Influence of Polymer Retention on Non-Newtonian Flow in Porous Media

被引:0
|
作者
Ranjbar, M. [1 ]
Schaffie, M. [1 ]
机构
[1] Technical University of Clausthal, Clausthal-Zellerfeld, Germany
来源
| 2002年 / Urban Verlag Hamburg/Wien GmbH卷 / 28期
关键词
Copolymers - Hydrodynamics - Non Newtonian flow - Porous materials - Viscosity;
D O I
暂无
中图分类号
学科分类号
摘要
This paper reports the results of an experimental study aimed at analyzing the effect of polymer retention on flow behavior in porous media. Using 6 partially hydrolyzed polyacrylamides (PAAm) and a vinylamide, acrylamide and vinylsulfonate copolymer (VAVS), core flow tests were performed to quantify the effect of polymer retention on viscoelastic effects of polymer solution in porous media. To achieve the maximum efficiency of polymer solutions, experimental conditions of core flood tests were optimized. From the experimental results, it appears thai the maximum retention increases with increasing polymer concentration, flow velocity and also with decreasing core permeability. It is also influenced by the hydrolisation degree of polyacrylamides in the same manner as the hydrodynamic radii (rh), intrinsic viscosity (n) and overlap concentration (C*) of polymers. To quantify the viscoelastic effects in porous media, the concept of the critical Deborah-number and the onset and maximum of shear thickening in terms of two critical flow rates were applied. It was found that, the transitions from Newtonian flow via shear thinning into shear thickening shifts to lower flow rate with increasing polymer retention and with increasing core permeability. Practical information is provided on the critical flow rates, magnitude of shear thickening and their dependency on hydrolysis degree of PAAm and polymer retention.
引用
收藏
相关论文
共 50 条
  • [31] Localization in Flow of Non-Newtonian Fluids Through Disordered Porous Media
    Seybold, H. J.
    Eberhard, U.
    Secchi, E.
    Cisne, R. L. C., Jr.
    Jimenez-Martinez, J.
    Andrade, R. F. S.
    Araujo, A. D.
    Holzner, M.
    Andrade, J. S., Jr.
    FRONTIERS IN PHYSICS, 2021, 9
  • [32] Numerical modeling of non-Newtonian fluid flow in fractures and porous media
    Bao, Kai
    Lavrov, Alexandre
    Nilsen, Halvor Moll
    COMPUTATIONAL GEOSCIENCES, 2017, 21 (5-6) : 1313 - 1324
  • [33] Numerical modeling of non-Newtonian fluid flow in fractures and porous media
    Kai Bao
    Alexandre Lavrov
    Halvor Møll Nilsen
    Computational Geosciences, 2017, 21 : 1313 - 1324
  • [34] Nanoparticle transport within non-Newtonian fluid flow in porous media
    Shende, Takshak
    Mangal, Deepak
    Conrad, Jacinta C.
    Niasar, Vahid
    Babaei, Masoud
    PHYSICAL REVIEW E, 2022, 106 (01)
  • [35] Displacement of non-Newtonian compressible fluids in plane porous media flow
    Ugarelli, R.
    Bottarelli, M.
    Di Federico, V.
    ADVANCES IN FLUID MECHANICS VII, 2008, 59 : 235 - 245
  • [36] Models for flow of non-Newtonian and complex fluids through porous media
    Pearson, JRA
    Tardy, PMJ
    JOURNAL OF NON-NEWTONIAN FLUID MECHANICS, 2002, 102 (02) : 447 - 473
  • [37] A NEW CORRELATION FOR NON-NEWTONIAN FLOW THROUGH POROUS-MEDIA
    ALFARISS, TF
    COMPUTERS & CHEMICAL ENGINEERING, 1989, 13 (4-5) : 475 - 482
  • [38] Non-Newtonian flow characterization of heavy crude oil in porous media
    Dong X.
    Liu H.
    Wang Q.
    Pang Z.
    Wang C.
    Journal of Petroleum Exploration and Production Technology, 2013, 3 (01) : 43 - 53
  • [39] Lattice Boltzmann simulation of the flow of non-Newtonian fluids in porous media
    Boek, ES
    Chin, J
    Coveney, PV
    INTERNATIONAL JOURNAL OF MODERN PHYSICS B, 2003, 17 (1-2): : 99 - 102
  • [40] Traveling Wave Solutions for Non-Newtonian Foam Flow in Porous Media
    Weslley da Silva Pereira
    Grigori Chapiro
    Transport in Porous Media, 2023, 148 : 247 - 265