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December 3, 2009Annals of Biomedical Engineering53 citationsOpen Access

Simulation of the Three-Dimensional Hinge Flow Fields of a Bileaflet Mechanical Heart Valve Under Aortic Conditions

HSHélène SimonLGLiang GeFSFotis Sotiropoulos

Key Points

  • The aim is to characterize the three-dimensional flow fields of a bileaflet mechanical heart valve under aortic conditions.
  • Conducted three-dimensional pulsatile flow simulations through a bileaflet mechanical heart valve.

Structured PICO

P
Population
Computational model of a bileaflet mechanical heart valve (BMHV) hinge under aortic conditions, reconstructed from Micro-Computed Tomography scans
I
Intervention
Three-dimensional pulsatile flow simulations using a Cartesian sharp-interface immersed-boundary methodology combined with a second-order accurate fractional-step method
O
Outcome
Characterization of hinge flow fields and shear stresses throughout the cardiac cyclesurrogate

Three-dimensional simulations of bileaflet mechanical heart valves reveal complex flow patterns and high shear stresses that may explain their thromboembolic potential.

Abstract

Thromboembolic complications of bileaflet mechanical heart valves (BMHV) are believed to be due to detrimental stresses imposed on blood elements by the hinge flows. Characterization of these flows is thus crucial to identify the underlying causes for complications. In this study, we conduct three-dimensional pulsatile flow simulations through the hinge of a BMHV under aortic conditions. Hinge and leaflet geometries are reconstructed from the Micro-Computed Tomography scans of a BMHV. Simulations are conducted using a Cartesian sharp-interface immersed-boundary methodology combined with a second-order accurate fractional-step method. Physiologic flow boundary conditions and leaflet motion are extracted from the Fluid-Structure Interaction simulations of the bulk of the flow through a BMHV. Calculations reveal the presence, throughout the cardiac cycle, of flow patterns known to be detrimental to blood elements. Flow fields are characterized by: (1) complex systolic flows, with rotating structures and slow reverse flow pattern, and (2) two strong diastolic leakage jets accompanied by fast reverse flow at the hinge bottom. Elevated shear stresses, up to 1920 dyn/cm2 during systole and 6115 dyn/cm2 during diastole, are reported. This study underscores the need to conduct three-dimensional simulations throughout the cardiac cycle to fully characterize the complexity and thromboembolic potential of the hinge flows.

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Cite This Study

Simon et al. (2009) studied this question.

synapsesocial.com/papers/6a70f14f75498292b70a6dafhttps://doi.org/10.1007/s10439-009-9857-0
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