Papers
Topics
Authors
Recent
Gemini 2.5 Flash
Gemini 2.5 Flash
167 tokens/sec
GPT-4o
7 tokens/sec
Gemini 2.5 Pro Pro
42 tokens/sec
o3 Pro
4 tokens/sec
GPT-4.1 Pro
38 tokens/sec
DeepSeek R1 via Azure Pro
28 tokens/sec
2000 character limit reached

CFD-DEM modeling of fracture initiation with polymer injection in granular media (2402.02106v1)

Published 3 Feb 2024 in cs.CE

Abstract: We numerically study mechanisms and conditions of fracture initiation in granular material induced by non-Newtonian polymer solutions. A coupling approach of computational fluid dynamics and discrete element method is utilized to model the fluid flow in a porous medium. The flow behavior of polymer solutions and drag force acting on particles are calculated based on a power-law model. The adequacy of the numerical model is confirmed by comparing the results with a laboratory experiment. The numerical results are consistent with the experimental data presenting similar tendencies in dimensionless parameters that incorporate fluid flow rate, rheology, peak pressure, and confining stress. Results show that fluid flow rate, rheology, and solid material characteristics strongly influence fracture initiation behavior. Injecting a more viscous guar-based solution results in wider fractures induced by a grain displacement. A less viscous XG-based solution creates more linear fractures dominated by an infiltration. The peak pressure ratio between two fluids is higher in rigid material compared to softer material. Finally, the dimensionless parameters $1/\Pi_1$ and $\tau_2$, which consider fluid and solid material properties accordingly, are good indicators in determining fracture initiation induced by shear-thinning fluids. Our numerical results show that fracture initiation occurs above $1/\Pi_1 = 0.06$ and $\tau_2 = 2\cdot 10{-7}$.

Definition Search Book Streamline Icon: https://streamlinehq.com
References (35)
  1. Multirate coupling for flow and geomechanics applied to hydraulic fracturing using an adaptive phase-field technique. In SPE Reservoir Simulation Conference, page D031S010R001. SPE, 2017.
  2. A review of fracturing fluid systems used for hydraulic fracturing of oil and gas wells. Journal of Applied Polymer Science, 131(16), 2014.
  3. Mechanistic study on silica nanoparticles-assisted guar gum polymer flooding for enhanced oil recovery in sandstone reservoirs. Colloids and Surfaces A: Physicochemical and Engineering Aspects, 598:124833, 2020.
  4. B Bohloli and CJ De Pater. Experimental study on hydraulic fracturing of soft rocks: Influence of fluid rheology and confining stress. Journal of Petroleum Science and Engineering, 53(1-2):1–12, 2006.
  5. An iterative staggered scheme for phase field brittle fracture propagation with stabilizing parameters. Computer Methods in Applied Mechanics and Engineering, 361:112752, 2020.
  6. Power-law flow through a packed tube. Industrial & Engineering Chemistry Fundamentals, 4(4):422–426, 1965.
  7. Investigation of void fraction schemes for use with cfd-dem simulations of fluidized beds. Industrial & Engineering Chemistry Research, 57(8):3002–3013, 2018.
  8. Fracture containment in soft sands by permeability or strength contrasts. In SPE Hydraulic Fracturing Technology Conference and Exhibition, pages SPE–119634. SPE, 2009.
  9. Rosa Di Felice. The voidage function for fluid-particle interaction systems. International journal of multiphase flow, 20(1):153–159, 1994.
  10. Dem modeling of hydraulic fracturing in permeable rock: influence of viscosity, injection rate and in situ states. Acta Geotechnica, 13:1187–1202, 2018.
  11. Experimental study of hydraulic fracturing in unconsolidated materials. In SPE international symposium and exhibition on formation damage control. OnePetro, 2012.
  12. Granular fingering in fluid injection into dense granular media in a hele-shaw cell. Physical review letters, 108(25):258001, 2012.
  13. Parameters controlling hydraulic fracturing and fracture tip-dominated leakoff in unconsolidated sands. In SPE Annual Technical Conference and Exhibition. OnePetro, 2012.
  14. Surface energy and the contact of elastic solids. Proceedings of the royal society of London. A. mathematical and physical sciences, 324(1558):301–313, 1971.
  15. Coarse-graining of cfd-dem for simulation of sand production in the modified cohesive contact model. Gas Science and Engineering, page 204976, 2023a.
  16. Experimental and numerical study of the effect of polymer flooding on sand production in poorly consolidated porous media. Preprint, 2023b.
  17. Hydraulic fracturing in unconventional gas reservoirs: Risks in the geological system, part 2: Modelling the transport of fracturing fluids, brine and methane. Environmental earth sciences, 70:3855–3873, 2013.
  18. Pressure and fluid-driven fracture propagation in porous media using an adaptive finite element phase field model. Computer Methods in Applied Mechanics and Engineering, 305:111–132, 2016.
  19. A comparison of discrete element simulations and experiments for ‘sandpiles’ composed of spherical particles. Powder Technology, 160(3):219–228, 2005.
  20. Grain-scale modeling of polymer-driven fracture initiation and wellbore injectivity. In SPE Improved Oil Recovery Conference, page D021S034R001. SPE, 2020.
  21. Simulation of polymer injection in granular media: implications of fluid-driven fractures, water quality, and undissolved polymers on polymer injectivity. SPE Journal, 28(01):289–300, 2023.
  22. Pressure-controlled injection of guar gum stabilized microscale zerovalent iron for groundwater remediation. Journal of contaminant hydrology, 181:46–58, 2015.
  23. Experimental study of dnapl displacement by a new densified polymer solution and upscaling problems of aqueous polymer flow in porous media. Journal of Contaminant Hydrology, 252:104120, 2023.
  24. Numerical simulations of sand production in oil wells using the cfd-dem-ibm approach. Journal of Petroleum Science and Engineering, 208:109529, 2022.
  25. Numerical simulations of triaxial compression tests of cemented sandstone. Computers and Geotechnics, 113:103068, 2019.
  26. Sample preparation method of clay-rich sandstone analogue of sandstone reservoirs in kazakhstan. In 50th US Rock Mechanics/Geomechanics Symposium. OnePetro, 2016.
  27. Propagation of toughness-dominated fluid-driven fractures in reactive porous media. International Journal of Rock Mechanics and Mining Sciences, 118:42–51, 2019.
  28. Fluid injection induced fracture initiation based on a resolved cfd-dem approach. In ARMA US Rock Mechanics/Geomechanics Symposium, pages ARMA–2018. ARMA, 2018.
  29. Fluid-driven fractures in granular media: Insights from numerical investigations. Physical Review E, 101(4):042903, 2020.
  30. Coupled hydro-thermo-mechanical modeling of hydraulic fracturing in quasi-brittle rocks using bpm-dem. Journal of Rock Mechanics and Geotechnical Engineering, 9(1):92–104, 2017.
  31. NR Warpinski and LW Teufel. Influence of geologic discontinuities on hydraulic fracture propagation (includes associated papers 17011 and 17074). Journal of Petroleum Technology, 39(02):209–220, 1987.
  32. Ipacs: Integrated phase-field advanced crack propagation simulator. an adaptive, parallel, physics-based-discretization phase-field framework for fracture propagation in porous media. Computer Methods in Applied Mechanics and Engineering, 367:113124, 2020.
  33. Coupled discrete element modeling of fluid injection into dense granular media. Journal of Geophysical Research: Solid Earth, 118(6):2703–2722, 2013.
  34. Experimental investigation of hydraulic fracturing in random naturally fractured blocks. International journal of rock mechanics and mining sciences, 47(7):1193–1199, 2010.
  35. Discrete particle simulation of particulate systems: theoretical developments. Chemical Engineering Science, 62(13):3378–3396, 2007.

Summary

We haven't generated a summary for this paper yet.