Rate dependent compressive failure and delamination growth in multidirectional composite laminates
Reviewartikel, 2024

A novel intralaminar model has, for the first time, been applied and validated for the rate-dependent failure of multidirectional carbon/epoxy laminates. Quasi-static compressive failure is evaluated by the growth of intralaminar ratedependent damage combined with the interaction of cohesive zones for interlaminar delamination. A special feature of the intralaminar model is the homogenised ply response, allowing simultaneous damage-degradation of the polymer matrix

combined with the fibres. To model the observed quasi-brittle failure response of the plies under finite deformation, we have used a viscoelastic-viscoplastic matrix combined with damage and isotropic hardening behaviour. Elastic transverse isotropy is used to model the fibre reinforcement of the plies. Standard cohesive surfaces are used to model the initiation and propagation of delamination. Numerical simulations using ABAQUS/Explicit are performed to predict the growth and delamination of intralaminar damage under compression in different laminates with 56 plies of IM7/8552 carbon/epoxy. Predictions of stress versus strain and damage growth are shown to agree well with experimental results for a range of strain rates and stacking sequences.

delamination

isotropic hardening

continuum damage

cohesive surface

Angle-ply laminate

viscoelasticity-viscoplasticity

Författare

Vivekendra Singh

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Ragnar Larsson

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Robin Olsson

Chalmers, Industri- och materialvetenskap, Material- och beräkningsmekanik

Erik Marklund

RISE Research Institutes of Sweden

Journal of Composite Materials

0021-9983 (ISSN) 1530-793X (eISSN)

Vol. 58 3 419-431

Styrkeområden

Transport

Materialvetenskap

Ämneskategorier

Rymd- och flygteknik

Teknisk mekanik

Kompositmaterial och -teknik

Infrastruktur

C3SE (Chalmers Centre for Computational Science and Engineering)

Chalmers e-Commons

DOI

10.1177/00219983231215688

Mer information

Senast uppdaterat

2024-04-15