TY - JOUR
T1 - Simulation-Based Unitary Fracking Condition and Multiscale Self-Consistent Fracture Network Formation in Shale
AU - Ceng, Qinglei
AU - Wang, Tao
AU - Liu, Zhanli
AU - Zhuang, Zhuo
N1 - Publisher Copyright:
© 2017 by ASME.
PY - 2017/5/1
Y1 - 2017/5/1
N2 - Hydraulic fracturing (fracking) technology in gas or oil shale engineering is highly developed last decades, but the knowledge of the actual fracking process is mostly empirical and makes mechanicians and petroleum engineers wonder: Why fracking works? (BaÅ 3/4ant et al., 2014, "Why Fracking Works," ASME J. Appl. Mech., 81(10), p. 101010) Two crucial issues should be considered in order to answer this question, which are fracture propagation condition and multiscale fracture network formation in shale. Multiple clusters of fractures initiate from the horizontal wellbore and several major fractures propagate simultaneously during one fracking stage. The simulation-based unitary fracking condition is proposed in this paper by extended finite element method (XFEM) to drive fracture clusters growing or arresting dominated by inlet fluid flux and stress intensity factors. However, there are millions of smeared fractures in the formation, which compose a multiscale fracture network beyond the computation capacity by XFEM. So, another simulation-based multiscale self-consistent fracture network model is proposed bridging the multiscale smeared fractures. The purpose of this work is to predict pressure on mouth of well or fluid flux in the wellbore based on the required minimum fracture spacing scale, reservoir pressure, and proppant size, as well as other given conditions. Examples are provided to verify the theoretic and numerical models.
AB - Hydraulic fracturing (fracking) technology in gas or oil shale engineering is highly developed last decades, but the knowledge of the actual fracking process is mostly empirical and makes mechanicians and petroleum engineers wonder: Why fracking works? (BaÅ 3/4ant et al., 2014, "Why Fracking Works," ASME J. Appl. Mech., 81(10), p. 101010) Two crucial issues should be considered in order to answer this question, which are fracture propagation condition and multiscale fracture network formation in shale. Multiple clusters of fractures initiate from the horizontal wellbore and several major fractures propagate simultaneously during one fracking stage. The simulation-based unitary fracking condition is proposed in this paper by extended finite element method (XFEM) to drive fracture clusters growing or arresting dominated by inlet fluid flux and stress intensity factors. However, there are millions of smeared fractures in the formation, which compose a multiscale fracture network beyond the computation capacity by XFEM. So, another simulation-based multiscale self-consistent fracture network model is proposed bridging the multiscale smeared fractures. The purpose of this work is to predict pressure on mouth of well or fluid flux in the wellbore based on the required minimum fracture spacing scale, reservoir pressure, and proppant size, as well as other given conditions. Examples are provided to verify the theoretic and numerical models.
KW - multiscale self-consistent fracture network formation
KW - recovery efficiency prediction
KW - shale gas
KW - stimulated reservoir volume
KW - Unitary fracking condition
UR - https://www.scopus.com/pages/publications/85016505915
U2 - 10.1115/1.4036192
DO - 10.1115/1.4036192
M3 - Article
AN - SCOPUS:85016505915
SN - 0021-8936
VL - 84
JO - Journal of Applied Mechanics, Transactions ASME
JF - Journal of Applied Mechanics, Transactions ASME
IS - 5
M1 - 051004
ER -