Computational modeling of heart valve dynamics incorporating both fluid dynamics and valve structural responses has been challenging. In this study, we developed a novel fully-coupled fluid–structure interaction (FSI) model using smoothed particle hydrodynamics (SPH). A previously developed nonlinear finite element (FE) model of transcatheter aortic valves (TAV) was utilized to couple with SPH to simulate valve leaflet dynamics throughout the entire cardiac cycle. Comparative simulations were performed to investigate the impact of using FE-only models vs. FSI models, as well as an isotropic vs. an anisotropic leaflet material model in TAV simulations. From the results, substantial differences in leaflet kinematics between FE-only and FSI mo...
This paper builds on a recently developed immersogeometric fluid–structure interaction (FSI) methodo...
The natural aortic valve is able to outlast almost any man-made valve known to date and is a marvell...
Failure of synthetic heart valves is usually caused by tearing and calcification of the leaflets. Le...
In this study, we present a fully-coupled fluid-structure interaction (FSI) framework that combines ...
In this study, we present a fully-coupled fluid-structure interaction (FSI) framework that combines ...
An established therapy for aortic valve stenosis and insufficiency is the transcatheter aortic valve...
Since the first-in-human transcatheter aortic valve (TAV) implantation in 2002, there has been rapid...
The development of heart valve stenosis and sclerosis can lead to the development of fatal complicat...
The complicated interaction between a fluid flow and a deformable structure is referred to as fluid–...
Numerical modeling can provide detailed and quantitative information on aortic root (AR) biomechanic...
Modeling and simulation of heart valves had been a demanding biomechanical problem due to the variat...
This study developed a realistic 3D FSI computational model of the aortic valve using the fixed-grid...
This study developed a realistic 3D FSI computational model of the aortic valve using the fixed-grid...
Built on the hybrid immersed boundary/finite element (IB/FE) method, fluid–structure interaction (FS...
Aortic valve diseases are among the most common cardiovascular defects. Since a non-functioning valv...
This paper builds on a recently developed immersogeometric fluid–structure interaction (FSI) methodo...
The natural aortic valve is able to outlast almost any man-made valve known to date and is a marvell...
Failure of synthetic heart valves is usually caused by tearing and calcification of the leaflets. Le...
In this study, we present a fully-coupled fluid-structure interaction (FSI) framework that combines ...
In this study, we present a fully-coupled fluid-structure interaction (FSI) framework that combines ...
An established therapy for aortic valve stenosis and insufficiency is the transcatheter aortic valve...
Since the first-in-human transcatheter aortic valve (TAV) implantation in 2002, there has been rapid...
The development of heart valve stenosis and sclerosis can lead to the development of fatal complicat...
The complicated interaction between a fluid flow and a deformable structure is referred to as fluid–...
Numerical modeling can provide detailed and quantitative information on aortic root (AR) biomechanic...
Modeling and simulation of heart valves had been a demanding biomechanical problem due to the variat...
This study developed a realistic 3D FSI computational model of the aortic valve using the fixed-grid...
This study developed a realistic 3D FSI computational model of the aortic valve using the fixed-grid...
Built on the hybrid immersed boundary/finite element (IB/FE) method, fluid–structure interaction (FS...
Aortic valve diseases are among the most common cardiovascular defects. Since a non-functioning valv...
This paper builds on a recently developed immersogeometric fluid–structure interaction (FSI) methodo...
The natural aortic valve is able to outlast almost any man-made valve known to date and is a marvell...
Failure of synthetic heart valves is usually caused by tearing and calcification of the leaflets. Le...