@article{025f0888df5945c6a9d63a45fb480ed3,
title = "An ANSYS user cohesive element for the modelling of fatigue initiation and propagation of delaminations in composite structures",
abstract = "A deeper understanding of delamination growth under fatigue loading in composite wind turbine blades is required. A new cohesive model for delamination fatigue initiation, which uses initiation S-N curve data to calculate the number of cycles to the introduction of delaminations, is developed and tailored to a state-of-the-art model for fatigue propagation. Both models are implemented in a novel user-defined cohesive element for ANSYS Mechanical APDL. In fatigue propagation-dominated test cases, including with multiple delaminations, the crack growth rate evolution is accurately predicted. In fatigue initiation-dominated cases, a satisfactory prediction is achieved, also showcasing the ability to model fatigue propagation after initiation.",
keywords = "Composite materials, Delamination, Fatigue propagation, Fatigue initiation, Cohesive element",
author = "\{Urcelay Oca\}, Inigo and Bak, \{Brian Lau Verndal\} and Albert Turon and Esben Lindgaard",
year = "2024",
month = sep,
day = "20",
doi = "10.1016/j.engfracmech.2024.110337",
language = "English",
volume = "308",
journal = "Engineering Fracture Mechanics",
issn = "0013-7944",
publisher = "Elsevier",
}