Superposition rheometry of a wormlike micellar fluid

被引:0
|
作者
Sunhyung Kim
Jan Mewis
Christian Clasen
Jan Vermant
机构
[1] University of Leuven,Department of Chemical Engineering
[2] KU Leuven,undefined
来源
Rheologica Acta | 2013年 / 52卷
关键词
Orthogonal superposition; Parallel superposition; Wormlike micellar solution; Giesekus model; Nonlinear rheology;
D O I
暂无
中图分类号
学科分类号
摘要
Oscillatory measurements are often used to explore the nonlinear response of materials, with recently a strong focus on using large amplitude oscillatory experiments. However, the superposition of an oscillatory motion onto a steady-state shear flow is a method where the kinematic history experienced by the sample is simpler. Such a superposed oscillation can be applied either orthogonal or parallel to the main flow direction. Both superposed deformation modes can now be achieved on rotational rheometers equipped with a force-rebalanced transducer, the orthogonal mode requiring a minor modification to the control loop of the normal force. In the present work, the nonlinear properties of a wormlike micellar (WLM) solution are studied. The results are compared with the predictions of the Giesekus model, which is chosen both for its capability to describe the WLM response and for being one of the simplest continuum models that incorporate an anisotropic microstructure. From the fluid response in the homogeneous flow regime, a rate-dependent relaxation time and a rate-dependent plateau modulus can be derived. The latter provides insight into the structural anisotropy during flow at short length scales, which in this case is isotropic. Further analysis of the superposition moduli can be used to separate and quantify the effects of flow on the reptation and breaking of the chains. In the shear-banding regime, the orthogonal moduli show a weaker dependence on shear rate compared to the predictions of the Giesekus model, yet they remain sensitive to changes in the shear-banded state.
引用
收藏
页码:727 / 740
页数:13
相关论文
共 50 条
  • [1] Superposition rheometry of a wormlike micellar fluid
    Kim, Sunhyung
    Mewis, Jan
    Clasen, Christian
    Vermant, Jan
    [J]. RHEOLOGICA ACTA, 2013, 52 (8-9) : 727 - 740
  • [2] Capillary breakup extensional rheometry of a wormlike micellar solution
    Kim, Nahn Ju
    Pipe, Christopher J.
    Ahn, Kyung Hyun
    Lee, Seung Jong
    McKinley, Gareth H.
    [J]. KOREA-AUSTRALIA RHEOLOGY JOURNAL, 2010, 22 (01) : 31 - 41
  • [3] Characterization of wormlike micellar systems using DLS, rheometry and tensiometry
    da Silva, G. C.
    Rossi, C. G. F. T.
    Dantas Neto, A. A.
    Dantas, T. N. C.
    Fonseca, J. L. C.
    [J]. COLLOIDS AND SURFACES A-PHYSICOCHEMICAL AND ENGINEERING ASPECTS, 2011, 377 (1-3) : 35 - 43
  • [4] Medium amplitude parallel superposition (MAPS) rheology of a wormlike micellar solution
    Kyle R. Lennon
    Gareth H. McKinley
    James W. Swan
    [J]. Rheologica Acta, 2021, 60 : 729 - 739
  • [5] Medium amplitude parallel superposition (MAPS) rheology of a wormlike micellar solution
    Lennon, Kyle R.
    McKinley, Gareth H.
    Swan, James W.
    [J]. RHEOLOGICA ACTA, 2021, 60 (12) : 729 - 739
  • [6] Oscillations of a solid sphere falling through a wormlike micellar fluid
    Jayaraman, A
    Belmonte, A
    [J]. PHYSICAL REVIEW E, 2003, 67 (06):
  • [7] Characterization of dynamics and internal structure of a mixed-surfactant wormlike micellar system using NMR and rheometry
    Barhoum, Suliman
    Castillo, Rolando
    Yethiraj, Anand
    [J]. SOFT MATTER, 2012, 8 (26) : 6950 - 6957
  • [8] Fluid-induced propulsion of rigid particles in wormlike micellar solutions
    Gagnon, David A.
    Keim, Nathan C.
    Shen, Xiaoning
    Arratia, Paulo E.
    [J]. PHYSICS OF FLUIDS, 2014, 26 (10)
  • [9] Linear versus branched: flow of a wormlike micellar fluid past a falling sphere
    Wu, Shijian
    Mohammadigoushki, Hadi
    [J]. SOFT MATTER, 2021, 17 (16) : 4395 - 4406
  • [10] Smart Wormlike Micellar Systems
    Zhang Yongmin
    Guo Zanru
    Zhang Jichao
    Feng Yujun
    Wang Biqing
    Wang Jiuxia
    [J]. PROGRESS IN CHEMISTRY, 2011, 23 (10) : 2012 - 2020