z-logo
open-access-imgOpen Access
Simulation of tectonic stress field and prediction of fracture distribution in shale reservoir
Author(s) -
Wenlong Ding,
Weite Zeng,
Ruyue Wang,
Kai Jiu,
Zhe Wang,
Yaxiong Sun,
Xinghua Wang
Publication year - 2021
Publication title -
nauki o zemle i nedropolʹzovanie
Language(s) - English
Resource type - Journals
eISSN - 2686-7931
pISSN - 2686-9993
DOI - 10.21285/2686-9993-2021-44-4-397-407
Subject(s) - oil shale , geology , shear (geology) , geotechnical engineering , fracture (geology) , tectonics , deformation (meteorology) , shale gas , ultimate tensile strength , stress field , finite element method , petroleum engineering , petrology , seismology , materials science , structural engineering , engineering , composite material , paleontology , oceanography
In this paper, a finite element-based fracture prediction method for shale reservoirs was proposed using geostress field simulations, uniaxial and triaxial compression deformation tests, and acoustic emission geostress tests. Given the characteristics of tensile and shear fractures mainly developed in organic-rich shales, Griffith and Coulomb – Mohr criteria were used to calculate shale reservoirs' tensile and shear fracture rates. Furthermore, the total fracture rate of shale reservoirs was calculated based on the ratio of tension and shear fractures to the total number of fractures. This method has been effectively applied in predicting fracture distribution in the Lower Silurian Longmaxi Formation shale reservoir in southeastern Chongqing, China. This method provides a new way for shale gas sweet spot optimization. The simulation results have a significant reference value for the design of shale gas horizontal wells and fracturing reconstruction programs.

The content you want is available to Zendy users.

Already have an account? Click here to sign in.
Having issues? You can contact us here