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题名

Acoustic wave simulation in strongly heterogeneous models using a discontinuous Galerkin method

作者
通讯作者Zhang, Wei
发表日期
2024-09-01
DOI
发表期刊
ISSN
0016-8033
EISSN
1942-2156
卷号89页码:T251-T262
摘要
In recent years, the discontinuous Galerkin method (DGM) has been rapidly developed for the numerical simulation of seismic waves. For wavefield propagation between two adjacent elements, it is common practice to apply a numerical flux to the boundary of each element to propagate waves between adjacent elements. Several fluxes, including the center, penalty, local Lax-Friedrich (LLF), upwind, and Rankine-Hugoniot jump condition-based (RH condition) fluxes, are widely used in numerical seismic wave simulation. However, some fluxes do not account for media differences between adjacent elements. Although different fluxes have been successfully used in DGM for many velocity models, it is unclear whether they can produce sufficiently accurate or stable results for strongly heterogeneous models, such as checkerboard models commonly used in tomographic studies. We test different fluxes using the acoustic wave equation. We analyze the accuracy of the penalty, LLF, upwind, and RH-condition fluxes based on the results of the numerical simulations of the homogeneous and two-layer models. We conduct simulations using checkerboard models, and the results indicate that the LLF, penalty, and upwind fluxes may have instability problems in heterogeneous models with long-Time simulations. We observe instability issues in the LLF, penalty, and upwind fluxes when the wave-impedance contrast is high at the media interface. However, the results of the RH-condition flux remain consistently stable. The series of numerical examples presented in this work provide insights into the characteristics and application of fluxes for seismic wave modeling.
© 2024 Society of Exploration Geophysicists. All rights reserved.
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语种
英语
学校署名
通讯
资助项目
We thank Editor-in-Chief A. Malcolm, Assistant Editor J. Blanch, Associate Editor E. Koene, and three anonymous reviewers for their constructive comments, which significantly enhanced the quality of the paper. This research was supported by the National Key RandD Program of China (grant no. 2022YFF0800603), the Special Fund of the Institute of Geophysics, China Earthquake Administration (grant no. DQJB23R18), the Joint Funds of the National Natural Science Foundation of China (No. U223920029), Guangdong Provincial Pearl River Talents Program (grant no. 2019QN01G801), Guangdong Provincial Key Laboratory of Geophysical High-resolution Imaging Technology (2022B1212010002), and Shanghai Municipal Science and Technology Project (grant no. 2020J001-5) "Developing Next Generation Seismic Ground Motion Parameter Zonation Map and Seismic Risk Map of Shanghai." The computation of this work is supported by the Center for Computational Science and Engineering at the Southern University of Science and Technology.
出版者
EI入藏号
20243416908234
EI主题词
Acoustic waves ; Digital elevation model ; Galerkin methods ; Seismology ; Wave equations
EI分类号
:1106.2 ; :1106.3.1 ; :1201.2 ; :1201.9 ; Seismology:484 ; Acoustic Waves:751.1
ESI学科分类
GEOSCIENCES
来源库
EV Compendex
引用统计
成果类型期刊论文
条目标识符http://sustech.caswiz.com/handle/2SGJ60CL/807051
专题理学院_地球与空间科学系
南方科技大学
作者单位
1.China Earthquake Administration, Institute of Geophysics, Beijing, China
2.Southern University of Science and Technology, Department of Earth and Space Sciences, Shenzhen, China
3.Southern University of Science and Technology, Guangdong Provincial Key Laboratory of Geophysical High-resolution Imaging Technology, Shenzhen, China
通讯作者单位地球与空间科学系;  南方科技大学
推荐引用方式
GB/T 7714
Cao, Wenzhong,Zhang, Wei,Wang, Weitao. Acoustic wave simulation in strongly heterogeneous models using a discontinuous Galerkin method[J]. Geophysics,2024,89:T251-T262.
APA
Cao, Wenzhong,Zhang, Wei,&Wang, Weitao.(2024).Acoustic wave simulation in strongly heterogeneous models using a discontinuous Galerkin method.Geophysics,89,T251-T262.
MLA
Cao, Wenzhong,et al."Acoustic wave simulation in strongly heterogeneous models using a discontinuous Galerkin method".Geophysics 89(2024):T251-T262.
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