In several fields of engineering the use of carbon fibre reinforced material (CFRP) is increasing. Minimized weight due to CFRPs could lead to lower consumption of raw materials especially in the automotive area. The goal within the research project TC² is the decrease of costs and production time for composite materials. To achieve better performance to weight ratio and to get acceptable production conditions the draping of dry unidirectional textiles and a following RTM process is investigated. Due to the high degree of complexity of automotive structures the forming process is challenging. Gapping in the textile could appear at corners as well as wrinkling or flexion of the fibres. To be able to define the amount and direction of layers or patches it is necessary to know the limits of forming for unidirectional material and to be able to predict the behaviour of the textile during the forming process. For the definition of the process limits several draping strategies are performed on different corner blend geometries. The goal of that work is to define the critical gradient of the flange to get first failures such as wrinkling or gapping. It is also important to understand the influence of different draping strategies. Parallel to the experimental tests a mesoscopic simulation method using an approach with roving and sewing thread is developed and presented. It is able to predict the material behaviour in critical areas (gapping, wrinkling). Different Young’s moduli and failure criteria can be implemented for the two main directions as well as for the bending of the textile. A validation with the experimental results is performed with the aim to enable the prediction of the textile behaviour using simulation methods.
[1]
Gilles Hivet,et al.
Experimental and numerical analyses of textile reinforcement forming of a tetrahedral shape
,
2011
.
[2]
A. K. Pickett,et al.
Meso-modelling of Non-Crimp Fabric composites for coupled drape and failure analysis
,
2006
.
[3]
Ignace Verpoest,et al.
Meso-FE modelling of textile composites: Road map, data flow and algorithms
,
2007
.
[4]
R.H.W. ten Thije,et al.
Drape simulation of non-crimp fabrics
,
2005
.
[5]
M. G. Bader,et al.
Experimental studies and analysis of the draping of woven fabrics
,
2000
.
[6]
P. Boisse,et al.
Different approaches for woven composite reinforcement forming simulation
,
2008
.
[7]
T. Gries,et al.
Draping of Non-Crimp Fabrics for Fibre Reinforced Composites
,
2010
.
[8]
A. Pickett,et al.
MESO-MODELLING OF BIAXIAL NON-CRIMP FABRIC FOR COUPLED DRAPE AND INFUSION SIMULATION
,
2022
.
[9]
Kevin D Potter,et al.
The use of kinematic drape modelling to inform the hand lay-up of complex composite components using woven reinforcements
,
2006
.
[10]
A. Pickett,et al.
A mesoscopic model for coupled drape-infusion simulation of biaxial Non-Crimp Fabric
,
2013
.