Novel tooling for direct melt impregnation of textile with variotherm injection moulding

Methodology and proof of concept

Journal Article (2022)
Author(s)

Vincent Werlen (University of Applied Sciences and Arts Northwestern Switzerland, École Polytechnique Fédérale de Lausanne)

Christian Rytka (University of Applied Sciences and Arts Northwestern Switzerland)

Stephanie Wegmann (University of Applied Sciences and Arts Northwestern Switzerland)

Halime Philipp (University of Applied Sciences and Arts Northwestern Switzerland)

Yara Khalaf (University of Applied Sciences and Arts Northwestern Switzerland)

Véronique Michaud (École Polytechnique Fédérale de Lausanne)

Christian Brauner (University of Applied Sciences and Arts Northwestern Switzerland)

Clemens Dransfeld (TU Delft - Aerospace Manufacturing Technologies)

Research Group
Aerospace Manufacturing Technologies
Copyright
© 2022 Vincent Werlen, Christian Rytka, Stephanie Wegmann, Halime Philipp, Yara Khalaf, Véronique Michaud, Christian Brauner, C.A. Dransfeld
DOI related publication
https://doi.org/10.1177/00219983221130720
More Info
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Publication Year
2022
Language
English
Copyright
© 2022 Vincent Werlen, Christian Rytka, Stephanie Wegmann, Halime Philipp, Yara Khalaf, Véronique Michaud, Christian Brauner, C.A. Dransfeld
Research Group
Aerospace Manufacturing Technologies
Issue number
28
Volume number
56
Pages (from-to)
4245-4257
Reuse Rights

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Abstract

Thermoplastic compression resin transfer moulding coupled with injection moulding is an appealing process for the production of thermoplastic composites. However, its implementation at an industrial scale remains challenging as variotherm injection moulding could prevent solid skin formation in the parting line, making cavity sealing difficult. In this study, a tool for thermoplastic compression resin transfer moulding and the related methods and process parameters for an implementation at an industrial scale are presented. The validity of the concept is proved by producing and characterizing composite plates with elevated fibre volume fractions and advantageous mechanical properties at a range of production temperatures within a cycle time not exceeding 20 min. The best mechanical properties were obtained at a production temperature of 270°C with a bending strength of 477 MPa, a flexural modulus measured at 25.7 GPa and a fibre volume content of 67%.