Master Curves for FENE-P Fluids in Steady Shear Flow
Sami Yamani, Gareth H. McKinley

TL;DR
This paper develops universal master curves for FENE-P fluid rheology in steady shear flow, revealing how finite extensibility influences shear-thinning behavior and matching experimental data across different polymer solutions.
Contribution
It introduces a method to evaluate steady material functions and constructs universal master curves based on the Weissenberg number and finite extensibility, enhancing understanding of nonlinear polymer flow behavior.
Findings
Universal master curves for shear stress and normal stress difference.
Steady shear experiments confirm the master curves.
Finite extensibility dominates at high shear rates.
Abstract
The FENE-P (Finitely-Extensible Nonlinear Elastic) dumbbell constitutive equation is widely used in simulations and stability analyses of free and wall-bounded viscoelastic shear flows due to its relative simplicity and accuracy in predicting macroscopic properties of dilute polymer solutions. The model contains three independent material parameters, which expressed in dimensionless form correspond to a Weissenberg number (), i.e., the ratio of the dumbbell relaxation time scale to a characteristic flow time scale, a finite extensibility parameter (), corresponding to the ratio of the fully extended dumbbell length to the root mean square end-to-end separation of the polymer chain under equilibrium conditions, and a solvent viscosity ratio, commonly denoted . An exact solution for the rheological predictions of the FENE-P model in steady simple shear flow is…
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Taxonomy
TopicsRheology and Fluid Dynamics Studies · Blood properties and coagulation
