1887

Abstract

Summary

We investigate the challenges involved in the use of polymer flooding as a chemical enhanced oil recovery (cEOR) technique for improving mobility ratio and enhancing macroscopic sweep efficiency. Flexible coiled polymers in porous media undergo stretching in a spatially heterogeneous structure. Due to the viscoelasticity of these polymers, they stretch continuously depending on their previous deformation until their elastic limit is reached and relaxation occurs. Previous research has proposed that at a certain critical flow rate, the relaxation of polymers cause an increase in viscosity and in turn a better mobility for enhancing microscopic sweep in porous media. However, others have reported that the increased viscosity in porous media is not so much related to the elasticity but more on the normal stresses that occur when polymers are sheared in porous media flow. One similar fact is that as increased viscosity is observed an enhanced pressured drop occurs and the flow becomes highly unstable even at laminar flow regime. This unstable flow is termed the elastic instability or turbulence but the details of this kind of turbulence, its consequences and applicability on the impact of oil recovery is not understood. In this work, we experimentally investigate the flow behaviors of flexible coiled polymers of hydrolyzed polyacrylamide (HPAM) based on a single pore throat geometry using a microfluidic device. The aim is to adequately parameterize the effects of the normal stress difference in shear and extension as a function of the geometry and intrinsic characteristics of the polymer solutions at different Deborah (De) numbers. Hence, we carry out pressure drop and particle image velocimetry experiments and results showed a critical De at which polymer viscosity increases as well as the normal stress difference. It was also observed that the flow resistance might be a function of both the elasticity and the normal stresses in shear flow, however, extensional stresses cannot be neglected.

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2019-04-08
2024-04-19
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References

  1. Clarke, A., Howe, A. M., Mitchell, J., Staniland, J., and Hawkes, L. A.
    [2016] How Viscoelastic-Polymer Flooding Enhances Displacement Efficiency. SPE Journal.
    [Google Scholar]
  2. De, S., Krishnan, P., van der Schaaf, J., Kuipers, J. A. M., Peters, E. A. J. F., and Padding, J. T.
    [2018] Viscoelastic effects on residual oil distribution in flows through pillared microchannels. Journal of Colloid and Interface Science, 510, 262–271.
    [Google Scholar]
  3. De, S., Kuipers, J. A. M., Peters, E. A. J. F., and Padding, J. T.
    [2017] Viscoelastic flow simulations in random porous media. Non Newtonian Fluid Mechanics.
    [Google Scholar]
  4. De, S., van der Schaaf, J., Deen, N. G., Kuipers, J. A. M., Peters, E. A. J. F., and Padding, J. T.
    [2017] Lane change in flows through pillared microchannels. Physics of Fluids, 29(11).
    [Google Scholar]
  5. Del Giudice, F., Tassieri, M., Oelschlaeger, C., and Shen, A. Q.
    [2017] When Microrheology, Bulk Rheology, and Microfluidics Meet: Broadband Rheology of Hydroxyethyl Cellulose Water Solutions. Macromolecules, 50(7), 2951–2963.
    [Google Scholar]
  6. Erias, A., Karaka, C., Grajetzki, C., Carton, J., Paulos, M., Jantunen, P., and Valenzuela, J. M.
    [2016] World Energy Resources. World Energy Council, 6–46.
    [Google Scholar]
  7. Green, D. W. and Willhite, P. G.
    [1998] Enhanced oil recovery. F. Poettmann & F. Stalkup, Texas.
    [Google Scholar]
  8. Groisman, A. and Steinberg, V.
    [2000] Elastic turbulence in a polymer solution flow. Letters to Nature, 3809(1996), 53–55.
    [Google Scholar]
  9. Howe, A. M., Clarke, A., and Giernalczyk, D.
    [2015] Flow of concentrated viscoelastic polymer solutions in porous media: Effect of MW and concentration on elastic turbulence onset in various geometries. Soft Matter, 11(32), 6419–6431.
    [Google Scholar]
  10. Kawale, D., Boukany, P. E., Kreutzer, M. T., Rossen, W. R., and Zitha, P. L. J.
    [2015] Contribution of Pore-Shape to the Polymer Apparent Viscosity. Soft Matter.
    [Google Scholar]
  11. Kawale, D., Marques, E. E., Zitha, P. L. J. J., Kreutzer, M. T., Rossen, W. R., and Boukany, P. E.
    [2017] Elastic instabilities during the flow of hydrolyzed polyacrylamide solution in porous media: Effect of pore-shape and salt. Soft Matter, 13(4), 765–775.
    [Google Scholar]
  12. Lake, L. W.
    [1996] Enhanced Oil Recovery. Enhanced Oil Recovery, 600.
    [Google Scholar]
  13. Mitchell, J., Lyons, K., Howe, A. M., and Clarke, A.
    [2016] Viscoelastic polymer flows and elastic turbulence in three-dimensional porous structures. Soft Matter, 12(2), 460–468.
    [Google Scholar]
  14. Ober, T. J., Haward, S. J., Pipe, C. J., Soulages, J., and McKinley, G. H.
    [2013] Microfluidic extensional rheometry using a hyperbolic contraction geometry. Rheologica Acta, 52(6), 529–546.
    [Google Scholar]
  15. Perkins, T. T.
    [1997] Single Polymer Dynamics in an Elongational Flow. Science, 276(5321), 2016–2021.
    [Google Scholar]
  16. Pope, T. L., Olsen, T., Powers, B., and Wilson, A.
    [2004] Expanding Applications for Viscoelastic Surfactants. Oilf. Rev., 10–23.
    [Google Scholar]
  17. Rellegadla, S., Prajapat, G., and Agrawal, A.
    [2017] Polymers for enhanced oil recovery?: fundamentals and selection criteria. Applied Microbiology Biotechnology, 4387–4402.
    [Google Scholar]
  18. Samanta, A., Bera, A., Ojha, K., and Mandal, A.
    [2010] Effects of alkali, salts, and surfactant on rheological behavior of partially hydrolyzed polyacrylamide solutions. Journal of Chemical and Engineering Data, 55(10), 4315–4322.
    [Google Scholar]
  19. Schroeder, C. M., Babcock, H. P., Shaqfeh, E. S. G., and Chu, S.
    [2003] Observation of Polymer Conformation Hysteresis in Extensional Flow. Science, 301(5639), 1515–1519.
    [Google Scholar]
  20. Seright, R. S., Fan, T., Wavrik, K., and Recovery, P.
    [2011] New Insights Into Polymer Rheology in Porous Media. SPE, 24–28.
    [Google Scholar]
  21. Thielicke, W. and Stamhuis, E. J.
    [2014] PIVlab–Towards User-friendly, Affordable and Accurate Digital Particle Image Velocimetry in MATLAB. Journal of Open Research Software, 2.
    [Google Scholar]
  22. Wang, D., Cheng, J., Yang, Q., Wenchao, G., Qun, L., and Chen, F.
    [2000] Viscous-Elastic Polymer Can Increase Micro-Scale Displacement Efficiency in Cores. Acta Petrol. Sinica, 21(5), 4A, 45–51.
    [Google Scholar]
  23. Zamani, N., Kaufmann, R., Kosinski, P., and Skauge, A.
    [2015] Mechanisms of Non-Newtonian Polymer Flow Through Porous Media Using Navier–Stokes Approach. Journal of Dispersion Science and Technology, 36(3), 310–325.
    [Google Scholar]
  24. Zhang, G., SPE, and Seright, R.
    [2015] Hydrodynamic Retention and Rheology of EOR Polymers in Porous Media. SPE, 13–15.
    [Google Scholar]
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