Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model

We have employed molecular simulation to study the permeation of two different gases (CH4 and CO2) in polyethylene. The simulations have been performed at temperatures below the polymer melting point. Although under such conditions, polyethylene is in a semicrystalline state, we have used simulation...

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Main Authors: Memari P., Lachet V., Rousseau B.
Format: Article
Language:English
Published: EDP Sciences 2015-02-01
Series:Oil & Gas Science and Technology
Online Access:http://dx.doi.org/10.2516/ogst/2012074
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spelling doaj-5f4d658b75aa41c7861cde439b77e16c2021-02-02T01:52:30ZengEDP SciencesOil & Gas Science and Technology1294-44751953-81892015-02-0170222723510.2516/ogst/2012074ogst120221Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic ModelMemari P.Lachet V.Rousseau B.We have employed molecular simulation to study the permeation of two different gases (CH4 and CO2) in polyethylene. The simulations have been performed at temperatures below the polymer melting point. Although under such conditions, polyethylene is in a semicrystalline state, we have used simulation boxes containing only a purely amorphous material. We showed in previous works [Memari P., Lachet V., Rousseau B. (2010) Polymer 51, 4978] that the effects of the complex morphology of semicrystalline materials on solubility can be implicitly taken into account by an ad-hoc constraint exerted on the amorphous phase. Here, it has been shown that our method can be applied not only for the calculation of equilibrium properties but also for transport properties like diffusion coefficients. In addition, the ad-hoc constraint has been theoretically related to the fraction of elastically effective chains in the material by making use of Michaels and Hausslein elastic model [Michaels A.S., Hausslein R.W. (1965) J. Polymer Sci.: Part C 10, 61]. We observe that the transport properties in amorphous regions are strongly governed by this fraction of elastically effective chains.http://dx.doi.org/10.2516/ogst/2012074
collection DOAJ
language English
format Article
sources DOAJ
author Memari P.
Lachet V.
Rousseau B.
spellingShingle Memari P.
Lachet V.
Rousseau B.
Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model
Oil & Gas Science and Technology
author_facet Memari P.
Lachet V.
Rousseau B.
author_sort Memari P.
title Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model
title_short Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model
title_full Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model
title_fullStr Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model
title_full_unstemmed Gas Permeation in Semicrystalline Polyethylene as Studied by Molecular Simulation and Elastic Model
title_sort gas permeation in semicrystalline polyethylene as studied by molecular simulation and elastic model
publisher EDP Sciences
series Oil & Gas Science and Technology
issn 1294-4475
1953-8189
publishDate 2015-02-01
description We have employed molecular simulation to study the permeation of two different gases (CH4 and CO2) in polyethylene. The simulations have been performed at temperatures below the polymer melting point. Although under such conditions, polyethylene is in a semicrystalline state, we have used simulation boxes containing only a purely amorphous material. We showed in previous works [Memari P., Lachet V., Rousseau B. (2010) Polymer 51, 4978] that the effects of the complex morphology of semicrystalline materials on solubility can be implicitly taken into account by an ad-hoc constraint exerted on the amorphous phase. Here, it has been shown that our method can be applied not only for the calculation of equilibrium properties but also for transport properties like diffusion coefficients. In addition, the ad-hoc constraint has been theoretically related to the fraction of elastically effective chains in the material by making use of Michaels and Hausslein elastic model [Michaels A.S., Hausslein R.W. (1965) J. Polymer Sci.: Part C 10, 61]. We observe that the transport properties in amorphous regions are strongly governed by this fraction of elastically effective chains.
url http://dx.doi.org/10.2516/ogst/2012074
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