Theoretical modelling of seismic dispersion, attenuation and frequency-dependent anisotropy in a fluid-saturated porous rock with intersecting fractures

Author:

Guo Junxin123,Zhao Luanxiao4ORCID,Chen Xiaofei123,Yang Zhifang5,Li Hongbing5,Liu Chao6

Affiliation:

1. Shenzhen Key Laboratory of Deep Offshore Oil and Gas Exploration Technology, Southern University of Science and Technology, Shenzhen 518055, China

2. Department of Earth and Space Sciences, Southern University of Science and Technology, Shenzhen 518055, China

3. Southern Marine Science and Engineering Guangdong Laboratory (Guangzhou), Guangzhou 511458, China

4. School of Ocean and Earth Sciences, Tongji University, Shanghai, 200092, China

5. Research Institute of Petroleum Exploration and Development, Beijing, 100083, China

6. Aramco Americas: Aramco Research Center-Houston, Houston, TX 77084, USA

Abstract

SUMMARY Detection of intersecting open fractures is an important task in many earth science domains. To quantify the seismic responses in the fluid-saturated porous rock with intersecting open fractures, we develop a theoretical model based on Biot's equations of dynamic poroelasticity. The seismic dispersion, attenuation and frequency-dependent anisotropy due to joint effects of fracture–background wave-induced fluid flow (FB-WIFF), and fracture–fracture wave-induced fluid flow (FF-WIFF), as well as elastic scattering are investigated. The numerical results on a fluid-saturated porous and fractured sandstone show that the characteristic frequency of FF-WIFF is controlled by fracture connectivity and fluid viscosity. Variations of fracture connectivity and fluid viscosity may result in the coupling of FF-WIFF with FB-WIFF or elastic scattering. When the fracture connectivity tends to zero, the FF-WIFF vanishes and FB-WIFF becomes most significant. Besides fracture connectivity and fluid viscosity, the fracture geometry and fluid bulk modulus also affect the magnitudes of these three mechanisms and their interplay. Due to effects of these three mechanisms, the P-wave anisotropy varies greatly with frequencies. Furthermore, the fracture intersection angle also influences the P-wave anisotropy significantly. Our model agrees well with previous models in the frequency limits and for the special case with parallel fractures. Since our model incorporates the effects of FF-WIFF, it has a great potential to be applied in the detection for effective fracture networks for fluid flow.

Funder

National Natural Science Foundation of China

Shenzhen Science and Technology Innovation Program

Southern Marine Science and Engineering Guangdong Laboratory

Leading Talents Program of Guangdong Province

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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