This paper builds on a recently developed immersogeometric fluid–structure interaction (FSI) methodology for bioprosthetic heart valve (BHV) modeling and simulation. It enhances the proposed framework in the areas of geometry design and constitutive modeling. With these enhancements, BHV FSI simulations may be performed with greater levels of automation, robustness and physical realism. In addition, the paper presents a comparison between FSI analysis and standalone structural dynamics simulation driven by prescribed transvalvular pressure, the latter being a more common modeling choice for this class of problems. The FSI computation achieved better physiological realism in predicting the valve leaflet deformation than its standalone structural dynamics counterpart.

Dynamic and fluid–structure interaction simulations of bioprosthetic heart valves using parametric design with T-splines and Fung-type material models

KIENDL, JOSEF MAX;REALI, ALESSANDRO;
2015-01-01

Abstract

This paper builds on a recently developed immersogeometric fluid–structure interaction (FSI) methodology for bioprosthetic heart valve (BHV) modeling and simulation. It enhances the proposed framework in the areas of geometry design and constitutive modeling. With these enhancements, BHV FSI simulations may be performed with greater levels of automation, robustness and physical realism. In addition, the paper presents a comparison between FSI analysis and standalone structural dynamics simulation driven by prescribed transvalvular pressure, the latter being a more common modeling choice for this class of problems. The FSI computation achieved better physiological realism in predicting the valve leaflet deformation than its standalone structural dynamics counterpart.
2015
Inglese
Internazionale
55
6
1211
1225
15
Fluid-structure interaction, Bioprosthetic heart valve, Isogeometric analysis, Immersogeometric analysis, Arbitrary Lagrangian-Eulerian, NURBS and T-splines, Kirchhoff-Love shell, Fung-type hyperelastic model, TRACKING/INTERFACE-CAPTURING TECHNIQUE, DIRICHLET BOUNDARY-CONDITIONS, FINITE-ELEMENT COMPUTATION, NAVIER-STOKES EQUATIONS, LARGE-EDDY SIMULATION, SPACE-TIME, FLOW PROBLEMS, MOVING BOUNDARIES, MECHANICAL-BEHAVIOR, MESH UPDATE
10
info:eu-repo/semantics/article
262
Hsu, Ming Chen; Kamensky, David; Xu, Fei; Kiendl, JOSEF MAX; Wang, Chenglong; Wu, Michael C. H.; Mineroff, Joshua; Reali, Alessandro; Bazilevs, Yuri; ...espandi
1 Contributo su Rivista::1.1 Articolo in rivista
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11571/1108950
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