Simulation of thermoelastic waves based on the Lord-Shulman theory

Author:

Hou Wanting1ORCID,Fu Li-Yun2ORCID,Carcione José M.3,Wang Zhiwei1,Wei Jia4ORCID

Affiliation:

1. China University of Petroleum (East China), Key Laboratory of Deep Oil and Gas, 66 Changjiang West Road, Huangdao District, Qingdao 266580, China..

2. China University of Petroleum (East China), Key Laboratory of Deep Oil and Gas, 66 Changjiang West Road, Huangdao District, Qingdao 266580, China and Qingdao National Laboratory for Marine Science and Technology, Laboratory for Marine Mineral Resources, Qingdao 266071, China.(corresponding author).

3. Istituto Nazionale di Oceanografia e di Geofisica Sperimentale (OGS), Borgo Grotta Gigante 42c, Sgonico, Trieste 34010, Italy and Hohai University, School of Earth Sciences and Engineering, Nanjing 210098, China..

4. Chinese Academy of Sciences, Institute of Geology and Geophysics, 19 Beitucheng Western Road, Chaoyang District, Beijing 100029, China..

Abstract

Thermoelasticity is important in seismic propagation due to the effects related to wave attenuation and velocity dispersion. We have applied a novel finite-difference (FD) solver of the Lord-Shulman thermoelasticity equations to compute synthetic seismograms that include the effects of the thermal properties (expansion coefficient, thermal conductivity, and specific heat) compared with the classic forward-modeling codes. We use a time splitting method because the presence of a slow quasistatic mode (the thermal mode) makes the differential equations stiff and unstable for explicit time-stepping methods. The spatial derivatives are computed with a rotated staggered-grid FD method, and an unsplit convolutional perfectly matched layer is used to absorb the waves at the boundaries, with an optimal performance at the grazing incidence. The stability condition of the modeling algorithm is examined. The numerical experiments illustrate the effects of the thermoelasticity properties on the attenuation of the fast P-wave (or E-wave) and the slow thermal P-wave (or T-wave). These propagation modes have characteristics similar to the fast and slow P-waves of poroelasticity, respectively. The thermal expansion coefficient has a significant effect on the velocity dispersion and attenuation of the elastic waves, and the thermal conductivity affects the relaxation time of the thermal diffusion process, with the T mode becoming wave-like at high thermal conductivities and high frequencies.

Funder

National Natural Science Foundation of China

111 Project “Deep-Superdeep Oil Gas Geophysical Exploration”

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

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