Pseudo-Helmholtz decomposition for an elastic VTI wavefield based on wavefront phase direction

Author:

Yao Gang1ORCID,Fang Xinyu2ORCID,Zheng Qingqing3ORCID,Wu Di4ORCID,Niu Fenglin5ORCID

Affiliation:

1. China University of Petroleum (Beijing), National Key Laboratory of Petroleum Resources and Engineering, Beijing, China; China University of Petroleum (Beijing), China Key Lab of Geophysical Exploration of CNPC, Beijing, China; and China University of Petroleum (Beijing), Unconventional Petroleum Research Institute, Beijing, China. (corresponding author)

2. China University of Petroleum (Beijing), National Key Laboratory of Petroleum Resources and Engineering, Beijing, China; China University of Petroleum (Beijing), China Key Lab of Geophysical Exploration of CNPC, Beijing, China; and China University of Petroleum (Beijing), Unconventional Petroleum Research Institute, Beijing, China.

3. China University of Petroleum (Beijing), National Key Laboratory of Petroleum Resources and Engineering, Beijing, China; China University of Petroleum (Beijing), China Key Lab of Geophysical Exploration of CNPC, Beijing, China; and China University of Petroleum (Beijing), College of Science, Department of Mathematics, Beijing, China.

4. China University of Petroleum (Beijing), National Key Laboratory of Petroleum Resources and Engineering, Beijing, China; China University of Petroleum (Beijing), China Key Lab of Geophysical Exploration of CNPC, Beijing, China; and China University of Petroleum (Beijing), College of Geophysics, Beijing, China.

5. Rice University, Department of Earth, Environmental and Planetary Sciences, Houston, Texas, USA.

Abstract

P and S waves are coupled when propagating in anisotropic elastic media. The separation of P and S waves helps to study the characteristics of different types of seismic waves as well as mitigating crosstalk artifacts in elastic reverse time migration and elastic full-waveform inversion. At present, the methods of seismic wave mode separation in anisotropic media are mainly built on divergence- and curl-like operations, pseudo-Helmholtz decomposition, and low-rank approximation. We develop a new pseudo-Helmholtz decomposition operator based on eigenform analysis and the wavefront phase direction to decompose vertically transversely isotropic elastic wavefields. The corresponding P-/S-wave decoupling formulas are also derived in detail. Compared with the divergence- and curl-like methods, the new method does not change the phase of P and S waves. Compared with existing pseudo-Helmholtz decomposition methods based on eigenform analysis, our method achieves more accurate wavefield separation than the zero-order pseudo-Helmholtz decomposition operator. Our method requires solving one vector Poisson equation only, resulting in much less computational cost than the existing first-order pseudo-Helmholtz decomposition methods. In addition, the accuracy of our method is analyzed by providing homogeneous media with different parameter settings. Finally, the numerical examples demonstrate that the new pseudo-Helmholtz decomposition method is effective, efficient, and robust against random noise.

Funder

RD Department of China National Petroleum Corporation

National Natural Science Foundation of China

Publisher

Society of Exploration Geophysicists

Reference28 articles.

1. Barron, J., and N. Thacker, 2005, Tutorial: Computing 2D and 3D optical flow, https://www.researchgate.net/publication/250873492_Tutorial_Computing_2D_and_3D_Optical_Flow, 28 September 2023.

2. Fast algorithms for elastic-wave-mode separation and vector decomposition using low-rank approximation for anisotropic media

3. An Unsymmetric-Pattern Multifrontal Method for Sparse LU Factorization

4. Wave‐field separation in two‐dimensional anisotropic media

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1. Geophysics Bright Spots;The Leading Edge;2024-09

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