open access publication

Article, 2022

An efficient stiffness degradation model for layered composites with arbitrarily oriented tunneling and delamination cracks

Composites Science and Technology, ISSN 1879-1050, 0266-3538, Volume 230, Page 109729, 10.1016/j.compscitech.2022.109729

Contributors

Herrmann, Leon 0000-0002-9850-1203 (Corresponding author) [1] Mikkelsen, Lars Pilgaard 0000-0002-6323-4395 (Corresponding author) [2] Legarth, Brian Nyvang 0000-0002-4448-2537 [2] Duddeck, Fabian M E 0000-0001-8077-5014 [1] Niordson, Christian Frithiof 0000-0001-6779-8924 [2]

Affiliations

  1. [1] Technical University of Munich
  2. [NORA names: Germany; Europe, EU; OECD];
  3. [2] Technical University of Denmark
  4. [NORA names: DTU Technical University of Denmark; University; Denmark; Europe, EU; Nordic; OECD]

Abstract

A periodic 2D finite element model is proposed to identify the axial and transverse stiffness degradation for arbitrarily oriented parallel tunneling cracks. This is achieved with a recently developed off-axis framework taking the 3D deformation into account via a special kinematic formulation. The proposed model is successfully validated against a variety of cases from the literature. Not only is the model capable of accurately predicting what previously was only possible with expensive 3D models or complex analytical methods, but at the same time, it is achieved with remarkably small finite element models which only take seconds for each simulation. A parametric study, shows that by including frictionless contact between the crack surfaces, a significant effect on the stiffness degradation is present for carbon fiber composite materials for off-axis orientations below 40 ° . An effect not seen for the analyzed glass fiber composites. In addition, based on the axial and transverse stiffness degradation, a method is proposed from which the amount of simultaneous tunnel cracking and delamination can be predicted. A Fortran-based user subroutine and supplementary Python scripts for the commercial finite element code Abaqus are made available as a co-published data-repository reference.

Keywords

ABAQUS, Python, Python script, amount, analytical method, carbon, carbon fiber composite materials, cases, code ABAQUS, commercial finite element code ABAQUS, complex analytical methods, composite materials, composition, contact, crack, crack surfaces, deformation, degradation, degradation model, delamination, delamination cracks, effect, element model, fiber composite materials, fiber composites, finite element code ABAQUS, finite element model, formulation, framework, frictionless contact, glass fiber composites, kinematic formulation, layer composition, literature, materials, method, model, off-axis orientation, orientation, parametric study, reference, scripts, simulation, stiffness, stiffness degradation, stiffness degradation model, study, subroutine, surface, tunnel, tunnel cracks, user subroutine

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