Polymer orientation contributions in large-amplitude oscillatory shear flow

被引:5
|
作者
Gilbert, P. H. [1 ]
Giacomin, A. J. [1 ,2 ]
机构
[1] Queens Univ, Chem Engn Dept, Polymers Res Grp, Kingston, ON K7L 3N6, Canada
[2] Queens Univ, Mech & Mat Engn Dept, Kingston, ON K7L 3N6, Canada
基金
加拿大自然科学与工程研究理事会;
关键词
Polymer dynamics; Polymer orientation; Large-amplitude oscillatory shear flow; Fourier-transform rheology; Rigid-dumbbell suspension; Structure-property relations; NEWTONIAN VISCOELASTIC PROPERTIES; PLANE-POLYGONAL POLYMER; COMPLEX VISCOSITY; STRESS; MACROMOLECULES; KIRKWOOD; MODEL;
D O I
10.1016/j.jnnfm.2017.04.004
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
Previously, we used a dilute suspension of rigid dumbbells as a model for the dynamics for polymeric liquids in large-amplitude oscillatory shear (LAOS) flow. We then use dumbbell orientation to explain fluid elasticity. We derived the expression for the polymer orientation distribution, and then we decomposed this function into its first five harmonics (the zeroth, first, second, third and fourth harmonics). We further separated the harmonics into their components, in-phase and out-of-phase with cos n omega t. In this work, we deepen our understanding of the relationship between the orientation distribution function and the shear stress and normal stress differences. We also investigate the components of orientation that make no contribution at all to measured rheological responses. Further, the larger the gamma(0) of the oscillatory shear flow, the greater the fraction of polymer that escapes rheological measurement. Our analysis focuses on the nonlinear viscoelastic regime, and specifically, where both lambda omega and lambda gamma(0) are unity. We learn that all orientation contributions to the normal stresses also contribute to the shear stress. The parts of the orientation distribution contributing to the shear stress take on the familiar peanut shapes of the total orientation distribution. The parts of the orientation distribution causing the normal stress differences are subsets of the part of the orientation distribution contributing to the shear stress. (C) 2017 Elsevier B.V. All rights reserved.
引用
收藏
页码:85 / 103
页数:19
相关论文
共 50 条
  • [1] Fourier decomposition of polymer orientation in large-amplitude oscillatory shear flow
    Giacomin, A. J.
    Gilbert, P. H.
    Schmalzer, A. M.
    STRUCTURAL DYNAMICS-US, 2015, 2 (02):
  • [2] Orientation in Large-Amplitude Oscillatory Shear
    Schmalzer, A. M.
    Giacomin, A. J.
    MACROMOLECULAR THEORY AND SIMULATIONS, 2015, 24 (03) : 181 - 207
  • [3] Pade approximants for large-amplitude oscillatory shear flow
    Giacomin, A. Jeffrey
    Saengow, Chaimongkol
    Guay, Martin
    Kolitawong, Chanyut
    RHEOLOGICA ACTA, 2015, 54 (08) : 679 - 693
  • [4] Padé approximants for large-amplitude oscillatory shear flow
    A. Jeffrey Giacomin
    Chaimongkol Saengow
    Martin Guay
    Chanyut Kolitawong
    Rheologica Acta, 2015, 54 : 679 - 693
  • [5] Viscous heating in large-amplitude oscillatory shear flow
    Giacomin, A. J.
    Bird, R. B.
    Aumnate, C.
    Mertz, A. M.
    Schmalzer, A. M.
    Mix, A. W.
    PHYSICS OF FLUIDS, 2012, 24 (10)
  • [6] Large-amplitude oscillatory shear flow simulation for a FENE fluid
    Gomez-Lopez, Aldo
    Ferrer, Victor H.
    Rincon, Eduardo
    Aguayo, Juan P.
    Chavez, Angel E.
    Vargas, Rene O.
    RHEOLOGICA ACTA, 2019, 58 (05) : 241 - 260
  • [7] LARGE-AMPLITUDE OSCILLATORY SHEAR-FLOW OF VISCOELASTIC MATERIALS
    MACDONALD, IF
    RHEOLOGICA ACTA, 1975, 14 (09) : 801 - 811
  • [8] Unidirectional large-amplitude oscillatory shear flow of human blood
    Saengow, Chaimongkol
    Giacomin, Alan Jeffrey
    Dimitrov, Andrea Stephanie
    PHYSICS OF FLUIDS, 2019, 31 (11)
  • [9] Exact Analytical Solution for Large-Amplitude Oscillatory Shear Flow
    Saengow, Chaimongkol
    Giacomin, Alan Jeffrey
    Kolitawong, Chanyut
    MACROMOLECULAR THEORY AND SIMULATIONS, 2015, 24 (04) : 352 - 392
  • [10] Large-amplitude oscillatory shear flow simulation for a FENE fluid
    Aldo Gómez-López
    Víctor H. Ferrer
    Eduardo Rincón
    Juan P. Aguayo
    Ángel E. Chávez
    René O. Vargas
    Rheologica Acta, 2019, 58 : 241 - 260