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Acoustic viscoelastic modeling by frequency-domain boundary element method 被引量:1

Acoustic viscoelastic modeling by frequency-domain boundary element method
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摘要 Earth medium is not completely elastic, with its viscosity resulting in attenuation and dispersion of seismic waves. Most viscoelastic numerical simulations are based on the finite-difference and finite-element methods. Targeted at viscoelastic numerical modeling for multilayered media, the constant-Q acoustic wave equation is transformed into the corresponding wave integral representation with its Green's function accounting for viscoelastic coefficients. An efficient alternative for full-waveform solution to the integral equation is proposed in this article by extending conventional frequency-domain boundary element methods to viscoelastic media. The viscoelastic boundary element method enjoys a distinct characteristic of the explicit use of boundary continuity conditions of displacement and traction, leading to a semi-analytical solution with sufficient accuracy for simulating the viscoelastic effect across irregular interfaces. Numerical experiments to study the viscoelastic absorption of different Q values demonstrate the accuracy and applicability of the method. Earth medium is not completely elastic, with its viscosity resulting in attenuation and dispersion of seismic waves. Most viscoelastic numerical simulations are based on the finite-difference and finite-element methods. Targeted at viscoelastic numerical modeling for multilayered media, the constant-Q acoustic wave equation is transformed into the corresponding wave integral representation with its Green's function accounting for viscoelastic coefficients. An efficient alternative for full-waveform solution to the integral equation is proposed in this article by extending conventional frequency-domain boundary element methods to viscoelastic media. The viscoelastic boundary element method enjoys a distinct characteristic of the explicit use of boundary continuity conditions of displacement and traction, leading to a semi-analytical solution with sufficient accuracy for simulating the viscoelastic effect across irregular interfaces. Numerical experiments to study the viscoelastic absorption of different Q values demonstrate the accuracy and applicability of the method.
出处 《Earthquake Science》 CSCD 2017年第2期97-105,共9页 地震学报(英文版)
基金 supported by the National Natural Science Foundation of China (No. 41130418) the Strategic Leading Science and Technology Programme (Class B) of the Chinese Academy of Sciences (No. XDB10010400)
关键词 Viscoelastic media Viscoelastic boundary element method Frequency-domain implementation Viscoelastic numerical modeling Viscoelastic media Viscoelastic boundary element method Frequency-domain implementation Viscoelastic numerical modeling
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  • 1邓玉琼,1990年
  • 2He Nanqun,1989年
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  • 4戈革,弹性动力学,1984年
  • 5French W S,石油地球物理勘探,1975年,3卷,32页

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