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1.
Int J Numer Method Biomed Eng ; 28(5): 513-27, 2012 May.
Article in English | MEDLINE | ID: mdl-25099455

ABSTRACT

Children born with single ventricle heart defects typically undergo a staged surgical procedure culminating in a total cavopulmonary connection (TCPC) or Fontan surgery. The goal of this work was to perform physiologic, patient-specific hemodynamic simulations of two post-operative TCPC patients by using fluid-structure interaction (FSI) simulations. Data from two patients are presented, and post-op anatomy is reconstructed from MRI data. Respiration rate, heart rate, and venous pressures are obtained from catheterization data, and inflow rates are obtained from phase contrast MRI data and are used together with a respiratory model. Lumped parameter (Windkessel) boundary conditions are used at the outlets. We perform FSI simulations by using an arbitrary Lagrangian-Eulerian finite element framework to account for motion of the blood vessel walls in the TCPC. This study is the first to introduce variable elastic properties for the different areas of the TCPC, including a Gore-Tex conduit. Quantities such as wall shear stresses and pressures at critical locations are extracted from the simulation and are compared with pressure tracings from clinical data as well as with rigid wall simulations. Hepatic flow distribution and energy efficiency are also calculated and compared for all cases. There is little effect of FSI on pressure tracings, hepatic flow distribution, and time-averaged energy efficiency. However, the effect of FSI on wall shear stress, instantaneous energy efficiency, and wall motion is significant and should be considered in future work, particularly for accurate prediction of thrombus formation.


Subject(s)
Biomechanical Phenomena/physiology , Computer Simulation , Fontan Procedure , Heart Defects, Congenital , Hemodynamics/physiology , Models, Cardiovascular , Child , Child, Preschool , Female , Finite Element Analysis , Heart Defects, Congenital/pathology , Heart Defects, Congenital/physiopathology , Heart Defects, Congenital/surgery , Humans , Male , Pressure , Stress, Mechanical
2.
Biomech Model Mechanobiol ; 9(4): 481-98, 2010 Aug.
Article in English | MEDLINE | ID: mdl-20111978

ABSTRACT

A computational vascular fluid-structure interaction framework for the simulation of patient-specific cerebral aneurysm configurations is presented. A new approach for the computation of the blood vessel tissue prestress is also described. Simulations of four patient-specific models are carried out, and quantities of hemodynamic interest such as wall shear stress and wall tension are studied to examine the relevance of fluid-structure interaction modeling when compared to the rigid arterial wall assumption. We demonstrate that flexible wall modeling plays an important role in accurate prediction of patient-specific hemodynamics. Discussion of the clinical relevance of our methods and results is provided.


Subject(s)
Blood Vessels/physiopathology , Computer Simulation , Diagnostic Techniques and Procedures , Hemorheology/physiology , Intracranial Aneurysm/physiopathology , Blood Flow Velocity , Finite Element Analysis , Humans , Models, Biological , Shear Strength , Stress, Mechanical
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