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  4. Characterization and simulation of the interface between a continuous and discontinuous carbon fiber reinforced thermoplastic by using the climbing drum peel test considering humidity
 
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2024
Journal Article
Title

Characterization and simulation of the interface between a continuous and discontinuous carbon fiber reinforced thermoplastic by using the climbing drum peel test considering humidity

Abstract
The objective of this paper is to investigate the debonding behavior of the interface between continuously and discontinuously fiber reinforced thermoplastics using the climbing drum peel test. The study emphasizes on the importance of considering different climatic boundary conditions on the properties of thermoplastics. Specimens with varying moisture contents, from 0m.% up to above 6m.% are prepared and tested. It is observed that an increase in moisture content from 0m.% to 2m.% results in an increase of the fracture surface energy from 1.07·103J/m2 to 2.40·103J/m2 required to separate the two materials, but a further increase in moisture to 6.35m.% conversely results in a subsequent decrease of the required energy to 1.91·103J/m2. The study presents an explanatory model of increasing plasticization of the polymer due to increased polymer chain mobility, which results in more deformation energy being required to propagate the crack, which is corroborated in SEM investigations of the fracture surface. A further increase in humidity leads to polymer degradation due to hydrolysis, which explains the subsequent reduction of the fracture energy. The experimental set up is modeled numerically for the first time with cohesive surfaces, which could successfully reproduce the effective force-displacement curve in the experiment by varying the interface parameters in the model over an influence length, allowing the conclusion of a process induced variation in the interface properties over a specific consolidation length.
Author(s)
Christ, Nicolas
Karlsruhe Institute of Technology -KIT-  
Scheuring, Benedikt M.
Karlsruhe Institute of Technology -KIT-  
Schelleis, Christoph  orcid-logo
Fraunhofer-Institut für Chemische Technologie ICT  
Liebig, Wilfried V.
Karlsruhe Institute of Technology -KIT-, Institute for Applied Materials
Montesano, John
Univesity of Waterloo
Weidenmann, Kay A.
University of Augsburg, Institute of Materials Resource Management
Hohe, Jörg  
Fraunhofer-Institut für Werkstoffmechanik IWM  
Journal
Polymers. Online resource  
Project(s)
Integrated engineering of continuous-discontinuous long fiber reinforced polymer structures  
Funder
Deutsche Forschungsgemeinschaft -DFG-, Bonn  
Open Access
File(s)
Download (39.91 MB)
Rights
CC BY 4.0: Creative Commons Attribution
DOI
10.3390/polym16070976
10.24406/h-467605
Additional full text version
Landing Page
Language
English
Fraunhofer-Institut für Werkstoffmechanik IWM  
Fraunhofer-Institut für Chemische Technologie ICT  
Keyword(s)
  • carbon fibers

  • polyamide 6

  • layered structures

  • delamination

  • cohesive interface modeling

  • mechanical testing

  • continuous-discontinuous FRP

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