Multiscale Fracture Rupture Characteristic Study and Application of Sichuan Shale During Hydraulic Fracturing
DOI:
https://doi.org/10.54097/wcy0yx61Keywords:
Microseismic Monitoring, Acoustic Emission, Unconventional Reservoir, Rupture Size, Hydraulic FracturingAbstract
Microseismic monitoring is a conventional technique used to evaluate the hydraulic fracturing effect according to the temporal and spatial distribution and evolution of located microseismic events (MEs) at the macroscale. It is generally thought that few or no located MEs reflects poor hydraulic fracturing results and that more located MEs indicate a better result, but the variability in rupture behavior at different rupture scales is ignored. This paper focuses on the characteristics of multiscale rupture of shale by combining laboratory acoustic emission and field microseismic monitoring. The results demonstrate that shear slippage along fractures mainly dominates the rupture behavior. If no pre-existing fracture is present at the microscale, in the laboratory experiment, a rupture mainly occurs along bedding planes, veins and cracks and predominantly slips, which can help develop a fracture network. Because seismic wave energy is related to the rupture scale and stronger MEs are generated by larger ruptures along pre-existing fractures, fault damage zones or isolated small faults, these slippages may cause casing deformation, and the connected fracture networks may result in fluid seepage. A large number of weak MEs are ignored during fracturing because too little energy is released from small ruptures to be effectively detected, but they usually indicate a fracture network and greatly contribute to gas production in the long term. Therefore, ruptures in shale generally occur from the microscale to macroscale and express similar rupture behavior at each scale but result in different seismic characteristics, located ME distributions, fracture evolutions and engineering effects.
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[1] Lefèvre, M., Guglielmi, Y., Henry, Dick, P., & Gout, C., 2016. Calcite veins as an indicator of fracture dilatancy and connectivity during strike-slip faulting in Toarcian shale (Tournemire tunnel, Southern France), J Struct Geol, 83,73-84.
[2] Javadpour, F., Fisher, D., & Unsworth, M., 2007. Nanoscale gas flow in shale gas sediments, J.Can.Pet.Technol., 46 (10), 55-61.
[3] Jahandideh, A., & Jafarpour, B., 2016. Optimization of hydraulic fracturing design underspatially variable shale fracability, J.Pet.Sci.Eng.,138, 174-188.
[4] Zhang, D., Ranjith, P.G., & Perera, M.S.A., 2016. The brittleness indices used in rock mechanics and their application in shale hydraulic fracturing: a review, J. Pet. Sci. Eng.,143, 158–170.
[5] Kivi, I. R., Ameri, M., & Molladavoodi H., 2018. An experimental investigation on deformation and failure behavior of carbonaceous Garau shale in Lurestan Basin, west Iran: Application in shale gas development, J Nat Gas Sci Eng, 55,135-153.
[6] Dutler, N., Nejati, M., Valleya, B., Amannc, F., & Molinari, G., 2018. On the link between fracture toughness, tensile strength, and fracture process zone in anisotropic rocks, Eng Fract Mech, 201,56-79.
[7] Figueiredo, B., Tsang, C. F., Rutqvist, J., & Niemi, A., 2017. Study of hydraulic fracturing processes in shale formations with complex geological settings, J.Pet.Sci.Eng., 152, 361-374.
[8] Mutlu, O., & Bobet, A., 2005. Slip initiation on frictional fractures, Eng Fract Mech, 72(5), 729-747.
[9] Dehghan, A. N., 2020. An experimental investigation into the influence of pre-existing natural fracture on the behavior and length of propagating hydraulic fracture, Eng Fract Mech, 240, 107330.
[10] Shan, K., Zhang, Y., Zheng, Y., Cheng, Y., & Yang, Y., 2021. Effect of fault distribution on hydraulic fracturing: Insights from the laboratory, Renew.Energ., 163, 1817-1830.
[11] Zhong, J., Liu, S., Ma, Y., Yin, C., Liu, C., Li, Z., Liu, X., & Li, Y., 2015. Macro-fracture mode and micro-fracture mechanism of shale. Pet. Explor. Dev., 42(2), 269-276.
[12] Wei, H., Li, L., Wu, X., & Hu, Y., 2011. The Analysis and Theory Research on the Factor of Multiple Fractures During Hydraulic Fracturing of CBM Wells, Prog. Earth Planet. Sci., 3, 231-237.
[13] Yin C., 2017. Fault detection based on microseismic events, Appl. Geophys., 14(3), 363-371.
[14] Rutqvist, J., Rinaldi, A. P., Cappa, F., & Moridis, G. J., 2015. Modeling of Fault Reactivation and Induced Seismicity During Hydraulic Fracturing of Shale-Gas Reservoirs, J.Pet.Sci.Eng., 127, 377-386.
[15] Lei, X., Huang, D., Su, J., Jiang, G., Wang, X., Wang, H., Guo, X., & Fu, H., 2017. Fault reactivation and earthquakes with magnitudes of up to Mw4.7 induced by shale gas hydraulic fracturing in Sichuan Basin, China, Sci.Rep., 7, 7971.
[16] Zoback, M.D., & Gorelick, S.M., 2012. Earthquake triggering and large-scale geologic storage of carbon dioxide, P.Natl.Acad.Sci.USA, 109(26), 10164-10168.
[17] Ellsworth, W. L., 2013. Injection-induced earthquakes, Science, 341, 1225942.
[18] Lei, X., Ma, S., Chen, W., Pang, C., Zeng, J., & Jiang, B., 2013. A detailed view of the injection-induced seismicity in a natural gas reservoir in Zigong, southwestern Sichuan Basin China, J.Geophys.Res.Solid Earth, 118(8), 4296-4311.
[19] Chen, Z., Shi, L. & Xiang, D., 2017. Mechanism of casing deformation in the Changning-Weiyuan national shale gas project demonstration area and countermeasures, Natural gas industry B, 6(1), 1-6.
[20] Yin, F., Xiao, Y., Han, Li., & Wu, X., 2018. Quantifying the induced fracture slip and casing deformation in hydraulically fracturing shale gas wells, J Nat Gas Sci Eng, 60, 103-111.
[21] Wu, S., Ge, H., Wang, X., & Meng, F., 2017. Shale Failure Processes and Spatial Distribution of Fractures Obtained by AE Monitoring, J Nat Gas Sci Eng, 41,82-89.
[22] Rutledge, J., Phillips, W. S. & Mayerhofer, M. J., 2004. Faulting Induced by Forced Fluid Injection and Fluid Flow Forced by Faulting: An Interpretation of Hydraulic-Fracture Microseismicity, Carthage Cotton Valley Gas Field, Texas, Bull.Seismol.Soc.Am., 94(5), 1817-1830.
[23] Shao,Y., Huang, X., & Xing, Y., 2017. An integrated study on the sensitivity and uncertainty associated with the evaluation of stimulated reservoir volume (SRV), J.Pet.Sci.Eng., 159, 903-914.
[24] Dehghan, A. N., Goshtasbi, K., Ahangari, K., Jin, Y., & Bahmani, A., 2017. 3D numerical modeling of the propagation of hydraulic fracture at its intersection with natural (pre- existing) fracture, Rock Mech Rock Eng, 50, 367-386.
[25] Tan, P., Jin, Y., Han, K., Hou, B., Chen, M., Guo, X., Guo, X., & Gao, J., 2017. Analysis of hydraulic fracture initiation and vertical propagation behavior in laminated shale formation, Fuel, 206, 482-493.
[26] Hou, B., Zhang, R., Zeng, Y., Fu, W., Muhadasi, Y., & Chen, M., 2018. Analysis of hydraulic fracture initiation and propagation in deep shale formation with high horizontal stress difference. J.Pet.Sci.Eng., 170, 231-243.
[27] Chen, P., Han Q., Ma T., & Lin D., 2015. The mechanical properties of shale based on micro-indentation test, Pet.Explor.Dev., 42(5), 723–732.
[28] Dehghan, A. N., Goshtasbi, K., Ahangari K., & Jin, Y., 2015. Mechanism of fracture initiation and propagation using a tri-axial hydraulic fracturing test system in naturally fractured reservoirs, Eur.J.Environ, 20(5), 560-585.
[29] Tan, P., Pang, H., Zhang, R., Jin, Y., Zhou, Y., Kao, J., & Fan, M., 2020. Experimental investigation into hydraulic fracture geometry and proppant migration characteristics for southeastern Sichuan deep shale reservoirs, J.Pet.Sci.Eng., 184, 106517.
[30] Wu F., Yan Y., Yin C., 2016. Real-time microseismic monitoring technology for hydraulic fracturing in shale gas reservoirs: A case study from the Southern Sichuan Basin. Natural gas industry, 36(11), 46-50.
[31] Cebry, S. B. L.& McLaskey, G. C., 2021. Seismic swarms produced by rapid fluid injection into a low permeability laboratory fault, Earth Planet.Sci.Lett., 557, 116726.
[32] Ouenes, A., Nicholas, M. U., & Aimene, Y. E., 2016. Using geomechanical modeling to quantify the impact of natural fractures on well performance and microseismicity: application to the wolfcamp, permian basin, reagan county, texas. Interpretation, 4(2), SE1-SE15.
[33] Rogers, S., 2003. Critical stress-related permeability in fractured rocks. Geological Society London Special Publications, 209(1), 7-16.
[34] Xu, J., Guo, C., Teng, W., Wei, M., & Jiang, R., 2015a. Production performance analysis of tight oil/gas reservoirs considering stimulated reservoir volume using elliptical flow. J Nat Gas Sci Eng, 26, 827-839.
[35] Xu, J., Guo, C., Wei, M., & Jiang, R., 2015b. Production performance analysis for composite shale gas reservoir considering multiple transport mechanisms. J Nat Gas Sci Eng, 26, 382-395.
[36] Yong, Y. K., Maulianda,M., Wee, S. C., Mohshim, D., Elraies, K. A., Wong, R. CK., Gates, I. D., & Eaton, D., 2018. Determination of stimulated reservoir volume and anisotropic permeability using analytical modelling of microseismic and hydraulic fracturing parameters, J Nat Gas Sci Eng, 58, 234-240.
[37] Li, X., Lei, X., Li, Q., & Chen, D., 2021. Influence of bedding structure on stress-induced elastic wave anisotropy in tight sandstones, Journal of Rock Mechanics and Geotechnical Engineering, 13(1), 98-113.
[38] Lei, X., Nishizawa, O., & Satoh, T., 1992. Fractal Structure of the Hypocenter Distributions and Focal Mechanism Solutions of Acoustic Emission in Two Granites of Different Grain Sizes, Journal of Physics of the Earth, 40(6), 617-634.
[39] Sellers, E. J., Kataka, M. O., & Linzer, L. M., 2003. Source parameters of acoustic emission events and scaling with miningϋinduced seismicity, J.Geophys.Res.Solid Earth, 108(B9), B000670.
[40] Zhai, H., Chang, X., Wang, Y., Lei, X., & Xue, Z., 2020. Analysis of acoustic emission events induced during stress unloading of a hydraulic fractured Longmaxi shale sample, J. Pet. Sci. Eng., 189,106990.
[41] Liang, C., Yu, Y., Yang, Y., Kang, L., Yin, C., & Wu, F., 2016. Joint inversion of source location and focal mechanism of microseismicity,
[42] Geophysics, 81(2), KS103-KS111. Castle, R. J., 1994. A theory of normal moveout, Geophysics, 59(6), 983-999.
[43] Gudmundsson, A., 2004. Effects of Young's modulus on fault displacement, CR GEOSCI, 336(1), 85-92.
[44] Chen, H., Meng, X., Niu, F., Tang, Y., Yin, C., & Wu, F., 2018. Microseismic monitoring of stimulating shale gas reservoir in SW China: 2. Spatial clustering controlled by the preexisting faults and fractures, J.Geophys.Res. Solid Earth, 123, 1659–1672.
[45] Yin, C., 2017. The research and application of rupture characteristic for microseismic epicenter , Ph.D. thesis, Chengdu University of Technology.
[46] Seth, S., & Michael, W., 2002. An introduction to seismology, earthquakes and earth structure, Britain: Blackwell Publishing.
[47] Zhang, Y., 2008. Study on the Inversion Methods of source rupture process, Ph.D. thesis, Peking University.
[48] Barbour, A. J., 2015. Pore pressure sensitivities to dynamic strains: observations in active tectonic regions, J. Geophys. Res. Solid Earth., 120(8), 5863-5883.
[49] Gu, Y., Ding, W., Tian, Q., Xu, S., Zhang, W., Zhang, B., & Jiao, B., 2020. Developmental characteristics and dominant factors of natural fractures in lower Silurian marine organic-rich shale reservoirs: A case study of the Longmaxi formation in the Fenggang block, southern China, J.Pet.Sci.Eng., 192, 107277.
[50] Bai, M., 2016. Why are brittleness and fracability not equivalent in designing hydraulic fracturing in tight shale gas reservoirs, Petroleum, 2(1), 1-19.
[51] Rutqvist J., Graupner, B., Guglielmi, Y., Kim, T., Maßmann, J., Nguyen, T. S., Park, J. W., Shiu, W., Urpi, L., Yoon, J. S., Ziefle, G., & Birkholzer, J., 2020. An international model comparison study of controlled fault activation experiments in argillaceous claystone at the Mont Terri Laboratory, Int.J.Rock.Mech.Min., 136, 104505.
[52] Ding, W. L., Li, C., Li, C. Y., Xu, C. C., Jiu, K., Zeng, W. T., & Wu, L. M., 2012. Fracture development in shale and its relationship to gas accumulation. Geosci. Front., 3(1), 97-105.
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