Three-Dimensional Asymmetrical Modeling of the Mitral Valve: A Finite Element Study with Dynamic Boundaries Khee Hiang Lim1, Joon Hock Yeo1, Carlos M. G. Duran2 1Nanyang Technological University, School of Mechanical and Aerospace Engineering, Singapore, 2The International Heart Institute of Montana Foundation, Missoula, Montana, USA |
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Background and aim of the study: Previous computational
studies of the normal mitral valve have been limited because they assumed
symmetrical modeling and artificial boundary conditions. The study aim
was to model the mitral valve complex asymmetrically with three-dimensional
(3-D) dynamic boundaries obtained from in-vivo experimental data. |
trigones experienced low stress. High leaflet stress
was observed during peak pressure loading. During isovolumic relaxation,
the leaflets were highly stretched between the anterolateral trigone
and the posteromedial commissure, resulting in a prominent secondary
leaflet stress re-increment. This has not been observed previously, as
symmetric models with artificial boundary conditions were studied only
in the ejection phase. |
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