Fluid-structure interaction of heart valve dynamics in comparison to finite-element analysis

Author:

Borowski Finja1,Sämann Michael2,Pfensig Sylvia3,Wüstenhagen Carolin3,Ott Robert3,Kaule Sebastian3,Siewert Stefan3,Grabow Niels2,Schmitz Klaus-Peter2,Stiehm Michael3

Affiliation:

1. 1Institute for ImplantatTechnology and Biomaterials e.V., Friedrich-Barnewitz- Str. 4, 18119 Rostock-Warnemünde, Germany

2. 2Institute for Biomedical Engineering, Rostock University Medical Center, Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany

3. 3Institute for ImplantatTechnology and Biomaterials e.V., Friedrich-Barnewitz-Str. 4, 18119 Rostock-Warnemünde, Germany

Abstract

AbstractAn established therapy for aortic valve stenosis and insufficiency is the transcatheter aortic valve replacement. By means of numerical simulation the valve dynamics can be investigated to improve the valve prostheses performance. This study examines the influence of the hemodynamic properties on the valve dynamics utilizing fluidstructure interaction (FSI) compared with results of finiteelement analysis (FEA). FEA and FSI were conducted using a previously published aortic valve model combined with a new developed model of the aortic root. Boundary conditions for a physiological pressurization were based on measurements of ventricular and aortic pressure from in vitro hydrodynamic studies of a commercially available heart valve prosthesis using a pulse duplicator system. A linear elastic behavior was assumed for leaflet material properties and blood was specified as a homogeneous, Newtonian incompressible fluid. The type of fluid domain discretization can be described with an arbitrary Lagrangian-Eulerian formulation. Comparison of significant points of time and the leaflet opening area were used to investigate the valve opening behavior of both analyses. Numerical results show that total valve opening modelled by FEA is faster compared to FSI by a factor of 5. In conclusion the inertia of the fluid, which surrounds the valve leaflets, has an important influence on leaflet deformation. Therefore, fluid dynamics should not be neglected in numerical analysis of heart valve prostheses.

Publisher

Walter de Gruyter GmbH

Subject

Biomedical Engineering

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