Fluid-Driven Tensile Fracture and Fracture Toughness in Nash Point Shale at Elevated Pressure

被引:29
|
作者
Gehne, S. [1 ]
Inskip, N. D. Forbes [2 ]
Benson, Philip M. [1 ]
Meredith, P. G. [3 ]
Koor, N. [1 ]
机构
[1] Univ Portsmouth, Sch Earth & Environm Sci, Rock Mech Lab, Portsmouth, Hants, England
[2] Heriot Watt Univ, Lyell Ctr, Edinburgh, Midlothian, Scotland
[3] UCL, Dept Earth Sci, Rock & Ice Phys Lab, London, England
关键词
CONFINING PRESSURE; TEMPERATURE; MECHANICS; GROWTH; ROCK;
D O I
10.1029/2019JB018971
中图分类号
P3 [地球物理学]; P59 [地球化学];
学科分类号
0708 ; 070902 ;
摘要
A number of key processes, both natural and anthropogenic, involve the fracture of rocks subjected to tensile stress, including vein growth and mineralization, and the extraction of hydrocarbons through hydraulic fracturing. In each case, the fundamental material property of mode-I fracture toughness must be overcome in order for a tensile fracture to propagate. While measuring this parameter is relatively straightfonvard at ambient pressure, estimating fracture toughness of rocks at depth, where they experience confining pressure, is technically challenging. Here we report a new analysis that combines results from thick-walled cylinder burst tests with quantitative acoustic emission to estimate the mode-I fracture toughness (K-IC) of Nash Point Shale at confining pressure simulating in situ conditions to approximately 1-km depth. In the most favorable orientation, the pressure required to fracture the rock shell (injection pressure, P-inj) increases from 6.1 MPa at 2.2-MPa confining pressure (P-c), to 34 MPa at 20-MPa confining pressure. When fractures are forced to cross the shale bedding, the required injection pressures are 30.3 MPa (at P-c = 4.5 MPa) and 58 MPa (P-c= 20 MPa), respectively. Applying the model of Abou-Sayed et al. (1978, https://doi.org/10.1029/JB083iB06p02851) to estimate the initial flaw size, we calculate that this pressure increase equates to an increase in K-IC from 0.36 to 4.05 MPa.m(1/2) as differential fluid pressure (P-inj - P-c) increases from 3.2 to 22.0 MPa. We conclude that the increasing pressure due to depth in the Earth will have a significant influence on fracture toughness, which is also a function of the inherent anisotropy.
引用
收藏
页数:11
相关论文
共 50 条
  • [22] Fracture toughness of high-performance concrete on three-point bending notched beams at elevated temperature
    Djaknoun, S.
    Ouedraogo, E.
    Benyahia, A. Ahmed
    THERMEC 2009 SUPPLEMENT: 6TH INTERNATIONAL CONFERENCE ON PROCESSING & MANUFACTURING OF ADVANCED MATERIALS, 2010, 89-91 : 159 - +
  • [23] Experimental Study on Fracture Toughness of Shale Based on Three-Point Bending Semi-Circular Disk Samples
    Wen, Jinglin
    Yin, Yongming
    Zhang, Mingming
    PROCESSES, 2024, 12 (07)
  • [24] Tensile properties and fracture toughness of Zr-2.5Nb alloy pressure tubes of IPHWR220
    Khandelwala, H. K.
    Singh, R. N.
    Bind, A. K.
    Sunil, S.
    Chakravartty, J. K.
    Ghosh, A.
    Dhandharia, P.
    Bhachawat, D.
    Shekhar, R.
    Kumar, Sunil Jai
    NUCLEAR ENGINEERING AND DESIGN, 2015, 293 : 138 - 149
  • [25] Effects of Temperature on the Relationship between Mode-I Fracture Toughness and Tensile Strength of Rock
    Feng, Gan
    Wang, Xiao-chuan
    Kang, Yong
    Luo, Shi-gang
    Hu, Yao-qing
    APPLIED SCIENCES-BASEL, 2019, 9 (07):
  • [26] Development of 3-D Curved Fracture Swarms in Shale Rock Driven by Rapid Fluid Pressure Buildup: Insights From Numerical Modeling
    Li, Sanbai
    Zhang, Dongxiao
    GEOPHYSICAL RESEARCH LETTERS, 2021, 48 (08)
  • [27] Comparison of shale fracture toughness obtained from scratch test and nanoindentation test
    Liu, Kouqi
    Jin, Zhijun
    Zakharova, Natalia
    Zeng, Lianbo
    Haghshenas, Meysam
    Adeyilola, Adedoyin
    Saurabh, Suman
    INTERNATIONAL JOURNAL OF ROCK MECHANICS AND MINING SCIENCES, 2023, 162
  • [28] Effect of elevated temperatures on the residual fracture toughness of epoxy modified concrete
    Abdel-Fattah, H
    El Hawary, MM
    Falah, A
    KUWAIT JOURNAL OF SCIENCE & ENGINEERING, 2000, 27 (01): : 29 - 40
  • [29] Numerical investigation of mode I fracture toughness anisotropy of deeply textured shale
    Cui, Zhuang
    Hou, Bing
    GEOENERGY SCIENCE AND ENGINEERING, 2024, 237
  • [30] Numerical simulation of high-pressure rock tensile fracture experiments: Evidence of an increase in fracture energy with pressure?
    Fialko, YA
    Rubin, AM
    JOURNAL OF GEOPHYSICAL RESEARCH-SOLID EARTH, 1997, 102 (B3) : 5231 - 5242