Medical Engineering & Physics
Volume 31, Issue 4 , Pages 448-453, May 2009

Virtual optimization of self-expandable braided wire stents

  • Matthieu De Beule

      Affiliations

    • Institute Biomedical Technology (IBiTech), Ghent University, Ghent, Belgium
    • Corresponding Author InformationCorresponding author at: Institute Biomedical Technology, Ghent University De Pintelaan 185 9000-Gent. Tel.: +32 9 332 43 20; fax: +32 9 332 41 59.
  • ,
  • Sofie Van Cauter

      Affiliations

    • Institute Biomedical Technology (IBiTech), Ghent University, Ghent, Belgium
  • ,
  • Peter Mortier

      Affiliations

    • Institute Biomedical Technology (IBiTech), Ghent University, Ghent, Belgium
  • ,
  • Denis Van Loo

      Affiliations

    • Institute for Nuclear Sciences (INW), Ghent University, Ghent, Belgium
  • ,
  • Rudy Van Impe

      Affiliations

    • Laboratory for Research on Structural Models, Ghent University, Ghent, Belgium
  • ,
  • Pascal Verdonck

      Affiliations

    • Institute Biomedical Technology (IBiTech), Ghent University, Ghent, Belgium
  • ,
  • Benedict Verhegghe

      Affiliations

    • Institute Biomedical Technology (IBiTech), Ghent University, Ghent, Belgium

Received 6 December 2007; received in revised form 14 November 2008; accepted 17 November 2008. published online 05 January 2009.

Abstract 

At present, the deployment of self-expandable braided stents has become a common and widely used minimally invasive treatment for stenotic lesions in the cardiovascular, gastrointestinal and respiratory system. To improve these revascularization procedures (e.g. increase the positioning accuracy) the optimal strategy lies in the further development of the stent design. In the context of optimizing braided stent designs, computational models can provide an excellent research tool complementary to analytical models. In this study, a finite element based modelling strategy is proposed to investigate and optimize the mechanics of braided stents. First a geometrical and finite element model of a braided Urolume endoprosthesis was built with the open source pyFormex design tool. The results of the reference simulation of the Urolume stent are in close agreement with both analytical and experimental data. Subsequently, a simplex-based design optimization algorithm automatically adjusts the reference Urolume geometry to facilitate precise positioning by reducing the foreshortening with 20% while maintaining the radial stiffness. Therefore, the proposed modelling strategy appears to be a promising optimization methodology in braided stent design.

Keywords: Braided wire stent, Finite element, Optimization, PyFormex

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PII: S1350-4533(08)00210-5

doi:10.1016/j.medengphy.2008.11.008

Medical Engineering & Physics
Volume 31, Issue 4 , Pages 448-453, May 2009