Expansion Characteristics and Creep Test of New Curing Expansion Material for Gas Extraction Boreholes
Abstract
:1. Introduction
2. Methodology
2.1. Physical Model of “Concentric Ring” Strengthening Sealing
2.2. Mechanical Model of “Concentric Ring” Strengthening Sealing
- (1)
- The coal body around the drilling hole is homogeneous and continuous, and is an isotropic ideal elastic–plastic body with a plasticity condition of Mohr–Coulomb guidelines.
- (2)
- The self-weight of the coal body around the borehole is not considered, and the horizontal stress of the original rock is uniformly distributed.
- (3)
- Drilling is considered to be horizontally arranged and sufficiently long, with a circular cross-section and a lateral pressure coefficient of 1 around the borehole. The stress in the coal and rock mass is isotropic and isobaric.
- (4)
- Regardless of the damage caused by the drilling of the “protective wall rock hole ring” section, drilling and grouting reinforcement are carried out simultaneously.
3. Results and Discussion
3.1. Numerical Simulation Study of the “Concentric Ring” Strengthening Sealing Model
3.1.1. Study of the Radius of the “Protective Wall Rock Hole Ring”
- (1)
- Model Building
- (2)
- Discussion
3.1.2. Study of the Depth of the “Protective Wall Rock Hole Ring”
- (1)
- Model Building
- (2)
- Discussion
3.2. Field Application of the “Concentric Ring” Strengthening Sealing Method
4. Conclusions
- (1)
- The physical and mechanical model of “concentric ring” reinforcement sealing can improve the stress concentration in the pressure relief area around a sealing section hole, and gas extraction drilling after drilling is more stable in the reinforcement area. This can effectively ensure the stability of the sealing section hole position after drilling, and high-strength sealing materials can effectively resist the deformation and instability of drilling after being loaded. This technology can be further promoted and applied to drilling, sealing, and material development in other fields.
- (2)
- The relationship between the radius of the borehole tunnel and the radius of the peak point of borehole stress was mastered through numerical simulation experiments. It was found that a reasonable reinforcement depth of the “protective wall rock hole ring” in soft coal seam boreholes should be about 0.8–1 times the width of the tunnel. When the diameter of the extraction drilling hole is 100 mm, the optimal reinforcement radius for the “protective wall rock hole ring” should be between 0.16 m and 0.18 m.
- (3)
- “Concentric ring” reinforcement sealing technology can effectively prevent hole collapse at the sealing section of the drilling hole. When combined with highly compressive and deformation-resistant material, the gas concentration in an experimental drilling hole on the 30th and 60th days is 2.5 and more than 3 times that of a cloth-bag–sealing drilling hole with expanded cement, respectively. The negative pressure and pure gas flow rate results of the hole also prove that the “concentric ring” reinforcement sealing effect is better.
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
References
- Xu, C.; Wang, K.; Li, X.; Yuan, L.; Zhao, C.; Guo, H. Collaborative gas drainage technology of high and low level roadways in highly-gassy coal seam mining. Fuel 2022, 323, 124325. [Google Scholar] [CrossRef]
- Liu, Y.; Zhang, C.; Song, Z. Numerical simulation of surface gas venthole extraction and the effect of ventilation mode in pressure-relief mining. Processes 2022, 10, 750. [Google Scholar] [CrossRef]
- Zhou, A.; Xu, Z.; Wang, K.; Wang, Y.; An, J.; Shi, Z. Coal mine gas migration model establishment and gas extraction technology field application research. Fuel 2023, 349, 128650. [Google Scholar] [CrossRef]
- Malozyomov, B.V.; Martyushev, N.V.; Kukartsev, V.V.; Tynchenko, V.S.; Bukhtoyarov, V.V.; Wu, X.; Tyncheko, Y.A.; Kukartsev, V.A. Overview of methods for enhanced oil recovery from conventional and unconventional reservoirs. Energies 2023, 16, 4907. [Google Scholar] [CrossRef]
- Song, Y.; Cheng, H. Opening-dependent phase field model of hydraulic fracture evolution in porous medium under seepage-stress coupling. Theor. Appl. Fract. Mech. 2024, 129, 104205. [Google Scholar] [CrossRef]
- Wei, G.; Wen, H.; Deng, J.; Li, Z.; Fan, S.; Lei, C.; Liu, M.; Ren, L. Enhanced coalbed permeability and methane recovery via hydraulic slotting combined with liquid CO2 injection. Process Saf. Environ. 2021, 147, 234–244. [Google Scholar] [CrossRef]
- Li, Z.; Sun, X.; Zhao, K.; Lei, C.; Wen, H.; Ma, L.; Shu, C. Deformation mechanism and displacement ability during CO2 displacing CH4 in coal seam under different temperatures. J. Nat. Gas Sci. Eng. 2022, 108, 104838. [Google Scholar] [CrossRef]
- Kurlenya, M.V.; Serdyukov, S.V.; Patutin, A.V.; Shilova, T.V. Stimulation of underground degassing in coal seams by hydraulic fracturing method. J. Min. Sci 2017, 53, 975–980. [Google Scholar] [CrossRef]
- Linghu, J.; Chen, H.; Wang, L.; An, F. New technology of mechanical cavitation in a coal seam to promote gas extraction. ACS Omega 2022, 7, 21163–21171. [Google Scholar] [CrossRef]
- Li, C.; Sun, Y.; Wu, S.; Sun, X. Investigation on the gas drainage effectiveness from coal seams by parallel boreholes. Sustainability 2023, 15, 942. [Google Scholar] [CrossRef]
- Zhang, Q.; Wang, E.; Li, Z.; Wang, H.; Xue, Z. Control of directional long borehole on gas drainage and optimal design: Case study. J. Nat. Gas Sci. Eng. 2022, 107, 104766. [Google Scholar] [CrossRef]
- Karacan, C.Ö. Integration of vertical and in-seam horizontal well production analyses with stochastic geostatistical algorithms to estimate pre-mining methane drainage efficiency from coal seams: Blue Creek seam, Alabama. Int. J. Coal Geol. 2013, 114, 96–113. [Google Scholar] [CrossRef] [PubMed]
- Albooyeh, M.; Kivi, I.R.; Ameri, M. Promoting wellbore stability in active shale formations by water-based muds: A case study in Pabdeh shale, Southwestern Iran. J. Nat. Gas Sci. Eng. 2018, 56, 166–174. [Google Scholar] [CrossRef]
- Zhang, L.; Yan, X.; Yang, X.; Tian, Z.; Yang, H. An elastoplastic model of collapse pressure for deep coal seam drilling based on Hoek–Brown criterion related to drilling fluid loss to reservoir. J. Petrol. Sci. Eng. 2015, 134, 205–213. [Google Scholar] [CrossRef]
- Zheng, L.; Su, G.; Li, Z.; Peng, R.; Wang, L.; Wei, P.; Han, S. The wellbore instability control mechanism of fuzzy ball drilling fluids for coal bed methane wells via bonding formation. J. Nat. Gas Sci. Eng. 2018, 56, 107–120. [Google Scholar] [CrossRef]
- Kurlenya, M.V.; Serdyukov, S.V.; Shilova, T.V.; Patutin, A.V. Procedure and equipment for sealing coal bed methane drainage holes by barrier shielding. J. Min. Sci 2014, 50, 994–1000. [Google Scholar] [CrossRef]
- Zhai, C.; Li, Q.G.; Sun, C.; Ni, G.H.; Yang, W. Analysis on borehole instability and control method of pore-forming of hydraulic fracturing in soft coal seam. J. China Coal Soc. 2012, 37, 1431–1436. [Google Scholar]
- Hashemi, S.S.; Melkoumian, N. A strain energy criterion based on grain dislodgment at borehole wall in poorly cemented sands. Int. J. Rock Mech. Min. 2016, 87, 90–103. [Google Scholar] [CrossRef]
- Qi, D.; Li, L.; Jiao, Y. The stress state around an elliptical borehole in anisotropy medium. J. Petrol. Sci. Eng. 2018, 166, 313–323. [Google Scholar] [CrossRef]
- Zhai, C.; Xu, J.; Liu, S.; Qin, L. Investigation of the discharge law for drill cuttings used for coal outburst prediction based on different borehole diameters under various side stresses. Powder Technol. 2018, 325, 396–404. [Google Scholar] [CrossRef]
- Zhang, C.; Li, S.; Lin, H.; Zhang, J.; Yang, H. Numerical simulation on reinforcement technique of instability borehole in gas extraction. J. Saf. Sci. Technol. 2016, 12, 73–77. [Google Scholar]
- Zhou, F.; Sun, Y.; Li, H.; Yu, G. Research on the theoretical model and engineering technology of the coal seam gas drainage hole sealing. J. China Uni. Min. Technol. 2016, 45, 433–439. [Google Scholar]
- Papanastasiou, P.; Thiercelin, M. Modeling borehole and perforation collapse with the capability of predicting the scale effect. Int. J. Geomech 2011, 11, 286–293. [Google Scholar] [CrossRef]
- Wang, Z.; Sun, Y.; Wang, Y.; Zhang, J.; Sun, Z. A coupled model of air leakage in gas drainage and an active support sealing method for improving drainage performance. Fuel 2019, 237, 1217–1227. [Google Scholar] [CrossRef]
- Xiang, X.; Zhai, C.; Xu, Y.; Yu, X.; Wu, S. Hole sealing method of sealing and partitioning integration for gas extraction holes. Saf. Coal Mines 2015, 46, 74–77. [Google Scholar]
- Sun, Y.; Wang, Z. New sealing technology of cross drilling holes under mining influence. Saf. Coal Mines 2009, 40, 21–23. [Google Scholar]
- Wang, K.; Wang, L.; Ju, Y.; Dong, H.; Zhao, W.; Du, C.; Guo, Y.; Lou, Z.; Gao, H. Numerical study on the mechanism of air leakage in drainage boreholes: A fully coupled gas-air flow model considering elastic-plastic deformation of coal and its validation. Process Saf. Environ. 2022, 158, 134–145. [Google Scholar] [CrossRef]
- Wang, K.; Dong, H.; Guo, Y.; Zhao, W.; Shao, B.; Yan, Z.; Wu, J.; Guan, L. Gas drainage performance evaluation in coal under non-uniform stress with different moisture content: Analysis, simulation and field verification. Fuel 2021, 305, 121489. [Google Scholar] [CrossRef]
- Tian, X. Based on drilling cuttings method gas drainage drilling hole sealing length study. Coal Chem. Ind. 2014, 37, 66–69. [Google Scholar]
- Zhang, H.; Wan, Z.; Zhang, Y.; Ma, Z.; Zhang, J.; Liu, S.; Ge, L. Deformation mechanism of narrow coal pillar in the fully-mechanized gob-side entry with incompletely stable overlying strata. J. Min. Saf. Eng. 2016, 33, 692–698. [Google Scholar]
- Xu, M.; Liu, W.J.; Huang, K.J.; Li, L. Soft rock roadway reinforcing support calculation and numerical simulation based on rheological model. Saf. Coal Mines 2014, 45, 34–36. [Google Scholar]
- Yuan, Y.; Wang, W.; Yuan, C.; Yu, W.; Wu, H.; Peng, W. Large deformation failure mechanism of surrounding rock for gateroad under dynamic pressure in deep coal mine. J. China Coal Soc. 2016, 41, 2940–2950. [Google Scholar]
- Song, W.; Shi, M.; Zhao, C.; Di, C. Study on fracture zone of cross fault group in large section rectangular roadway under mining conditions. Coal Sci. Technol. 2018, 46, 117–124. [Google Scholar]
- Zhang, C. Research on Instability Mechanism for Sealing Segment of Boreholes and Reinforcing Dynamic Sealing Techniques. Doctoral Dissertation, China University of Mining and Technology, Xuzhou, China, 2014. [Google Scholar]
Maximum Unit Size | Minimum Unit Size | Maximum Unit Growth Rate | Curvature Factor | Narrow Area Resolution |
---|---|---|---|---|
0.5 m | 0.01 m | 1.5 | 0.6 | 0.5 |
Model | Elastic Modulus/Pa | Poisson’s Ratio | Density/kg·m−3 |
---|---|---|---|
Coal | 2.713 × 109 | 0.3 | 1350 |
Reinforcement section of “protective wall rock hole” | 2.5 × 1010 | 0.15 | 2250 |
Density/kg·m−3 | Bulk Modulus/MPa | Shear Modulus/MPa | Internal Friction Angle/° | Tensile Strength/MPa | Cohesion/MPa |
---|---|---|---|---|---|
1520 | 5400 | 2330 | 29.6 | 0.4 | 0.6 |
Model Grouping | Model A | Model B | Model C | Model D | Model E |
---|---|---|---|---|---|
Tunnel diameter/mm | 5000 | 6000 | 7000 | 8000 | 9000 |
Location of On-Site Research | Radius of Plastic Zone Rp/m | Radius of Pressure Relief Failure Zone Rs/m | Rs/Rp |
---|---|---|---|
Working face 53,103 of the Changcun Coal Mine | 14 | 6 | 0.43 |
Return air lane 603 of the Qujiang Coal Mine | 9 | 3.9 | 0.43 |
Roadway 530 of the Xujiagou Coal Mine | 9.5 | 5.3 | 0.56 |
Fully mechanized mining face 4310 of the Changping Mine | 20 | 10 | 0.50 |
Fully mechanized caving face 6302 of the Baodian Coal Mine | 15 | 6.5 | 0.43 |
Fully mechanized mining face 4101 of the Nanling Mountain Coal Mine | 12 | 6 | 0.50 |
Drill Hole Number | Drilling Type | Drilling Depth/m | Sealing Material | Sealing Section Length/m | Negative Pressure at the Orifice/kPa | Pure Gas Flow Rate/m3·min−1 |
---|---|---|---|---|---|---|
A2 | Coal seam drilling | 126 | Expansive cement | 16 | 7.4 | 0.027 |
A4 | Coal seam drilling | 128 | Expansive cement | 16 | 5.9 | 0.024 |
A7 | Coal seam drilling | 124 | Expansive cement | 16 | 8.7 | 0.031 |
A8 | Coal seam drilling | 130 | Expansive cement | 16 | 6.1 | 0.026 |
B1 | Coal seam drilling | 127 | Expansive cement | 6–16 | 8.5 | 0.038 |
B3 | Coal seam drilling | 129 | Expansive cement | 6–16 | 10.1 | 0.053 |
B4 | Coal seam drilling | 129 | Expansive cement | 6–16 | 9.4 | 0.043 |
B6 | Coal seam drilling | 126 | Expansive cement | 6–16 | 9.0 | 0.041 |
C2 | Coal seam drilling | 125 | New sealing materials | 6–16 | 12.5 | 0.068 |
C3 | Coal seam drilling | 127 | New sealing materials | 6–16 | 13.1 | 0.076 |
C6 | Coal seam drilling | 128 | New sealing materials | 6–16 | 13.2 | 0.077 |
C7 | Coal seam drilling | 125 | New sealing materials | 6–16 | 11.8 | 0.067 |
Disclaimer/Publisher’s Note: The statements, opinions and data contained in all publications are solely those of the individual author(s) and contributor(s) and not of MDPI and/or the editor(s). MDPI and/or the editor(s) disclaim responsibility for any injury to people or property resulting from any ideas, methods, instructions or products referred to in the content. |
© 2024 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (https://creativecommons.org/licenses/by/4.0/).
Share and Cite
Jiang, L.; Bao, R.; Lei, C. Expansion Characteristics and Creep Test of New Curing Expansion Material for Gas Extraction Boreholes. Processes 2024, 12, 293. https://doi.org/10.3390/pr12020293
Jiang L, Bao R, Lei C. Expansion Characteristics and Creep Test of New Curing Expansion Material for Gas Extraction Boreholes. Processes. 2024; 12(2):293. https://doi.org/10.3390/pr12020293
Chicago/Turabian StyleJiang, Lijuan, Ruoyu Bao, and Changkui Lei. 2024. "Expansion Characteristics and Creep Test of New Curing Expansion Material for Gas Extraction Boreholes" Processes 12, no. 2: 293. https://doi.org/10.3390/pr12020293
APA StyleJiang, L., Bao, R., & Lei, C. (2024). Expansion Characteristics and Creep Test of New Curing Expansion Material for Gas Extraction Boreholes. Processes, 12(2), 293. https://doi.org/10.3390/pr12020293