Hydraulic fracturing (HF) technology can safely and efficiently increase the permeability of coal seam, which is conducive to CBM exploration and prevent coal and gas outburst. However, conventional HF fractures tend to expand in the direction of maximum principal stress, which may be inconsistent with the direction of fracturing required by the project. Therefore, the increased direction of coal seam permeability is different from that expected. To solve these problems, PFC2D software simulation is used to study directional hydraulic fracturing (DHF), that is the combination of slotting and hydraulic fracturing. The effects of different slotting angles (θ), different horizontal stress difference coefficients (K) and different injection pressures on DHF fracture propagation are analyzed. The results show that the DHF method can overcome the dominant effect of initial in-situ stress on the propagation direction of hydraulic fractures and control the propagation of fractures along and perpendicular to the slotting direction when θ, K and liquid injection pressure are small. When the DHF fracture is connected with manual slotting, the pressure will shake violently, and the fracturing curve presents a multi-peak type. The increase and decrease of particle pressure around the fracturing hole reflect the process of pressure accumulation and fracture propagation at the fracture tip respectively. Compared with conventional HF, DHF can not only shorten the fracturing time but also make the fracture network more complex, which is more conducive to gas flow. Under the action of in-situ stress, the stress between slots will increase to exceed the maximum horizontal principal stress. Moreover, with the change in fracturing time, the local stress of the model will also change. Hydraulic fractures are always expanding to the area with large local stress. The research results could provide certain help for DHF theoretical research and engineering application.
Acknowledgements
This work was supported by National Natural Science Foundation of China (52130409, 52004291, 51874314), the Fundamental Research Funds for the Central Universities (2022YJSAQ03, 2022XJAQ02).
| [1] |
K. Wang, F. Du, G. Wang, Investigation of gas pressure and temperature effects on the permeability and steady-state time of Chinese anthracite coal: an experimental study, J. Nat. Gas Sci. Eng. 40 (2017) 179-188.
|
| [2] |
Yk Liu, Fb Zhou, L. Liu, C. Liu, Sy Hu, An experimental and numerical investigation on the deformation of overlying coal seams above double-seam extraction for controlling coal mine methane emissions, Int. J. Coal Geol. 87 (2) (2011) 139-149.
|
| [3] |
H. Wang, Y. Cheng, L. Yuan, Gas outburst disasters and the mining technology of key protective seam in coal seam group in the Huainan coalfield, Nat. Hazards 67 (2) (2013) 763-782.
|
| [4] |
H. He, L. Dou, J. Fan, T. Du, X. Sun, Deep-hole directional fracturing of thick hard roof for rockburst prevention, Tunn. Undergr. Space Technol. 32 (2012) 34-43.
|
| [5] |
B. Huang, Y. Wang, S. Cao, Cavability control by hydraulic fracturing for top coal caving in hard thick coal seams, Int. J. Rock Mech. Min. Sci. 74 (2015) 45-57.
|
| [6] |
X.-S. Li, C.-G. Xu, Y. Zhang, X.-K. Ruan, G. Li, Y. Wang, Investigation into gas production from natural gas hydrate: a review, Appl. Energy 172 (2016) 286-322.
|
| [7] |
T-g Fan, G-q Zhang, Laboratory investigation of hydraulic fracture networks in formations with continuous orthogonal fractures, Energy 74 (2014) 164-173.
|
| [8] |
A. Josifovic, J.J. Roberts, J. Corney, B. Davies, Z.K. Shipton, Reducing the environmental impact of hydraulic fracturing through design optimisation of positive displacement pumps, Energy 115 (2016) 1216-1233.
|
| [9] |
T. Lu, H. Yu, T. Zhou, J. Mao, B. Guo, Improvement of methane drainage in high gassy coal seam using waterjet technique, Int. J. Coal Geol. 79 (1-2) (2009) 40-48.
|
| [10] |
Y. Lu, Y. Liu, X. Li, Y. Kang, A new method of drilling long boreholes in low permeability coal by improving its permeability, Int. J. Coal Geol. 84 (2) (2010) 94-102.
|
| [11] |
W.C. Zhu, C.H. Wei, S. Li, J. Wei, M.S. Zhang, Numerical modeling on destress blasting in coal seam for enhancing gas drainage, Int. J. Rock Mech. Min. Sci. 59 (2013) 179-190.
|
| [12] |
Y. Cheng, Y. Lu, Z. Ge, L. Cheng, J. Zheng, W. Zhang, Experimental study on fracture propagation control and mechanism analysis of directional hydraulic fracturing, Fuel 218 (2018) 316-324.
|
| [13] |
T. Wang, W. Zhou, J. Chen, X. Xiao, Y. Li, X. Zhao, Simulation of hydraulic fracturing using particle flow method and application in a coal mine, Int. J. Coal Geol. 121 (2014) 1-13.
|
| [14] |
J. Zhang, Numerical simulation of hydraulic fracturing coalbed methane reservoir, Fuel 136 (2014) 57-61.
|
| [15] |
L.-P. Yi, C.-X. Yang, R. Chen, J.-Y. Zhu, X.-H. Zhu, Z.-Z. Yang, et al., Phase field model for hydraulic fracture propagation in porous medium and numerical simulation analysis of hydraulic fracture propagation in a layered reservoir, Arabian J. Geosci. 14 (16) (2021).
|
| [16] |
M.M. Hossain, M.K. Rahman, S.S. Rahman, Hydraulic fracture initiation and propagation: roles of wellbore trajectory, perforation and stress regimes, J. Petrol. Sci. Eng. 27 (3-4) (2000) 129-149.
|
| [17] |
J. Huang, D.V. Griffiths, S.-W. Wong, In situ stress determination from inversion of hydraulic fracturing data, Int. J. Rock Mech. Min. Sci. 48 (3) (2011) 476-481.
|
| [18] |
J. Huang, D.V. Griffiths, S.-W. Wong, Initiation pressure, location and orientation of hydraulic fracture, Int. J. Rock Mech. Min. Sci. 49 (2012) 59-67.
|
| [19] |
D.Q. Li, S. Zhang, S.A. Zhang, Experimental and numerical simulation study on fracturing through interlayer to coal seam, J. Nat. Gas Sci. Eng. 21 (2014) 386-396.
|
| [20] |
H. Zhao, M. Chen, Extending behavior of hydraulic fracture when reaching formation interface, J. Petrol. Sci. Eng. 74 (1-2) (2010) 26-30.
|
| [21] |
L.-P. Yi, H. Waisman, Z.-Z. Yang, X.-G. Li, A consistent phase field model for hydraulic fracture propagation in poroelastic media, Comput. Methods Appl. Mech. Eng. (2020) 372.
|
| [22] |
X. Fu, G. Li, Z. Huang, Y. Liang, Z. Xu, X. Jin, Experimental and numerical study of radial lateral fracturing for coalbed methane, J. Geophys. Eng. 12 (5) (2015) 875-886.
|
| [23] |
L. Liu, L. Li, D. Elsworth, S. Zhi, Y. Yu, The impact of oriented perforations on fracture propagation and complexity in hydraulic fracturing, Processes 6 (11) (2018).
|
| [24] |
Y. Liu, B. Xia, X. Liu, A novel method of orienting hydraulic fractures in coal mines and its mechanism of intensified conduction, J. Nat. Gas Sci. Eng. 27 (2015) 190-199.
|
| [25] |
Q. Li, B. Lin, C. Zhai, A new technique for preventing and controlling coal and gas outburst hazard with pulse hydraulic fracturing: a case study in Yuwu coal mine, China, Nat. Hazards 75 (3) (2015) 2931-2946.
|
| [26] |
C. Song, Y. Lu, H. Tang, Y. Jia, A method for hydrofracture propagation control based on non-uniform pore pressure field, J. Nat. Gas Sci. Eng. 33 (2016) 287-295.
|
| [27] |
Y. Xu, C. Zhai, L. Hao, X. Sun, Y. Liu, X. Li, et al., The pressure relief and permeability increase mechanism of crossing-layers directional hydraulic fracturing and its application, Ismsse 2011 (2011).
|
| [28] |
Y. Cheng, Z. Lu, X. Du, X. Zhang, M. Zeng, A fracture propagation control study of directional hydraulic fracturing based on hydraulic slotting and a nonuniform pore pressure field, Geofluids 2020 (2020) 1468-8115.
|
| [29] |
J.Q. Deng, C. Lin, Q. Yang, Y.R. Liu, Z.F. Tao, H.F. Duan, Investigation of directional hydraulic fracturing based on true tri-axial experiment and finite element modeling, Comput. Geotech. 75 (2016) 28-47.
|
| [30] |
F. Yan, B. Lin, C. Zhu, C. Shen, Q. Zou, C. Guo, et al., A novel ECBM extraction technology based on the integration of hydraulic slotting and hydraulic fracturing, J. Nat. Gas Sci. Eng. 22 (2015) 571-579.
|
| [31] |
A.D. Taleghani, M. Gonzalez, A. Shojaei, Overview of numerical models for interactions between hydraulic fractures and natural fractures: challenges and limitations, Comput. Geotech. 71 (2016) 361-368.
|
| [32] |
T. Wang, W. Hu, D. Elsworth, W. Zhou, W. Zhou, X. Zhao, et al., The effect of natural fractures on hydraulic fracturing propagation in coal seams, J. Petrol. Sci. Eng. 150 (2017) 180-190.
|
| [33] |
M.R. Ajamzadeh, V. Sarfarazi, H. Haeri, H. Dehghani, The effect of micro parameters of PFC software on the model calibration, Smart Struct. Syst. 22 (6) (2018) 643-662.
|
| [34] |
H. Shimizu, S. Murata, T. Ishida, The distinct element analysis for hydraulic fracturing in hard rock considering fluid viscosity and particle size distribution, Int. J. Rock Mech. Min. Sci. 48 (5) (2011) 712-727.
|
| [35] |
M.K. Hubbert, D.G. Willis, Mechanics of hydraulic fracturing, Pet. Trans. AIME 201 (1957) 153-166.
|
| [36] |
T. Liu, B. Lin, W. Yang, Q. Zou, J. Kong, F. Yan, Fracturing process and stress field evolution in specimen containing combined flaw under uniaxial compression, Rock Mech. Rock Eng. 49 (8) (2016) 3095-3113.
|
| [37] |
T. Liu, B. Lin, Q. Zou, C. Zhu, C. Guo, J. Li, Investigation on mechanical properties and damage evolution of coal after hydraulic slotting, J. Nat. Gas Sci. Eng. 24 (2015) 489-499.
|
| [38] |
T. Liu, B. Lin, Q. Zou, C. Zhu, F. Yan, Mechanical behaviors and failure processes of prefractureed specimens under uniaxial compression: a perspective from microscopic displacement patterns, Tectonophysics 672 (2016) 104-120.
|
| [39] |
X. Zhuang, J. Chun, H. Zhu, A comparative study on unfilled and filled fracture propagation for rock-like brittle material, Theor. Appl. Fract. Mech. 72 (2014) 110-120.
|