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Exact solutions for oscillatory shear sweep behaviors of complex fluids from the Oldroyd 8-constant framework
Author(s) -
Chaimongkol Saengow,
A. Jeffrey Giacomin
Publication year - 2018
Publication title -
physics of fluids
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.188
H-Index - 180
eISSN - 1089-7666
pISSN - 1070-6631
DOI - 10.1063/1.5023586
Subject(s) - physics , shear rate , nonlinear system , shear stress , amplitude , mechanics , viscosity , shear flow , strain rate , classical mechanics , shear (geology) , mathematical analysis , constant (computer programming) , sweep frequency response analysis , thermodynamics , statistical physics , mathematics , optics , materials science , quantum mechanics , computer science , programming language , composite material
In this paper, we provide a new exact framework for analyzing the most commonly measured behaviors in large-amplitude oscillatory shear flow (LAOS), a popular flow for studying the nonlinear physics of complex fluids. Specifically, the strain rate sweep (also called the strain sweep) is used routinely to identify the onset of nonlinearity. By the strain rate sweep, we mean a sequence of LAOS experiments conducted at the same frequency, performed one after another, with increasing shear rate amplitude. In this paper, we give exact expressions for the nonlinear complex viscosity and the corresponding nonlinear complex normal stress coefficients, for the Oldroyd 8-constant framework for oscillatory shear sweeps. We choose the Oldroyd 8-constant framework for its rich diversity of popular special cases (we list 18 of these). We evaluate the Fourier integrals of our previous exact solution to get exact expressions for the real and imaginary parts of the complex viscosity, and for the complex normal stress coef...

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