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Difficulties of hydrofracturing in sandstone - experimental study

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EN
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EN
Hydrofracturing in sandstone is not an easy task. Sandstone is porous; fluid dissipation is common hence unable to obtain breakdown pressures in certain flow rates (0.0000005-0.0001 m3/s). The higher flow rate (0.00025 m3/s) is ascertained to determine the fracturing pressures. Due to this, fracture propagation and delineation are observed (Satya Subrahmanyam, 2022) [1]. To enhance, an experimental method is adopted by carrying out 6 Hydrofracturing tests in a borehole comprising sandstone. A high flow rate of 0.00025 m3/s and viscosity 0.001 Pa s is applied. Later, the fracture simulation was run on 12 core samples collected from the same depths in a lab. The fluid flow rates of 0.0000005-0.0000015 m3/s, viscosity 0.27 Pa- second, pore pressure of 4 MPa, confining pressures in vertical-12 MPa and horizontal 6, 18, 24, 30 MPa is applied. The fracture traces and the stress results exhibit a difference of 80°-300° observed in both cases. The major principle stress orientation obtained in the borehole is 20° and 40°. In lab tests with confining horizontal pressures at 6 and 18 MPa, it is 120° and 130°, and at 24 and 30 MPa is 20°. This indicated that there is fracture delineation occurred. It is observed in the higher flow rate and confining pressures.
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Strony
160--176
Opis fizyczny
Bibliogr. 66 poz.
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Bibliografia
  • [1] Satya Subrahmanyam D. Hydraulic fracturing in porous and fractured rocks. Emerging technologies in hydraulic fracturing and gas flow modelling. Intech Open 2022:57-91. https://doi.org/10.5772/intechopen.106552.
  • [2] Enever JR, Wooltorton BA. Experince with hydraulic fracturing as a means of estimating in situ stress in Australian coal basin sediments. Hydraulic fracturing stress measurements. Proceedings of a workshop December 1981:2-5.
  • [3] Baumgartner J, Rummel F. Experience with ‘Fracture pressurization tests’ as a stress measuring technique in a jointed rock mass. Int J Rock Mech Min Sci Geomech Abstr 1989;26: 661-71.
  • [4] Beugelsdijk LJL, Pater CJD, Sato K. Experimental hydraulic fracture propagation in a multi fractured medium. In: SPE 59419, presented at the 2000 SPE asia pacific conference. Yokohama: Japan; 2000.
  • [5] Bush D, Barton D. Application of small-scale hydraulic fracturing for stress measurements of bedded salt. Minneapolis, Minnesota, USA. Proceedings of the 2nd international workshop on Hydraulic fracturing stress measurements. 1988. p. 344-66.
  • [6] Gronseth JM, Key. Instantaneous shut-in pressure and its relationship to the minimum in situ stress. Hydraulic fracturing stress measurements. Proceedings of a workshop December 1981:2-5.
  • [7] Warpinski N. Determining the minimum in-situ stress from hydraulic fracturing through perforations. Minneapolis, Minnesota, USA. Proceedings of the 2nd international workshop on Hydraulic fracturing stress measurements. 1988. p. 800-40.
  • [8] John D, McLennan, Jean Claude. Do instantaneous shut-in pressure accurately represent the minimum principal stress. Hydraulic fracturing stress measurements. Proceedings of a workshop December 1981:2-5.
  • [9] Zhou J, Jin Y, Chen M. Experimental investigation of hydraulic fracturing in random natural fractured blocks. Int J Rock Mech Min Sci 2010;47:1193-9.
  • [10] Clarkson CR, Solano N, Bustin RM, Bustin AMM, Chalmers GRL, He L. Pore structure characterization of north American shale gas reservoirs using USANS/SANS, gas adsorption, and mercury intrusion. Fuel 2013;103:606-16.
  • [11] Haimson BC. Hydrofracturing stress measurements in the blue ridge belt of South Carolina. EOS 1976;57:289.
  • [12] Roegiers JC, McLennan JC, Schultz LD. In situ stress determination in northeastern Ohio, Proc, 23rd U.S. Symposium on Rock Mechanics. Berkeley, CA: University of California; 1982.
  • [13] McClure Mark, Kang Charles, Fowler Garrett. Optimization and design of next-generation geothermal systems created by multistage hydraulic fracturing. The Woodlands, Texas, USA. SPE hydraulic fracturing technology conference and exhibition. 2022. https://doi.org/10.2118/209186-MS.
  • [14] Bredehoeft JD, Wolff RG, Keys WS, Shuter E. Hydraulic fracturing to determine the regional in situ stress field, Piceance Basin, Colorado. Geol Soc Am Bull 1976;87:250-8.
  • [15] Haimson BC, Fairhurst C. In situ stress determination at great depth by means of hydraulic fracturing. Proceedings of 11th US symposium of rock mechanics. Berkeley: SME/ AIME; 1970. p. 559-84.
  • [16] Haimson BC, Rummel F. Hydrofracturing stress measurements in the Iceland research drilling project drill hole at reydarfjordur, Iceland. J Geophys Res Solid Earth 1982; 87(B8):6631-49. https://doi.org/10.1029/JB087iB08p06631.
  • [17] Huang BX. Research on theory and application of hydraulic fracture weakening for coal-rock mass. Doctoral thesis. China University of Mining and Technology; 2008.
  • [18] Zhou J, Chen M, Jin Y, Zhang GQ. Analysis of fracture propagation behaviour and fracture geometry using a triaxial fracturing system in naturally fractured reservoirs. J Rock Mech Min Sci 2008;45:1143-52.
  • [19] Zhou J, Chen M, Jin Y, Zhang GQ. Experiment of propagation mechanism of hydraulic fracture in multi-fracture reservoir. J China Univ Petrol (Ed Nat Sci) 2008;32(4):51-4.
  • [20] Stephen H, Hickman M, Zoback D. The Interpretation of hydraulic fracturing pressure-time data for in situ stress determination. Hydraulic fracturing stress measurements. Proceedings of a workshop December 1981:2-5.
  • [21] Haimson BC, Fairhurst C. Initiation and extension of hydraulic fractures in rocks. September Soc Petrol Eng J 1967: 10-8.
  • [22] Jeffrey RG, Bunger A, Lecampion B, Zhang X, Chen ZR, As AV, Allison DP, Beer WD, Dudley JW, et al. Measuring hydraulic fracture growth in naturally fractured rock. In: SPE 124919, presented at the SPE annual technical conference and exhibition. New Orleans, USA: Louisiana; 2009.
  • [23] Cornet FH, Burlet D. Stress field determinations in France by hydraulic tests in boreholes. J Geophys Res 1992;97: 11829-49.
  • [24] Cornet FH, Valette B. In situ Stress determination from hydraulic test data. J Geophys Res 1984;97:11527-37.
  • [25] Doe T, Boyce G. Orientation of hydraulic fracturing in salt under hydrostatic and non-hydrostatic stresses. Minneapolis, Minnesota, USA. Proceedings of the 2nd international workshop on Hydraulic fracturing stress measurements. 1988. p. 366-93.
  • [26] Du CZ. Study on theoretics of hydraulic fracturing in coal bed and its applications. Doctoral thesis. China University of Mining and Technology; 2008.
  • [27] Haimson BC. Unpublished PhD thesis. In: Hydraulic fracturing in porous and nonporous rock and its potential for determining in situ stresses at great depth. University of Minnesota; 1968. p. 234.
  • [28] Rummel F, Jung R. Hydraulic fracturing stress measurements near the Hohenzollern-Graben-structure, SW Germany. Pure and Applied Geophysics PAGEOPH 1975;113: 321-30. https://doi.org/10.1007/bf01592921.
  • [29] Stephansson O. State of the art and future plans about hydraulic fracturing stress measurements in Sweden. Proceedings of Hydraulic fracturing stress measurements. Monterey, Washington. DC: National Academy Press; 1983. p. 260-7.
  • [30] Soliman MY, East L, Augustine J. Fracturing design aimed at enhancing fracture complexity. Barcelona, Spain. In: SPE 130043, presented at the SPE EUROPEC/EAGE annual conference and exhibition; 2010.
  • [31] Cheung LS, Haimson BC. Hydraulic fracturing stress measurements in intact and prefractured rock - a laboratory study. Minneapolis, Minnesota, USA. Proceedings of the 2nd international workshop on Hydraulic fracturing stress measurements. 1988. p. 542-83.
  • [32] Enever JR. Ten years experience with hydraulic fracture stress measurement in Australia. Minnesota: Proc. of the Second International Workshop on Hydraulic Fracture Stress Measurements; 1988. p. 1-92.
  • [33] Evans. Some problems in estimating horizontal stress magnitudes in thrust regimes. Proceedings of the second International Workshop on Hydraulic Fracturing stress Measurements 1988;e1:275.
  • [34] Haimson BC. A simple method for estimating in-situ stress at great depths. ASTM Spec. Tech. Publ. Field Testing and Instrumentation of Rock 1974;554:156-82.
  • [35] Kirsch EG. Die Theorie der Elastizitat und die Bedürfnisse der Festigkeitslehre. Z Des Vereines Dtsch Ingenieure 1898; 42:797-807.
  • [36] Szymanski J, Harper T, Daly M. Application of hydrofracturing to the characterization of geologic conditions. Minneapolis, Minnesota, USA. Proceedings of the 2nd international workshop on Hydraulic fracturing stress measurements. 1988. p. 393-410.
  • [37] Wand Y, Miskimins JL. Experimental investigations of hydraulic fracture growth complexity in slickwater fracturing treatments. San Antonio, Texas. In: SPE137515, presented at the SPE tight gas completions conference; 2010.
  • [38] Weng X, Kresse O, Cohen C, Wu R, Gu H. Modeling of hydraulic fracture network propagation in a naturally fractured formation. the woodlands, Texas. In: SPE 140253, presented at the SPE hydraulic fracturing technology conference and exhibition; 2011.
  • [39] Zhang X, Jiang TX, Jia CG, Zhang BP, Zhou J. Physical simulation of hydraulic fracturing of shale gas reservoir. Petrol Drill Tech 2013;41(2):70-4.
  • [40] Wawersik WR, Stone CM. Character and interpretation of pressure records in anelastic rock with examples of hydraulic fracturing tests in salt. Minneapolis, Minnesota, USA. Proceedings of the 2nd international workshop on Hydraulic fracturing stress measurements. 1988. p. 342-4.
  • [41] Rummel F, Hansen J. Interpretation of hydrofrac recordings using a simple fracture mechanics simulation model. Int J Rock Mech Min Sci Geomech Abstr 1989;26:483-8.
  • [42] Cornet FH, Julien P. Stress determination from hydraulic test and focal mechanisms of induced seismicity. Int J Rock Mech Min Sci Geomech Abstr 1989;26:235-8.
  • [43] Haimson BC. Earthquake related stresses at Rangley. Colorado. Proceedings of 14th US symposium of Rock mechanics. ASCE: University Park; 1973. p. 689-708.
  • [44] Sengupta S, Subrahmanyam DS, Joseph D, Sinha RK, Kar A. Measurement of in-situ stress by hydrofracture method and investigations on redistribution of in-situ stress due to local tectonics and methods of workings at Tandsi and Thesgora mines. WCL to devise a suitable support plan SSR. Coal S&T Project No. MT-117. 2004. NIRM-GS-99-01.
  • [45] Guo Tiankui, Zhang Shicheng, Qu Zhanqing, Tong Zhou, Xiao Yongshun, Gao Jun. Experimental study of hydraulic fracturing for shale by stimulated reservoir volume. Fuel 2014;128:373-80. https://doi.org/10.1016/j.fuel.2014.03.029.
  • [46] Gowd TN, Govardhan M. Stimulation of groundwater borewells by hydraulic fracturing - a simulation study. No. NGRI-87-Environ-32. Report T.R.; 1987.
  • [47] Damani A, Sharma A, Sondergeld CH, Rai CS. Mapping of hydraulic fractures under triaxial stress conditions in laboratory experiments using acoustic emissions. San Antonio, Texas, USA. In: SPE 159604, presented at the SPE annual technical conference and exhibition; 2012.
  • [48] Cipolla CL, Warpinski NR, Mayerhofer MJ, Lolon EP, Vincent MC. The relationship between fracture complexity, reservoir properties, and fracture treatment design. Denver, Colorado. In: SPE 115769, presented at the SPE annual technical conference and exhibition; 2010.
  • [49] Casas LA, Miskimins JL, Black AD, Green SJ. Laboratory hydraulic fracturing test on a rock with artificial discontinuities. San Antonio, Texas, USA. In: SPE 103617, presented at the SPE annual technical conference and exhibition; 2006.
  • [50] Amadei B, Stephansson O. Rock stress and its measurement. 1st ed. Springer Dordrecht Publisher; 1997XV. https://doi.org/10.1007/978-94-011-5346-1.
  • [51] Price Jones A, Whittle RA, Hobbs NH. Measurement of in situ rock stresses by overcoming. January. Tunnels and tunneling. 1984. p. 12.
  • [52] Reinecker J, Stephansson O, Zang A. Stress analysis from overcoring data. World stress map project. Guidelines: Overcoring; 2008.
  • [53] Chen Z, Xue CJ, Jiang TX, Qing YM. Proposals for the application of fracturing by stimulated reservoir volume (SRV) in shale gas wells in China. Nat Gas Ind 2010;30(10): 30-2.
  • [54] Doe T. Hydraulic fracturing and overcoring stress measurements in a deep borehole at Stripa test mine. Proceedings of 22nd US symposium of rock mechanics. Cambridge (US): MIT Publications; 1981. p. 373-8.
  • [55] Rummel F. Fracture mechanics approach to hydraulic fracturing stress measurements. Fracture mechanics of rocks. London: Academic Press; 1986. p. 217-39.
  • [56] Mayerhofer MJ, Lolon EP, Warpinski NR, Cipolla CL, Walser D, Rightmire CM. What is stimulated rock volume (SRV)?. Fort Worth, Texas. In: SPE 119890, presented at the 2008 SPE shale gas production conference; 2008.
  • [57] Subrahmanyam DS. Evaluation of hydraulic fracturing and overcoring methods to determine and compare the in situ stress parameters in porous rock mass. Geotech Geol Eng 2019;37:4777-87. https://doi.org/10.1007/10706-019-00937-7.
  • [58] Subrahmanyam DS, Shyam G, Vamshidhar, Shankar K Vikram. Hydraulic fracturing stress measurements in fractured rock mass at a hydroelectric project, India. 7th International Symposium on In-situ Rock Stress. Tampere, Finland; 2016. p. 298-307.
  • [59] Byerlee JD. The fracture strength and frictional strength of Weber sandstone. Inc. J. Rock Mich. Min. Sci. 1975;12:1-4.
  • [60] Peshcherenko Aleksandra, Bekerov Ilmir, Chuprakov Dimitry, Abdrazakov Dmitriy. Fast-running model for high-volume hydraulic fracturing. J Petrol Sci Eng 2022;213(110430). https://doi.org/10.1016/j.petrol.2022.110430. ISSN 0920-4105.
  • [61] Cornet FH. Stress determination from hydraulic tests on preexisting fractures - the HTPF method. In: Proc.
  • Int.Symp.on rock stress and rock stress measurements. Stockholm, Lulea, Sweden: Centek Publ.; 1986. p. 301-12.
  • [62] Liu JZ, Gao LS, Zhang X. Observations on the acoustic emission in an in-house hydrofracturing simulation experiment. Acta Pet Sin 1990;11(2):73-8.
  • [63] Subrahmanyam DS, Shyam G, Vamshidhar K, Vikram S. State-of-the-art technique to conduct in situ stress measurements in deep proposed coal-mining blocks of Singareni collieries, India. Curr Sci 2020;119(6):1027-30. https://doi.org/10.18520/cs/v119/i6/1027-1030.
  • [64] Hubbert MK, Willis DG. Mechanics of hydraulic fracturing. Transactions of Society of Petroleum Engineers of AIME 1957;210:153-63.
  • [65] Sjoberg J, Christiansson R, Hudson JA. ISRM Suggested methods for rock stress estimation-Part 2: overcoring methods. Int J Rock Mech Min Sci 2003;40:999-1010.
  • [66] Timoshenko SP, Goodier JN. Theory of elasticity. United Engineering trustees Inc; 1934. p. 567.
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Bibliografia
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