Non-equilibrium steady states of entangled polymer mixtures under shear flow

By solving the full equations of an extended two-fluid model in two dimensions, we give the first numerical study revealing non-equilibrium steady states in sheared entangled polymer mixtures. This research provides answers for some fundamental questions in sheared binary mixtures of entangled polym...

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Main Authors: Xiao-Wei Guo, Wen-Jing Yang, Xin-Hai Xu, Yu Cao, Xue-Jun Yang
Format: Article
Language:English
Published: SAGE Publishing 2015-06-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814015591923
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spelling doaj-65e6bc2d9df644d9b5de60ec19f2bb812020-11-25T03:51:58ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402015-06-01710.1177/168781401559192310.1177_1687814015591923Non-equilibrium steady states of entangled polymer mixtures under shear flowXiao-Wei GuoWen-Jing YangXin-Hai XuYu CaoXue-Jun YangBy solving the full equations of an extended two-fluid model in two dimensions, we give the first numerical study revealing non-equilibrium steady states in sheared entangled polymer mixtures. This research provides answers for some fundamental questions in sheared binary mixtures of entangled polymers. Our results reveal that non-equilibrium steady states with finite domain size do exist, and apparent scaling exponents L ∥ ~ γ · − 1 . 05 and L ⊥ ~ γ · − 1 are found over six decades of shear rate. Since the wall effects get involved in our simulations, the dependence of average domain size on system size cannot be strictly eliminated. In addition, as an obvious influence of viscoelasticity, the polymer viscosity η p appears to induce linear translation of the fitted lines. Through two-dimensional numerical simulations, we show the detailed dynamic evolution of microstructure in binary polymer mixtures with asymmetric composition under shear flow. It is found that the phase patterns are significantly different from symmetric fluids studied previously. Finally, we also identify the importance of wall effects and confirm the irreplaceable role of inertia for a non-equilibrium steady state.https://doi.org/10.1177/1687814015591923
collection DOAJ
language English
format Article
sources DOAJ
author Xiao-Wei Guo
Wen-Jing Yang
Xin-Hai Xu
Yu Cao
Xue-Jun Yang
spellingShingle Xiao-Wei Guo
Wen-Jing Yang
Xin-Hai Xu
Yu Cao
Xue-Jun Yang
Non-equilibrium steady states of entangled polymer mixtures under shear flow
Advances in Mechanical Engineering
author_facet Xiao-Wei Guo
Wen-Jing Yang
Xin-Hai Xu
Yu Cao
Xue-Jun Yang
author_sort Xiao-Wei Guo
title Non-equilibrium steady states of entangled polymer mixtures under shear flow
title_short Non-equilibrium steady states of entangled polymer mixtures under shear flow
title_full Non-equilibrium steady states of entangled polymer mixtures under shear flow
title_fullStr Non-equilibrium steady states of entangled polymer mixtures under shear flow
title_full_unstemmed Non-equilibrium steady states of entangled polymer mixtures under shear flow
title_sort non-equilibrium steady states of entangled polymer mixtures under shear flow
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2015-06-01
description By solving the full equations of an extended two-fluid model in two dimensions, we give the first numerical study revealing non-equilibrium steady states in sheared entangled polymer mixtures. This research provides answers for some fundamental questions in sheared binary mixtures of entangled polymers. Our results reveal that non-equilibrium steady states with finite domain size do exist, and apparent scaling exponents L ∥ ~ γ · − 1 . 05 and L ⊥ ~ γ · − 1 are found over six decades of shear rate. Since the wall effects get involved in our simulations, the dependence of average domain size on system size cannot be strictly eliminated. In addition, as an obvious influence of viscoelasticity, the polymer viscosity η p appears to induce linear translation of the fitted lines. Through two-dimensional numerical simulations, we show the detailed dynamic evolution of microstructure in binary polymer mixtures with asymmetric composition under shear flow. It is found that the phase patterns are significantly different from symmetric fluids studied previously. Finally, we also identify the importance of wall effects and confirm the irreplaceable role of inertia for a non-equilibrium steady state.
url https://doi.org/10.1177/1687814015591923
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AT yucao nonequilibriumsteadystatesofentangledpolymermixturesundershearflow
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