• What is the problem/issue being addressed?
Carbon fibre-reinforced polymers (CFRPs) are a rapidly growing class of materials as they possess excellent stiffness and strength in combination with a low density. They are vital in reaching the European objectives to reduce emissions of greenhouse gases and to achieve more efficient material usage. They are becoming highly popular in aerospace and automotive industries, but their introduction is hampered by their low damage tolerance. This fellowship proposes a novel approach to increase the toughness and hence the damage tolerance of CFRPs by intelligently designing the microstructure of the material.
• Why is it important for society?
Carbon fibre-reinforced polymers (CFRP) are increasingly being used in structural applications. This implies that failure of CFRP structures can have dramatic consequences for the structure as a whole. To maximise safety (for example, for passengers in a car or airplane), it is important that structures have a high damage tolerance. The translaminar fracture toughness is a key parameter that controls the damage tolerance of composite materials, and hence has an important contribution to increasing the safety of CFRP structures. At the moment, microstructures are the uncontrolled result of the manufacturing process. By changing the paradigm to deliberately controlling the microstructure via the manufacturing process, large improvements in CFRP damage tolerance and hence safety are possible.
• What are the overall objectives?
The objective is to predict the microstructure that maximises toughness through modelling, to manufacture this microstructure and to validate the predicted toughness experimentally. The translaminar fracture toughness of CFRPs is expected to be increased by 50-100%. This is realistic given the successful examples from nature as well as recent, but preliminary modelling predictions.