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Published on: August 1, 2018
A numerical study on hemodynamics in the left coronary bifurcation with normal and hypertension conditions
Saeed Bahrami1, Mahmood Norouzi2
1Faculty of Mechanical Engineering, Shahrood University of Technology, Shahrood, Iran.
Insights
This study analyzed blood flow in coronary arteries, revealing low shear stress and high oscillatory shear index (OSI) in bifurcations are linked to atherosclerosis plaque development.
Area of Science:
- Cardiovascular Physiology
- Biomedical Engineering
- Computational Fluid Dynamics
Background:
- Atherosclerosis plaque development in coronary artery bifurcations is a significant health concern.
- Understanding the hemodynamic factors influencing plaque formation is crucial for disease management.
Purpose of the Study:
- To perform a three-dimensional analysis of non-Newtonian blood flow in the left coronary bifurcation.
- To evaluate hemodynamic parameters under normal and hypertensive conditions to understand atherosclerosis onset and progression.
Main Methods:
- Utilized the Casson model for blood flow and hyperelastic/rigid models for vessel walls.
- Employed a two-way fluid-structure interaction method with a fully implicit second-order backward Euler scheme in ANSYS CFX.
- Applied arbitrary Lagrangian-Eulerian formulation to model artery deformation and blood pressure interactions.
Main Results:
- Identified reduced velocity and backflow at the bifurcation, leading to decreased and oscillatory shear stress in the LCx and LAD branches.
- Observed low wall shear stress (<1.20 Pa) and high oscillatory shear index (>0.3) correlate with increased risk of atherosclerosis plaque development.
- Found specific regions, particularly posterior to the bifurcation, with these hemodynamic conditions are at higher risk.
Conclusions:
- The study provides accurate shear stress values due to realistic 3D geometry and physiological conditions.
- Low wall shear stress and high OSI are critical indicators for predicting atherosclerosis plaque development in coronary bifurcations.
- Findings enhance understanding of atherosclerosis pathogenesis and can inform clinical risk assessment.
Abstract:
In this study, a three-dimensional analysis of the non-Newtonian blood flow was carried out in the left coronary bifurcation. The Casson model and hyperelastic and rigid models were used as the constitutive equation for blood flow and vessel wall model, respectively. Physiological conditions were considered first normal and then compliant with hypertension disease with the aim of evaluating hemodynamic parameters and a better understanding of the onset and progression of atherosclerosis plaques in the coronary artery bifurcation. Two-way fluid-structure interaction method applying a fully implicit second-order backward Euler differencing scheme has been used which is performed in the commercial code ANSYS and ANSYS CFX (version 15.0). When artery deformations and blood pressure are associated, arbitrary Lagrangian-Eulerian formulation is employed to calculate the artery domain response using the temporal blood response. As a result of bifurcation, noticeable velocity reduction and backflow formation decrease shear stress and made it oscillatory at the starting point of the LCx branch which caused the shear stress to be less than 1 and 2 Pa in the LCx and the LAD branches, respectively. Oscillatory shear index (OSI) as a hemodynamic parameter represents the increase in residence time and oscillatory wall shear stress. Because of using the ideal 3D geometry and realistic physiological conditions, the values obtained for shear stress are more accurate than the previous studies. Comparing the results of this study with previous clinical investigations shows that the regions with low wall shear stress less than 1.20 Pa and with high OSI value more than 0.3 are in more potential risk to the atherosclerosis plaque development, especially in the posterior after the bifurcation.
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