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Sort articles by: Volume | Date | Most Rates | Most Views | Reviews | Alphabet
1.

Effect of non-linear leaflet material properties on aortic valve dynamics - A coupled fluid-structure approach Pages 123-136 Right click to download the paper Download PDF

Authors: Armin Amindari, Kadir Kırkköprü, İrfan levent Saltık, Emin Sünbüloğlu

DOI: 10.5267/j.esm.2021.1.001

Keywords: Aortic Valve Leaflets, Valve Dynamics, Fluid-Structure Interaction, Non-Linear Material Properties

Abstract:
Due to complex structure of aortic valve (AV) leaflets and its strong interaction with the blood flow field, realistic and accurate modeling of the valve deformations comes with many challenges. In this study, we aimed to investigate the effect of AV material properties on the valve deformations, by implementing different non-linear properties of the AV leaflets in three different material models. In the computations, we captured the dynamics between the leaflet deformations and blood flow field variations by using an iterative implicit fluid-structure interaction (FSI) approach. By comparison of the FSI simulation results of these three models, the effects of hyperelasticity and anisotropy on the valve deformations have been studied in detail. The simulation results reveal the fact that the material characteristics strongly affect the deformation characteristics of the leaflets in the systolic phase. The material anisotropy stabilizes the leaflet movements during the systolic phase, which helps decreasing the flutters of the leaflets during the peak jet blood flow. Similarly, it has been observed that the hyperelastic behavior yields an increase in the valve opening area during systolic phase which prevents the risk of excessive work of the heart due to high pressure difference. Furthermore, simulation results indicate that the stress levels in hyperelastic model are much lower, compared to the stress levels in linear elastic one. This suggests that the non-linear material character of the leaflets decreases the risk of calcification.
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Journal: ESM | Year: 2021 | Volume: 9 | Issue: 2 | Views: 1148 | Reviews: 0

 
2.

Numerical method to measure velocity integration, stroke volume and cardiac output while rest: using 2D fluid-solid interaction model Pages 91-100 Right click to download the paper Download PDF

Authors: Arezoo Khosravi, Hamidreza Ghasemi Bahraseman, Kamran Hassani, Davood Kazemi-Saleh

Keywords: Echo-Doppler flow, Fluid-structure interaction, Hemodynamics, Natural aortic valve

Abstract:
Development of knowledge of cardiovascular diseases and treatments strongly depends on understanding of hemodynamic measurements. Hemodynamic parameters, therefore, have been investigated using simulation-based methods. A two-dimensional model was applied for seven healthy subjects with echo-Doppler at rest. Echocardiography imaging was also utilized to gain the geometry of the aortic valve. Fluid-Structure Interaction (FSI) model was carried out, coupling an Arbitrary Lagrangian-Eulerian mesh. Pressure loads were used as boundary conditions on the valve’s ventricular and aortic sides. Pressure loads used were the calculated brachial pressures plus differences between brachial, central and left ventricular pressures. The FSI model predicted the velocity integration, stroke volume and cardiac output over a range of heart rates while rest. Numerical results generally had a difference of 5.4 to 15.87% with Doppler results. Linear correlations between numerical and clinical approaches have been applied. This makes possible predictions achieved from the FSI model to be gained which are highly accurate (e.g. correlation factor r = 0.995, 0.990 and 0.990 for velocity integration, stroke volume and cardiac output, respectively). The obtained numerical results showed that numerical methods can be combined with clinical measurements to provide good estimates of patient specific hemodynamics for different subjects.
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Journal: ESM | Year: 2014 | Volume: 2 | Issue: 2 | Views: 3000 | Reviews: 0

 

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