Shear property measurement of additively manufactured continuous fibre reinforced plastics by in-plane torsion testing

Research output: Contribution to journalArticlepeer-review

Abstract

In-plane shear properties are essential for calculating the plane stress state of composites. Test results for in-plane shear properties of fibre-reinforced polymers (FRPs) are generally obtained with methods that generate multiaxial stress states, and no simple shear response is measured. In this paper, the in plane torsion test method is applied to additively manufactured (AM) continuous FRPs. With this method, planar simple shear loading is achieved for a dedicated, spiral lay-up of the AM specimen. Using digital image correlation, surface strains were obtained for an observed section of the specimen, and shear stress–strain curves were extracted for fibre bundles, co-extruded thermoplastic material, and the composite of both. Shear stiffness and shear strength values are yielded for representative surface areas. Furthermore, the fracture behaviour in shear is discussed. The co-extruded thermoplastic filler material is shown to be the phase where cracks progress is most likely, however as some fibre bundles are split, these can be bridged by the crack. In conclusion, the method is well suited for determination of shear properties of AM continuous FRP material, giving consistent results for the test sample.
Original languageEnglish
Article number102805
Number of pages11
JournalAdditive Manufacturing
Volume55
DOIs
Publication statusPublished - Jul 2022

UN SDGs

This output contributes to the following UN Sustainable Development Goals (SDGs)

  1. SDG 9 - Industry, Innovation, and Infrastructure
    SDG 9 Industry, Innovation, and Infrastructure

Fields of science

  • 203 Mechanical Engineering
  • 203003 Fracture mechanics
  • 203007 Strength of materials
  • 203012 Aerospace engineering
  • 203015 Mechatronics
  • 203022 Technical mechanics
  • 203034 Continuum mechanics
  • 205016 Materials testing
  • 201117 Lightweight design
  • 203002 Endurance strength
  • 203004 Automotive technology
  • 203011 Lightweight design
  • 205015 Composites
  • 211905 Bionics

JKU Focus areas

  • Sustainable Development: Responsible Technologies and Management

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