Koptyuga 3, Novosibirsk 630090, RussiaInstitute of Petroleum Geology and Geophysics SB RAS, Pr. Ac. Koptyuga 3, Novosibirsk 630090, RussiaEstimation 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.http://dx.doi.org/10.1155/2015/543540 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Alexandr S. Serdyukov Anton A. Duchkov |
spellingShingle |
Alexandr S. Serdyukov Anton A. Duchkov Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography Mathematical Problems in Engineering |
author_facet |
Alexandr S. Serdyukov Anton A. Duchkov |
author_sort |
Alexandr S. Serdyukov |
title |
Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography |
title_short |
Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography |
title_full |
Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography |
title_fullStr |
Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography |
title_full_unstemmed |
Hybrid Kinematic-Dynamic Approach to Seismic Wave-Equation Modeling, Imaging, and Tomography |
title_sort |
hybrid kinematic-dynamic approach to seismic wave-equation modeling, imaging, and tomography |
publisher |
Hindawi Limited |
series |
Mathematical Problems in Engineering |
issn |
1024-123X 1563-5147 |
publishDate |
2015-01-01 |
description |
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. |
url |
http://dx.doi.org/10.1155/2015/543540 |
work_keys_str_mv |
AT alexandrsserdyukov hybridkinematicdynamicapproachtoseismicwaveequationmodelingimagingandtomography AT antonaduchkov hybridkinematicdynamicapproachtoseismicwaveequationmodelingimagingandtomography |
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