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Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics

The startup and steady shear flow properties of an entangled, monodisperse polyethylene liquid (C(1000)H(2002)) were investigated via virtual experimentation using nonequilibrium molecular dynamics. The simulations revealed a multifaceted dynamical response of the liquid to the imposed flow field in...

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Autores principales: Nafar Sefiddashti, Mohammad Hadi, Edwards, Brian J., Khomami, Bamin
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6473836/
https://www.ncbi.nlm.nih.gov/pubmed/30960460
http://dx.doi.org/10.3390/polym11030476
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author Nafar Sefiddashti, Mohammad Hadi
Edwards, Brian J.
Khomami, Bamin
author_facet Nafar Sefiddashti, Mohammad Hadi
Edwards, Brian J.
Khomami, Bamin
author_sort Nafar Sefiddashti, Mohammad Hadi
collection PubMed
description The startup and steady shear flow properties of an entangled, monodisperse polyethylene liquid (C(1000)H(2002)) were investigated via virtual experimentation using nonequilibrium molecular dynamics. The simulations revealed a multifaceted dynamical response of the liquid to the imposed flow field in which entanglement loss leading to individual molecular rotation plays a dominant role in dictating the bulk rheological response at intermediate and high shear rates. Under steady shear conditions, four regimes of flow behavior were evident. In the linear viscoelastic regime ([Formula: see text]), orientation of the reptation tube network dictates the rheological response. Within the second regime ([Formula: see text]), the tube segments begin to stretch mildly and the molecular entanglement network begins to relax as flow strength increases; however, the dominant relaxation mechanism in this region remains the orientation of the tube segments. In the third regime ([Formula: see text]), molecular disentangling accelerates and tube stretching dominates the response. Additionally, the rotation of molecules become a significant source of the overall dynamic response. In the fourth regime ([Formula: see text]), the entanglement network deteriorates such that some molecules become almost completely unraveled, and molecular tumbling becomes the dominant relaxation mechanism. The comparison of transient shear viscosity, [Formula: see text] , with the dynamic responses of key variables of the tube model, including the tube segmental orientation, [Formula: see text] , and tube stretch, [Formula: see text] , revealed that the stress overshoot and undershoot in steady shear flow of entangled liquids are essentially originated and dynamically controlled by the [Formula: see text] component of the tube orientation tensor, rather than the tube stretch, over a wide range of flow strengths.
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spelling pubmed-64738362019-04-29 Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics Nafar Sefiddashti, Mohammad Hadi Edwards, Brian J. Khomami, Bamin Polymers (Basel) Article The startup and steady shear flow properties of an entangled, monodisperse polyethylene liquid (C(1000)H(2002)) were investigated via virtual experimentation using nonequilibrium molecular dynamics. The simulations revealed a multifaceted dynamical response of the liquid to the imposed flow field in which entanglement loss leading to individual molecular rotation plays a dominant role in dictating the bulk rheological response at intermediate and high shear rates. Under steady shear conditions, four regimes of flow behavior were evident. In the linear viscoelastic regime ([Formula: see text]), orientation of the reptation tube network dictates the rheological response. Within the second regime ([Formula: see text]), the tube segments begin to stretch mildly and the molecular entanglement network begins to relax as flow strength increases; however, the dominant relaxation mechanism in this region remains the orientation of the tube segments. In the third regime ([Formula: see text]), molecular disentangling accelerates and tube stretching dominates the response. Additionally, the rotation of molecules become a significant source of the overall dynamic response. In the fourth regime ([Formula: see text]), the entanglement network deteriorates such that some molecules become almost completely unraveled, and molecular tumbling becomes the dominant relaxation mechanism. The comparison of transient shear viscosity, [Formula: see text] , with the dynamic responses of key variables of the tube model, including the tube segmental orientation, [Formula: see text] , and tube stretch, [Formula: see text] , revealed that the stress overshoot and undershoot in steady shear flow of entangled liquids are essentially originated and dynamically controlled by the [Formula: see text] component of the tube orientation tensor, rather than the tube stretch, over a wide range of flow strengths. MDPI 2019-03-12 /pmc/articles/PMC6473836/ /pubmed/30960460 http://dx.doi.org/10.3390/polym11030476 Text en © 2019 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license (http://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Nafar Sefiddashti, Mohammad Hadi
Edwards, Brian J.
Khomami, Bamin
Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics
title Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics
title_full Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics
title_fullStr Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics
title_full_unstemmed Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics
title_short Individual Molecular Dynamics of an Entangled Polyethylene Melt Undergoing Steady Shear Flow: Steady-State and Transient Dynamics
title_sort individual molecular dynamics of an entangled polyethylene melt undergoing steady shear flow: steady-state and transient dynamics
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6473836/
https://www.ncbi.nlm.nih.gov/pubmed/30960460
http://dx.doi.org/10.3390/polym11030476
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