4.4 Article

Mitral valve dynamics in structural and fluid-structure interaction models

Journal

MEDICAL ENGINEERING & PHYSICS
Volume 32, Issue 9, Pages 1057-1064

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.medengphy.2010.07.008

Keywords

Biomechanics; Finite element; Fluid-structure interaction; Heart valves; Mitral valve

Funding

  1. British Heart Foundation
  2. ESPRC
  3. MRC

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Modelling and simulation of heart valves is a challenging biomechanical problem due to anatomical variability pulsatile physiological pressure loads and 3D anisotropic material behaviour Current valvular models based on the finite element method can be divided into those that do model the interaction between the blood and the valve (fluid-structure interaction or wet models) and those that do not (structural models or dry models) Here an anatomically sized model of the antral valve has been used to compare the difference between structural and fluid-structure interaction techniques in two separately simulated scenarios valve closure and a cardiac cycle Using fluid-structure interaction the valve has been modelled separately in a straight tubular volume and in a U-shaped ventricular volume in order to analyse the difference in the coupled fluid and structural dynamics between the two geometries The results of the structural and fluid-structure interaction models have shown that the stress distribution in the closure simulation is similar in all the models but the magnitude and closed configuration differ In the cardiac cycle simulation significant differences in the valvular dynamics were found between the structural and fluid-structure interaction models due to difference in applied pressure loads Comparison of the fluid domains of the fluid-structure interaction models have shown that the ventricular geometry generates slower fluid velocity with increased vorticity compared to the tubular geometry In conclusion structural heart valve models are suitable for simulation of static configurations (opened or closed valves) but in order to simulate full dynamic behaviour fluid-structure interaction models are required (C) 2010 IPEM Published by Elsevier Ltd All rights reserved

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