Please use this identifier to cite or link to this item: https://hdl.handle.net/20.500.14279/30763
Title: Predicting High-Density Polyethylene Melt Rheology Using a Multimode Tube Model Derived Using Non-Equilibrium Thermodynamics
Authors: Konstantinou, Pavlina C. 
Stephanou, Pavlos S. 
Major Field of Science: Engineering and Technology
Field Category: Chemical Engineering
Keywords: high-density polyethylene;multiple modes;non-equilibrium thermodynamics;normal stress coefficients;polymer melts;rheological model
Issue Date: 1-Aug-2023
Source: Polymers, 2023, vol. 15, iss. 15
Volume: 15
Issue: 15
Journal: Polymer 
Abstract: Based on the Generalized bracket, or Beris–Edwards, formalism of non-equilibrium thermodynamics, we recently proposed a new differential constitutive model for the rheological study of entangled polymer melts and solutions. It amended the shortcomings of a previous model that was too strict regarding the values of the convective constraint release parameter for the model not to violate the second law of thermodynamics, and it has been shown capable of predicting a transient stress undershoot (following the overshoot) at high shear rates. In this study, we wish to further examine this model’s capability to predict the rheological response of industrial polymer systems by extending it to its multiple-mode version. The comparison with industrial rheological data (High-Density Polyethylene resins), which was based on comparison with experimental data available in (a) Small Amplitude Oscillatory shear, (b) start-up shear, and (c) start-up uniaxial elongation, was noted to be good.
URI: https://hdl.handle.net/20.500.14279/30763
ISSN: 20734360
DOI: 10.3390/polym15153322
Rights: © by the authors
Attribution-NonCommercial-NoDerivatives 4.0 International
Type: Article
Affiliation : Cyprus University of Technology 
Appears in Collections:Άρθρα/Articles

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