Finite element based damage assessment of composite tidal turbine blades

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7 Citations (Scopus)

Abstract

With significant interest growing in the ocean renewables sector, horizontal axis tidal current turbines are in a position to dominate the marketplace. The test devices that have been placed in operation so far have suffered from premature failures, caused by difficulties with structural strength prediction. The goal of this work is to develop methods of predicting the damage level in tidal turbines under their maximum operating tidal velocity. The analysis was conducted using the finite element software package Abaqus; shell models of three representative tidal turbine blades are produced. Different construction methods will affect the damage level in the blade and for this study models were developed with varying hydrofoil profiles. In order to determine the risk of failure, a user material subroutine (UMAT) was created. The UMAT uses the failure criteria designed by Alfred Puck to calculate the risk of fibre and inter-fibre failure in the blades. The results show that degradation of the stiffness is predicted for the operating conditions, having an effect on the overall tip deflection. The failure criteria applied via the UMAT form a useful tool for analysis of high risk regions within the blade designs investigated.

Original languageEnglish (Ireland)
Article number012106
JournalJournal Of Physics; Conference Series
Volume628
Issue number(2015) 012106
DOIs
Publication statusPublished - 1 Jul 2015
Event11th International Conference on Damage Assessment of Structures, DAMAS 2015 - Ghent, Belgium
Duration: 24 Aug 201526 Aug 2015

Keywords

  • composite materials
  • damage
  • Finite element
  • marine current turbines

Authors (Note for portal: view the doc link for the full list of authors)

  • Authors
  • Fagan, EM; Leen, SB; Kennedy, CR; Goggins, J

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