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Micromechanical modeling for the probabilistic failure prediction of stents in high-cycle fatigue

Article dans une revue avec comité de lecture
Auteur
GUERCHAIS, Raphaël
206863 Laboratoire des Arts et Métiers ParisTech d'Angers - Procédés Matériaux Durabilité [LAMPA - PMD]
1167 Laboratoire de Mécanique des Solides [LMS]
SCALET, Giulia
1167 Laboratoire de Mécanique des Solides [LMS]
CONSTANTINESCU, Andrei
1167 Laboratoire de Mécanique des Solides [LMS]
AURICCHIO, Ferdinando

URI
http://hdl.handle.net/10985/11316
DOI
10.1016/j.ijfatigue.2016.02.026
Date
2016
Journal
International Journal of Fatigue

Résumé

The present paper introduces a methodology for the high-cycle fatigue design of balloon-expandable stents. The proposed approach is based on a micromechanical model coupled with a probabilistic methodology for the failure prediction of stents. This allows to account for material heterogeneity and scatter, to introduce a fatigue criterion able to consider stress gradients, and to perform a probabilistic analysis to obtain general predictions from a limited number of realizations of microstructures investigated. Numerical simulations have allowed to highlight the noteworthy characteristics of the mechanical response in the stent as well as the heterogeneity of the mechanical fields due to stress concentrations in the unit cell geometry and to strain incompatibilities between the grains induced by the anisotropy of their mechanical behavior. The predicted survival probability of the stent is in accordance with the experimental data from the literature. Moreover, the influence of the amplitude of the arterial pressure on the fatigue strength of the stent has been evaluated.

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Documents liés

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  • Microstructure-dependent predictions of the effect of defect size and shape on the high-cycle fatigue strength 
    Communication avec acte
    GUERCHAIS, Raphaël; ccMOREL, Franck; ccSAINTIER, Nicolas (2016)
    This study aims to investigate the effects of both the microstructure and void on the high-cycle fatigue behavior of metallic materials. To deal with this matter, finite element analyses of polycrystalline aggregates ...
  • Influence of the microstructure and voids on the high-cycle fatigue strength of 316L stainless steel under multiaxial loading 
    Article dans une revue avec comité de lecture
    GUERCHAIS, Raphaël; ccMOREL, Franck; ccSAINTIER, Nicolas; ROBERT, Camille (Wiley-Blackwell, 2015)
    In the present study, the effects of both the microstructure and voids on the high-cycle fatigue behaviour of the 316L austenitic stainless steel are investigated by using finite element simulations of polycrystalline ...
  • Étude micromécanique de l’influence de défauts sur la tenue en fatigue à grand nombre de cycles 
    Communication avec acte
    GUERCHAIS, Raphaël; ccSAINTIER, Nicolas; ccMOREL, Franck; ROBERT, Camille (Congrès Français de mécanique, 2013)
    The aim of this study is to analyse the influence of micro-notches on the fatigue behaviour of an electrolytic copper using finite element simulations of polycrystalline aggregates. In these simulations, in which the grains ...
  • Competition between microstructure and defect in multiaxial high cycle fatigue 
    Article dans une revue avec comité de lecture
    ccMOREL, Franck; GUERCHAIS, Raphaël; ccSAINTIER, Nicolas (Università di Cassino, 2015)
    This study aims at providing a better understanding of the effects of both microstructure and defect on the high cycle fatigue behavior of metallic alloys using finite element simulations of polycrystalline aggregates. It ...
  • Effect of defect size and shape on the high-cycle fatigue behavior 
    Article dans une revue avec comité de lecture
    GUERCHAIS, Raphaël; ccMOREL, Franck; ccSAINTIER, Nicolas (Elsevier, 2017)
    This study aims to examine the effects of both material microstructure and voids on the high-cycle fatigue behavior of metals. To deal with this matter, finite element analyses of polycrystalline aggregates are carried ...

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