Continuous tow shearing for the automated manufacture of defect-free complex 3D geometry composite parts

Continuous tow shearing for the automated manufacture of defect-free complex 3D geometry composite parts

 

Join us for a webinar with the winner of the 2025 Leslie Holliday Prize, exploring Continuous tow shearing for the automated manufacture of defect-free complex 3D geometry composite parts

 

What to expect

It has always been challenging to manufacture a composite structure with complex geometry using automated fibre placement (AFP) process. The tool surface is difficult to tessellated using fibre tapes with a finite width, without producing gaps and overlaps, and fibre steering along non-geodesic fibre paths produces various defects such as tape buckling and pull-up. In this work, a defect-free fibre-steering process on a complex surface was demonstrated by realising the continuous tow shearing (CTS) process in three dimensions.

A new head control algorithm was developed, which defines the head orientations and trajectories based on the pin-jointed net model to manipulate the fibre tow using both in-plane shear and out-of-plane twisting deformations. Fibre steering process utilising this new algorithm was tested on a doubly-curved surface, using an industrial robot arm equipped with a CTS prototype head, and its layup quality and accuracy were assessed by using a three-dimensional laser profile scanner.

An experimental comparison with the conventional AFP process showed that the new control algorithm enables defect-free fibre steering on complex 3D surfaces allowing for simplifying the design and analysis of novel composite structures.

 

You will hear from

Byung Chul Kim, Edwin Rosario Gabriel & Michelle Rautmann
  • ByungChul (Eric) Kim is a distinguished academic and inventor with a strong focus on composite materials and manufacturing processes. He holds an MSc and PhD in Mechanical Engineering from KAIST and has contributed significantly to the field through his innovative technologies and research.

    Kim's work has led to the development of 'Continuous Tow Shearing' technology, recognized as the world-first defect-free fibre placement technology, and the co-founding of iCOMAT Ltd. His research spans various fields, including automotive, defence, marine, and machinery, bridging fundamental science with industrial implementation.

    Kim's contributions have been recognised with multiple international patents and have been showcased in various research and development projects with strong potential for industrial applications

 

 

MTG logo

 

Join the IOM3 Composites Group (members only; requires logging in) to receive the latest news, technical content and information about events.