open access publication

Article, 2022

An adaptive floating node based formulation for the analysis of multiple delaminations under quasi-static loading

Composites Part A Applied Science and Manufacturing, ISSN 1878-5840, 1359-835X, Volume 156, Page 106846, 10.1016/j.compositesa.2022.106846

Contributors

Trabal, Guillem Gall 0000-0002-4316-6428 [1] Bak, Brian Lau Verndal [1] Chen, Bo-Yang 0000-0001-7393-4363 [2] Lindgaard, Esben 0000-0002-8253-2419 (Corresponding author) [1]

Affiliations

  1. [1] Aalborg University
  2. [NORA names: AAU Aalborg University; University; Denmark; Europe, EU; Nordic; OECD];
  3. [2] Delft University of Technology
  4. [NORA names: Netherlands; Europe, EU; OECD]

Abstract

A novel and efficient numerical formulation for the modelling of multiple delaminations growth in laminated composite materials subjected to quasi-static loading is presented. The proposed formulation alleviates the high computational cost associated with models featuring cohesive elements by using a novel Adaptive Refinement Scheme and an Adaptive Floating Node Method Element to refine the model effectively during the analysis without modifying the global finite element connectivity. The formulation has been implemented in a MATLAB finite element code and validated with single and multiple delamination numerical models with varying mode mixities. The new formulation provides accurate results comparable to standard fully refined finite element models while drastically lowering the computational time of the analysis.

Keywords

MATLAB, MATLAB finite element code, accurate results, adaptation, adaptive refinement scheme, analysis, code, cohesive elements, composite materials, computation time, connection, delamination, delamination growth, efficient numerical formulation, element code, element connectivity, elements, finite element code, floating nodes, formulation, growth, laminated composite materials, load, materials, method elements, mixity, mode, mode mixity, model, multiple delaminations, nodes, numerical formulation, numerical model, quasi-static loading, refinement scheme, results, scheme, time

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