Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process

The use of fiber reinforced plastics (FRPs) has significant potential to reduce the weight of components. As regards the sustainability of these components, thermoplastic matrices offer more potential for recycling than thermoset ones. A possible manufacturing process for the production of thermopla...

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Main Authors: Janek Herzog, Rainer Wendel, Peter G. Weidler, Michael Wilhelm, Philipp Rosenberg, Frank Henning
Format: Article
Language:English
Published: MDPI AG 2021-01-01
Series:Journal of Composites Science
Subjects:
Online Access:https://www.mdpi.com/2504-477X/5/1/12
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spelling doaj-decf7f9ef2f04f1cbc5d08ab9b99823f2021-01-06T00:00:38ZengMDPI AGJournal of Composites Science2504-477X2021-01-015121210.3390/jcs5010012Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM ProcessJanek Herzog0Rainer Wendel1Peter G. Weidler2Michael Wilhelm3Philipp Rosenberg4Frank Henning5Department of Polymer Engineering, Fraunhofer Institute for Chemical Technology (ICT), 76327 Pfinztal, GermanyDepartment of Polymer Engineering, Fraunhofer Institute for Chemical Technology (ICT), 76327 Pfinztal, GermanyInstitute of Functional Interfaces, Karlsruhe Institute of Technology (KIT), 76131 Karlsruhe, GermanyDepartment of Polymer Engineering, Fraunhofer Institute for Chemical Technology (ICT), 76327 Pfinztal, GermanyDepartment of Polymer Engineering, Fraunhofer Institute for Chemical Technology (ICT), 76327 Pfinztal, GermanyDepartment of Polymer Engineering, Fraunhofer Institute for Chemical Technology (ICT), 76327 Pfinztal, GermanyThe use of fiber reinforced plastics (FRPs) has significant potential to reduce the weight of components. As regards the sustainability of these components, thermoplastic matrices offer more potential for recycling than thermoset ones. A possible manufacturing process for the production of thermoplastic FRPs is thermoplastic resin transfer molding (T-RTM). In this very moisture-sensitive process, ε-caprolactam in addition to an activator and catalyst polymerizes anionically to polyamide 6 (aPA6). The anionic polymerization of aPA6 is slowed down or even completely blocked by the presence of water. This study analyses the sorption behavior of the matrix, fiber, binder and core materials for the production of anionic polyamide 6 composites, which are processed in the thermoplastic RTM process. Water vapor sorption measurements are used to determine the adsorption and desorption behavior of the materials. The maximum moisture loading of the materials provides information about the water adsorption capacity of the material. This knowledge is crucial for correct handling of the materials to achieve a fast process and good properties of the final product.https://www.mdpi.com/2504-477X/5/1/12T-RTMmoisturecompositecarbon fiberglass fiberanionic polyamide 6 (aPA6)
collection DOAJ
language English
format Article
sources DOAJ
author Janek Herzog
Rainer Wendel
Peter G. Weidler
Michael Wilhelm
Philipp Rosenberg
Frank Henning
spellingShingle Janek Herzog
Rainer Wendel
Peter G. Weidler
Michael Wilhelm
Philipp Rosenberg
Frank Henning
Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process
Journal of Composites Science
T-RTM
moisture
composite
carbon fiber
glass fiber
anionic polyamide 6 (aPA6)
author_facet Janek Herzog
Rainer Wendel
Peter G. Weidler
Michael Wilhelm
Philipp Rosenberg
Frank Henning
author_sort Janek Herzog
title Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process
title_short Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process
title_full Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process
title_fullStr Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process
title_full_unstemmed Moisture Adsorption and Desorption Behavior of Raw Materials for the T-RTM Process
title_sort moisture adsorption and desorption behavior of raw materials for the t-rtm process
publisher MDPI AG
series Journal of Composites Science
issn 2504-477X
publishDate 2021-01-01
description The use of fiber reinforced plastics (FRPs) has significant potential to reduce the weight of components. As regards the sustainability of these components, thermoplastic matrices offer more potential for recycling than thermoset ones. A possible manufacturing process for the production of thermoplastic FRPs is thermoplastic resin transfer molding (T-RTM). In this very moisture-sensitive process, ε-caprolactam in addition to an activator and catalyst polymerizes anionically to polyamide 6 (aPA6). The anionic polymerization of aPA6 is slowed down or even completely blocked by the presence of water. This study analyses the sorption behavior of the matrix, fiber, binder and core materials for the production of anionic polyamide 6 composites, which are processed in the thermoplastic RTM process. Water vapor sorption measurements are used to determine the adsorption and desorption behavior of the materials. The maximum moisture loading of the materials provides information about the water adsorption capacity of the material. This knowledge is crucial for correct handling of the materials to achieve a fast process and good properties of the final product.
topic T-RTM
moisture
composite
carbon fiber
glass fiber
anionic polyamide 6 (aPA6)
url https://www.mdpi.com/2504-477X/5/1/12
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AT petergweidler moistureadsorptionanddesorptionbehaviorofrawmaterialsforthetrtmprocess
AT michaelwilhelm moistureadsorptionanddesorptionbehaviorofrawmaterialsforthetrtmprocess
AT philipprosenberg moistureadsorptionanddesorptionbehaviorofrawmaterialsforthetrtmprocess
AT frankhenning moistureadsorptionanddesorptionbehaviorofrawmaterialsforthetrtmprocess
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