• DocumentCode
    1491075
  • Title

    Finite-element analysis of aortic valve-sparing: influence of graft shape and stiffness

  • Author

    Grande-Allen, K. Jane ; Cochran, Richard P. ; Reinhall, Per G. ; Kunzelman, Karyn S.

  • Author_Institution
    Dept. of Biomed. Eng., Cleveland Clinic Found., OH, USA
  • Volume
    48
  • Issue
    6
  • fYear
    2001
  • fDate
    6/1/2001 12:00:00 AM
  • Firstpage
    647
  • Lastpage
    659
  • Abstract
    Aortic valve incompetence due to aortic root dilation may be surgically corrected by resuspension of the native valve within a vascular graft. This study was designed to examine the effect of graft shape and material properties on aortic valve function, using a three-dimensional finite-element model of the human aortic valve and root. First, the normal root elements in the model were replaced with graft elements, in either a cylindrical or a "pseudosinus" shape. Next, the elements were assigned the material properties of either polyethylene terephthalate; expanded polytetrafluoroethylene, or polyurethane. Diastolic pressures were applied, and stresses, strains, and coaptation were recorded for the valve, root, and graft. Regarding shape, the cylindrical graft models increased the valve stresses by up to 173%, whereas the root-shaped graft model increased valve stresses by up to 40% as compared to normal. Regarding material properties, the polyurethane models demonstrated valve stress, strain, and coaptation values closest to normal, for either root shape. Graft shape had a greater effect on the simulated valve function than did the material property of the graft. Optimizing the shape and material design of the graft may result in improved longevity of the spared valve if a normal environment is restored.
  • Keywords
    biomechanics; cardiology; elasticity; finite element analysis; physiological models; surgery; aortic root dilation; aortic valve incompetence; aortic valve sparing; cardiac biomechanics; diastolic pressures; expanded polytetrafluoroethylene; graft shape; graft stiffness; heart surgery; improved longevity; material properties; native valve resuspension; polyethylene terephthalate; polyurethane; surgical correction; Capacitive sensors; Design optimization; Finite element methods; Humans; Material properties; Polyethylene; Shape; Stress; Surgery; Valves; Aorta; Aortic Valve; Aortic Valve Insufficiency; Blood Vessel Prosthesis Implantation; Computer Simulation; Finite Element Analysis; Humans; Polycarboxylate Cement; Polyethylene Terephthalates; Polytetrafluoroethylene; Stress, Mechanical;
  • fLanguage
    English
  • Journal_Title
    Biomedical Engineering, IEEE Transactions on
  • Publisher
    ieee
  • ISSN
    0018-9294
  • Type

    jour

  • DOI
    10.1109/10.923783
  • Filename
    923783