Effective elastic properties of rocks with transversely isotropic background permeated by a set of vertical fracture cluster

Author:

Shuai Da1ORCID,Stovas Alexey2ORCID,Wei Jianxin3,Di Bangrang3ORCID,Zhao Yang1ORCID

Affiliation:

1. China University of Petroleum (Beijing), State Key Laboratory of Petroleum Resources and Prospecting, Unconventional Petroleum Research Institute, Beijing 102249, China.(corresponding author).

2. Norwegian University of Science and Technology (NTNU), Department of Geoscience and Petroleum, S.P.Andersens veg 15A Trondheim 7031, Norway..

3. China University of Petroleum (Beijing), State Key Laboratory of Petroleum Resources and Prospecting, CNPC Key Laboratory of Geophysical Exploration, Beijing 102249, China..

Abstract

The linear slip theory is gradually being used to characterize seismic anisotropy. If the transversely isotropic medium embeds vertical fractures (VFTI medium), the effective medium becomes orthorhombic. The vertical fractures, in reality, may exist in any azimuth angle that leads the effective medium to be monoclinic. We apply the linear slip theory to create a monoclinic medium by only introducing three more physical meaning parameters: the fracture preferred azimuth angle, the fracture azimuth angle, and the angular standard deviation. First, we summarize the effective compliance of a rock as the sum of the background matrix compliance and the fracture excess compliance. Then, we apply the Bond transformation to rotate the fractures to be azimuthally dependent, introduce a Gaussian function to describe the fractures’ azimuth distribution assuming that the fractures are statistically distributed around the preferred azimuth angle, and average each fracture excess compliance over the azimuth. We investigate the influence of the fracture azimuth distribution domain and angular standard deviation on the effective stiffness coefficients, elastic wave velocities, and anisotropy parameters. Our results show that the fracture cluster parameters have a significant influence on the elastic wave velocities. The fracture azimuth distribution domain and angular standard deviation have a bigger influence on the orthorhombic anisotropy parameters in the [Formula: see text] plane than in the [Formula: see text] plane. The fracture azimuth distribution domain and angular standard deviation have little influence on the monoclinic anisotropy parameters responsible for the P-wave NMO ellipse and have a significant influence on the monoclinic anisotropy parameters responsible for the S1- and S2-wave NMO ellipse. The effective monoclinic can degenerate into the VFTI medium.

Funder

the National Science and Technology Major Project

the Science Foundation of China University of Petroleum, Beijing

the National Key RD Program of China

the Strategic Cooperation Technology Projects of CNPC and CUPB

Publisher

Society of Exploration Geophysicists

Subject

Geochemistry and Petrology,Geophysics

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