Artikel

Evaluation of durability of composite materials applied to renewable marine energy: Case of ducted tidal turbine

Composite materials are used in many marine structures such as renewable marine energy conversion systems because of their fairly good mechanical properties and especially their low densities compared to traditional materials. The most advanced features currently available in finite element (FE) Abaqus/Explicit have been employed to simulate the behavior of the composite nozzle under hydrodynamic and impact loading. A hydrodynamic analysis was considered to design the nozzle turbine and the hydrodynamic pressure obtained was then implemented as boundary conditions to a FE code. The goal of this article is to evaluate the durability of composite materials of a ducted tidal turbine under critical loads (hydrodynamic and hydrostatic pressures) with the implementation of a failure criterion using the finite element analysis (FEA). The mechanical behavior was analyzed for two materials (Carbon-epoxy/ Glass-polyester). This has been accomplished by forming a user-created routine (VUMAT) and executing it in the ABAQUS software.

Language
Englisch

Bibliographic citation
Journal: Energy Reports ; ISSN: 2352-4847 ; Volume: 4 ; Year: 2018 ; Pages: 31-40 ; Amsterdam: Elsevier

Classification
Wirtschaft
Subject
Ducted tidal turbine
Finite element analysis
Marine composite structures
VUMAT

Event
Geistige Schöpfung
(who)
Nachtane, M.
Tarfaoui, M.
Saifaoui, D.
El Moumen, A.
Hassoon, O. H.
Benyahia, H.
Event
Veröffentlichung
(who)
Elsevier
(where)
Amsterdam
(when)
2018

DOI
doi:10.1016/j.egyr.2018.01.002
Handle
Last update
10.03.2025, 11:43 AM CET

Data provider

This object is provided by:
ZBW - Deutsche Zentralbibliothek für Wirtschaftswissenschaften - Leibniz-Informationszentrum Wirtschaft. If you have any questions about the object, please contact the data provider.

Object type

  • Artikel

Associated

  • Nachtane, M.
  • Tarfaoui, M.
  • Saifaoui, D.
  • El Moumen, A.
  • Hassoon, O. H.
  • Benyahia, H.
  • Elsevier

Time of origin

  • 2018

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