Cargando…

Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models

In recent years, thermoplastic composites have found their place in large business sectors and are in direct rivalry to thermoset matrix composites. In order to ensure efficient and lean processes, process modeling gains ever-growing attention. This work shows the computational fluid dynamics (CFD)-...

Descripción completa

Detalles Bibliográficos
Autores principales: Längauer, Manuel, Zitzenbacher, Gernot, Stadler, Hannes, Hochenauer, Christoph
Formato: Online Artículo Texto
Lenguaje:English
Publicado: MDPI 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415583/
https://www.ncbi.nlm.nih.gov/pubmed/36015588
http://dx.doi.org/10.3390/polym14163331
_version_ 1784776267140169728
author Längauer, Manuel
Zitzenbacher, Gernot
Stadler, Hannes
Hochenauer, Christoph
author_facet Längauer, Manuel
Zitzenbacher, Gernot
Stadler, Hannes
Hochenauer, Christoph
author_sort Längauer, Manuel
collection PubMed
description In recent years, thermoplastic composites have found their place in large business sectors and are in direct rivalry to thermoset matrix composites. In order to ensure efficient and lean processes, process modeling gains ever-growing attention. This work shows the computational fluid dynamics (CFD)-modeling of a typical heating step in a thermoforming process of a thermoplastic composite sheet. When heating thermoplastic composites, the heat conduction proceeds anisotropic, and the sheets are subject to thermal deconsolidation when heated above the melting temperature of the polymer matrix adding to the anisotropic effect. These effects are neglected in known process models and this study shows the first successful attempt at introducing them into CFD-modeling of the heating of thermoplastic composite sheets. Thus, the simulation requires temperature dependent values for the anisotropic thermal conductivity and the coefficient of linear thermal expansion, which are calculated with novel physical models which were developed solely for this cause. This alters the behavior of an isotropic CFD-model and allows the successful validation via laboratory experiments using glass fiber reinforced polypropylene (PP/GF) sheets with embedded thermocouples to check the internal temperature distribution when the sheet is heated to the designated forming temperature in a composite thermoforming press. The incorporation of this newly developed process model reduces the error in the core temperature prediction from close to 70 °C to 3 °C at the forming temperature.
format Online
Article
Text
id pubmed-9415583
institution National Center for Biotechnology Information
language English
publishDate 2022
publisher MDPI
record_format MEDLINE/PubMed
spelling pubmed-94155832022-08-27 Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models Längauer, Manuel Zitzenbacher, Gernot Stadler, Hannes Hochenauer, Christoph Polymers (Basel) Article In recent years, thermoplastic composites have found their place in large business sectors and are in direct rivalry to thermoset matrix composites. In order to ensure efficient and lean processes, process modeling gains ever-growing attention. This work shows the computational fluid dynamics (CFD)-modeling of a typical heating step in a thermoforming process of a thermoplastic composite sheet. When heating thermoplastic composites, the heat conduction proceeds anisotropic, and the sheets are subject to thermal deconsolidation when heated above the melting temperature of the polymer matrix adding to the anisotropic effect. These effects are neglected in known process models and this study shows the first successful attempt at introducing them into CFD-modeling of the heating of thermoplastic composite sheets. Thus, the simulation requires temperature dependent values for the anisotropic thermal conductivity and the coefficient of linear thermal expansion, which are calculated with novel physical models which were developed solely for this cause. This alters the behavior of an isotropic CFD-model and allows the successful validation via laboratory experiments using glass fiber reinforced polypropylene (PP/GF) sheets with embedded thermocouples to check the internal temperature distribution when the sheet is heated to the designated forming temperature in a composite thermoforming press. The incorporation of this newly developed process model reduces the error in the core temperature prediction from close to 70 °C to 3 °C at the forming temperature. MDPI 2022-08-16 /pmc/articles/PMC9415583/ /pubmed/36015588 http://dx.doi.org/10.3390/polym14163331 Text en © 2022 by the authors. https://creativecommons.org/licenses/by/4.0/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 (https://creativecommons.org/licenses/by/4.0/).
spellingShingle Article
Längauer, Manuel
Zitzenbacher, Gernot
Stadler, Hannes
Hochenauer, Christoph
Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models
title Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models
title_full Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models
title_fullStr Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models
title_full_unstemmed Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models
title_short Enhanced Simulation of Infrared Heating of Thermoplastic Composites Prior to Forming under Consideration of Anisotropic Thermal Conductivity and Deconsolidation by Means of Novel Physical Material Models
title_sort enhanced simulation of infrared heating of thermoplastic composites prior to forming under consideration of anisotropic thermal conductivity and deconsolidation by means of novel physical material models
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9415583/
https://www.ncbi.nlm.nih.gov/pubmed/36015588
http://dx.doi.org/10.3390/polym14163331
work_keys_str_mv AT langauermanuel enhancedsimulationofinfraredheatingofthermoplasticcompositespriortoformingunderconsiderationofanisotropicthermalconductivityanddeconsolidationbymeansofnovelphysicalmaterialmodels
AT zitzenbachergernot enhancedsimulationofinfraredheatingofthermoplasticcompositespriortoformingunderconsiderationofanisotropicthermalconductivityanddeconsolidationbymeansofnovelphysicalmaterialmodels
AT stadlerhannes enhancedsimulationofinfraredheatingofthermoplasticcompositespriortoformingunderconsiderationofanisotropicthermalconductivityanddeconsolidationbymeansofnovelphysicalmaterialmodels
AT hochenauerchristoph enhancedsimulationofinfraredheatingofthermoplasticcompositespriortoformingunderconsiderationofanisotropicthermalconductivityanddeconsolidationbymeansofnovelphysicalmaterialmodels