A finite volume approach to simulation of polymer melt flow in channels

Detalhes bibliográficos
Autor(a) principal: Vaz Jr. M.*
Data de Publicação: 2008
Outros Autores: Zdanski, Paulo Sergio Berving, Inacio G.R.*
Tipo de documento: Artigo
Idioma: eng
Título da fonte: Repositório Institucional da Udesc
dARK ID: ark:/33523/001300000gwjv
Texto Completo: https://repositorio.udesc.br/handle/UDESC/10102
Resumo: Purpose: Numerical simulation of polymer injection processes has become increasingly common in mould design. In industry, such a task is accomplished mainly by using commercial packages. Owing to the complexities inherent of this class of problems, most commercial codes attempt to combine realistic rheological descriptions with simplified numerical models. In spite of the apparent success, such approaches are not able to capture important aspects of the flow topology. The present work aims to describe a more elaborate mathematical model based on finite volumes which is able to provide both accurate solutions and further insights on the physics of the polymer flow. Design/methodology/approach: The mathematical model comprises the momentum and energy equations and a Poisson equation for pressure to impose the incompressibility constraint. The governing equations are discretized using the finite volume method based on central, second-order accurate formulas for both convection and diffusion terms. Artificial dissipation terms are added externally in order to control the odd-even decoupling problem. Findings: The numerical model was conceived within the framework of a generalized Newtonian formulation. The capability of the numerical scheme is illustrated by simulations using three distinct constitutive relations to approach the non-Newtonian behaviour of the polymer melt: isothermal power-law, modified Arrhenius power-law and cross models. Originality/value: This paper extends the computational strategies previously developed to Newtonian fluids to account for more complex constitutive relations. The velocity and temperature coupled solution for polymer melts using only second-order accurate formulas constitute also a relevant contribution. © Emerald Group Publishing Limited.
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spelling A finite volume approach to simulation of polymer melt flow in channelsPurpose: Numerical simulation of polymer injection processes has become increasingly common in mould design. In industry, such a task is accomplished mainly by using commercial packages. Owing to the complexities inherent of this class of problems, most commercial codes attempt to combine realistic rheological descriptions with simplified numerical models. In spite of the apparent success, such approaches are not able to capture important aspects of the flow topology. The present work aims to describe a more elaborate mathematical model based on finite volumes which is able to provide both accurate solutions and further insights on the physics of the polymer flow. Design/methodology/approach: The mathematical model comprises the momentum and energy equations and a Poisson equation for pressure to impose the incompressibility constraint. The governing equations are discretized using the finite volume method based on central, second-order accurate formulas for both convection and diffusion terms. Artificial dissipation terms are added externally in order to control the odd-even decoupling problem. Findings: The numerical model was conceived within the framework of a generalized Newtonian formulation. The capability of the numerical scheme is illustrated by simulations using three distinct constitutive relations to approach the non-Newtonian behaviour of the polymer melt: isothermal power-law, modified Arrhenius power-law and cross models. Originality/value: This paper extends the computational strategies previously developed to Newtonian fluids to account for more complex constitutive relations. The velocity and temperature coupled solution for polymer melts using only second-order accurate formulas constitute also a relevant contribution. © Emerald Group Publishing Limited.2024-12-06T19:23:44Z2008info:eu-repo/semantics/publishedVersioninfo:eu-repo/semantics/articlep. 233 - 2500264-440110.1108/02644400810857074https://repositorio.udesc.br/handle/UDESC/10102ark:/33523/001300000gwjvEngineering Computations (Swansea, Wales)253Vaz Jr. M.*Zdanski, Paulo Sergio BervingInacio G.R.*engreponame:Repositório Institucional da Udescinstname:Universidade do Estado de Santa Catarina (UDESC)instacron:UDESCinfo:eu-repo/semantics/openAccess2024-12-07T21:07:00Zoai:repositorio.udesc.br:UDESC/10102Biblioteca Digital de Teses e Dissertaçõeshttps://pergamumweb.udesc.br/biblioteca/index.phpPRIhttps://repositorio-api.udesc.br/server/oai/requestri@udesc.bropendoar:63912024-12-07T21:07Repositório Institucional da Udesc - Universidade do Estado de Santa Catarina (UDESC)false
dc.title.none.fl_str_mv A finite volume approach to simulation of polymer melt flow in channels
title A finite volume approach to simulation of polymer melt flow in channels
spellingShingle A finite volume approach to simulation of polymer melt flow in channels
Vaz Jr. M.*
title_short A finite volume approach to simulation of polymer melt flow in channels
title_full A finite volume approach to simulation of polymer melt flow in channels
title_fullStr A finite volume approach to simulation of polymer melt flow in channels
title_full_unstemmed A finite volume approach to simulation of polymer melt flow in channels
title_sort A finite volume approach to simulation of polymer melt flow in channels
author Vaz Jr. M.*
author_facet Vaz Jr. M.*
Zdanski, Paulo Sergio Berving
Inacio G.R.*
author_role author
author2 Zdanski, Paulo Sergio Berving
Inacio G.R.*
author2_role author
author
dc.contributor.author.fl_str_mv Vaz Jr. M.*
Zdanski, Paulo Sergio Berving
Inacio G.R.*
description Purpose: Numerical simulation of polymer injection processes has become increasingly common in mould design. In industry, such a task is accomplished mainly by using commercial packages. Owing to the complexities inherent of this class of problems, most commercial codes attempt to combine realistic rheological descriptions with simplified numerical models. In spite of the apparent success, such approaches are not able to capture important aspects of the flow topology. The present work aims to describe a more elaborate mathematical model based on finite volumes which is able to provide both accurate solutions and further insights on the physics of the polymer flow. Design/methodology/approach: The mathematical model comprises the momentum and energy equations and a Poisson equation for pressure to impose the incompressibility constraint. The governing equations are discretized using the finite volume method based on central, second-order accurate formulas for both convection and diffusion terms. Artificial dissipation terms are added externally in order to control the odd-even decoupling problem. Findings: The numerical model was conceived within the framework of a generalized Newtonian formulation. The capability of the numerical scheme is illustrated by simulations using three distinct constitutive relations to approach the non-Newtonian behaviour of the polymer melt: isothermal power-law, modified Arrhenius power-law and cross models. Originality/value: This paper extends the computational strategies previously developed to Newtonian fluids to account for more complex constitutive relations. The velocity and temperature coupled solution for polymer melts using only second-order accurate formulas constitute also a relevant contribution. © Emerald Group Publishing Limited.
publishDate 2008
dc.date.none.fl_str_mv 2008
2024-12-06T19:23:44Z
dc.type.status.fl_str_mv info:eu-repo/semantics/publishedVersion
dc.type.driver.fl_str_mv info:eu-repo/semantics/article
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status_str publishedVersion
dc.identifier.uri.fl_str_mv 0264-4401
10.1108/02644400810857074
https://repositorio.udesc.br/handle/UDESC/10102
dc.identifier.dark.fl_str_mv ark:/33523/001300000gwjv
identifier_str_mv 0264-4401
10.1108/02644400810857074
ark:/33523/001300000gwjv
url https://repositorio.udesc.br/handle/UDESC/10102
dc.language.iso.fl_str_mv eng
language eng
dc.relation.none.fl_str_mv Engineering Computations (Swansea, Wales)
25
3
dc.rights.driver.fl_str_mv info:eu-repo/semantics/openAccess
eu_rights_str_mv openAccess
dc.format.none.fl_str_mv p. 233 - 250
dc.source.none.fl_str_mv reponame:Repositório Institucional da Udesc
instname:Universidade do Estado de Santa Catarina (UDESC)
instacron:UDESC
instname_str Universidade do Estado de Santa Catarina (UDESC)
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institution UDESC
reponame_str Repositório Institucional da Udesc
collection Repositório Institucional da Udesc
repository.name.fl_str_mv Repositório Institucional da Udesc - Universidade do Estado de Santa Catarina (UDESC)
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