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TRANSITION SIGNED

TRANSITION - Tool-Part-Interaction simulation process linked to laminate quality

Total Cost €

0

EC-Contrib. €

0

Partnership

0

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Project "TRANSITION" data sheet

The following table provides information about the project.

Coordinator
TECHNISCHE UNIVERSITAET MUENCHEN 

Organization address
address: Arcisstrasse 21
city: MUENCHEN
postcode: 80333
website: www.tu-muenchen.de

contact info
title: n.a.
name: n.a.
surname: n.a.
function: n.a.
email: n.a.
telephone: n.a.
fax: n.a.

 Coordinator Country Germany [DE]
 Project website http://www.lcc.mw.tum.de
 Total cost 348˙125 €
 EC max contribution 348˙125 € (100%)
 Programme 1. H2020-EU.3.4.5.4. (ITD Airframe)
 Code Call H2020-CS2-CFP02-2015-01
 Funding Scheme CS2-RIA
 Starting year 2016
 Duration (year-month-day) from 2016-07-01   to  2019-06-30

 Partnership

Take a look of project's partnership.

# participants  country  role  EC contrib. [€] 
1    TECHNISCHE UNIVERSITAET MUENCHEN DE (MUENCHEN) coordinator 348˙125.00

Map

 Project objective

Highly integrated, complex composite structures require a thorough evaluation of processing tools and parameters in order to achieve a competitive time-to-market as well as a cost efficient solution. The link between processing conditions and final laminate quality as to porosity and geometric deviations can be captured by processing simulation tools. Goal of this project is to adapt and implement two existing model approaches into an ABAQUS framework to be able to validate and adapt the tooling concept early in the design process. One of the models will be implemented as a subroutine in ABAQUS to capture the prepreg consolidation depending on the prevailing processing conditions, while the second model is subsequently capable of predicting the porosity within the part depending on the temperature and pressure history. The predicted part quality will be compared with physical experiments on parts with increasing complexity.

 Publications

year authors and title journal last update
List of publications.
2017 Matthias Copony, Mathias Peter Hartmann
Towards a simulation strategy to predict residual porosity on partially impregnated CFRP prepregs
published pages: , ISSN: , DOI:
2019-06-13

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