Three-dimensional numerical modelling of the drained/undrained transition for frequency-dependent elastic moduli and attenuation

Author:

Sun Chao1,Tang Genyang1,Zhao Jianguo1,Zhao Liming1,Long Teng1,Li Min1,Wang Shangxu1

Affiliation:

1. China University of Petroleum-Beijing, State Key Laboratory of Petroleum Resources and Prospecting; Key Laboratory of Geophysical Prospecting, CNPC, ChangPing, Beijing 102249, China

Abstract

SUMMARY In fully fluid-saturated rocks, two common phenomena are documented both experimentally and theoretically for frequency-dependent elastic moduli and attenuation, that is, the drained/undrained transition and the relaxed/unrelaxed transition. When investigating these transitions with the forced oscillation method in the laboratory, it is crucial to consider the boundary differences between the laboratory and the underground. A 1-D poroelastic numerical model was previously established to describe these differences and their effects; however, the boundary conditions used in the model are actually different from the real experiment case, thus leading to inaccurate predication of the measurement results in a laboratory. In this paper, we established a 3-D poroelastic numerical model with a new set of boundary conditions that better represent the experiment conditions. Furthermore, the 3-D poroelastic modelling results were compared with laboratory measurements under the same boundary conditions, showing a much better fit than the 1-D model. Therefore, the 3-D model provides a more accurate and reliable approach to understand the regimes and transitions of elastic modulus dispersion and attenuation, and thus has great importance in interpreting the measurements of frequency-dependent properties of rocks in the laboratory.

Funder

China Scholarship Council

National Science and Technology Major Project

China National Petroleum Corporation

National Natural Science Foundation of China

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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