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Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids

We combine a slip-spring model with an ‘entangled kink dynamics’ (EKD) model for strong uniaxial extensional flows (with Rouse Weissenberg number [Formula: see text]) of long ([Formula: see text] for polystyrene) entangled polymers in solutions and melts. The slip-spring model captures the dynamics...

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Autores principales: Moghadam, Soroush, Saha Dalal, Indranil, Larson, Ronald G.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2019
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6473671/
https://www.ncbi.nlm.nih.gov/pubmed/30960449
http://dx.doi.org/10.3390/polym11030465
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author Moghadam, Soroush
Saha Dalal, Indranil
Larson, Ronald G.
author_facet Moghadam, Soroush
Saha Dalal, Indranil
Larson, Ronald G.
author_sort Moghadam, Soroush
collection PubMed
description We combine a slip-spring model with an ‘entangled kink dynamics’ (EKD) model for strong uniaxial extensional flows (with Rouse Weissenberg number [Formula: see text]) of long ([Formula: see text] for polystyrene) entangled polymers in solutions and melts. The slip-spring model captures the dynamics up to the formation of a ‘kinked’ or folded state, while the kink dynamics simulation tracks the dynamics from that point forward to complete extension. We show that a single-chain slip-spring model using affine motion of the slip-spring anchor points produces unrealistically high tension near the center of the chain once the Hencky strain exceeds around unity or so, exceeding the maximum tension that a chain entangled with a second chain is able to support. This unrealistic tension is alleviated by pairing the slip links on one chain with those on a second chain, and allowing some of the large tension on one of the two to be transferred to the second chain, producing non-affine motion of each. This explicit pairing of entanglements mimics the entanglement pairing also used in the EKD model, and allows the slip spring simulations to be carried out to strains high enough for the EKD model to become valid. We show that results nearly equivalent to those from paired chains are obtained in a single-chain slip-spring simulation by simply specifying that the tension in a slip spring cannot exceed the theoretical maximum value of [Formula: see text] where [Formula: see text] , [Formula: see text] and [Formula: see text] are the friction per unit length, strain rate and contour length of the chain, respectively. The effects of constraint release (CR) and regeneration of entanglements is also studied and found to have little effect on the chain statistics up to the formation of the kinked state. The resulting hybrid model provides a fast, simple, simulation method to study the response of high molecular weight ([Formula: see text]) polymers in fast flows ([Formula: see text]), where conventional simulation techniques are less applicable due to computational cost.
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spelling pubmed-64736712019-05-03 Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids Moghadam, Soroush Saha Dalal, Indranil Larson, Ronald G. Polymers (Basel) Article We combine a slip-spring model with an ‘entangled kink dynamics’ (EKD) model for strong uniaxial extensional flows (with Rouse Weissenberg number [Formula: see text]) of long ([Formula: see text] for polystyrene) entangled polymers in solutions and melts. The slip-spring model captures the dynamics up to the formation of a ‘kinked’ or folded state, while the kink dynamics simulation tracks the dynamics from that point forward to complete extension. We show that a single-chain slip-spring model using affine motion of the slip-spring anchor points produces unrealistically high tension near the center of the chain once the Hencky strain exceeds around unity or so, exceeding the maximum tension that a chain entangled with a second chain is able to support. This unrealistic tension is alleviated by pairing the slip links on one chain with those on a second chain, and allowing some of the large tension on one of the two to be transferred to the second chain, producing non-affine motion of each. This explicit pairing of entanglements mimics the entanglement pairing also used in the EKD model, and allows the slip spring simulations to be carried out to strains high enough for the EKD model to become valid. We show that results nearly equivalent to those from paired chains are obtained in a single-chain slip-spring simulation by simply specifying that the tension in a slip spring cannot exceed the theoretical maximum value of [Formula: see text] where [Formula: see text] , [Formula: see text] and [Formula: see text] are the friction per unit length, strain rate and contour length of the chain, respectively. The effects of constraint release (CR) and regeneration of entanglements is also studied and found to have little effect on the chain statistics up to the formation of the kinked state. The resulting hybrid model provides a fast, simple, simulation method to study the response of high molecular weight ([Formula: see text]) polymers in fast flows ([Formula: see text]), where conventional simulation techniques are less applicable due to computational cost. MDPI 2019-03-11 /pmc/articles/PMC6473671/ /pubmed/30960449 http://dx.doi.org/10.3390/polym11030465 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
Moghadam, Soroush
Saha Dalal, Indranil
Larson, Ronald G.
Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids
title Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids
title_full Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids
title_fullStr Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids
title_full_unstemmed Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids
title_short Slip-Spring and Kink Dynamics Models for Fast Extensional Flow of Entangled Polymeric Fluids
title_sort slip-spring and kink dynamics models for fast extensional flow of entangled polymeric fluids
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6473671/
https://www.ncbi.nlm.nih.gov/pubmed/30960449
http://dx.doi.org/10.3390/polym11030465
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