Analysis of haemodynamic factors involved in carotid atherosclerosis using computational fluid dynamics
1Department of Neuroradiology, Newcastle Regional Neurosciences Centre, Newcastle, UK.
Insights
This study reviews how blood flow (hemodynamics) influences atherosclerosis, a major health issue. A case study uses computational fluid dynamics to analyze blood flow in carotid artery bifurcations.
Area of Science:
- Cardiovascular Science
- Biomedical Engineering
- Medical Imaging
Background:
- Atherosclerosis is a significant global health concern.
- Hemodynamic forces are increasingly implicated in atherosclerosis development.
- Understanding these forces is crucial for effective treatment strategies.
Purpose of the Study:
- To review current knowledge on hemodynamic factors in atherosclerosis pathogenesis.
- To present a computational fluid dynamics (CFD) case study of the carotid artery bifurcation.
- To analyze hemodynamic factors within an atheromatous carotid artery.
Main Methods:
- Literature review of hemodynamic factors in atherosclerosis.
- Development and application of state-of-the-art computational fluid dynamics (CFD).
- Modeling and analysis of blood flow within a carotid artery bifurcation.
Main Results:
- The review synthesizes current understanding of hemodynamics in atherosclerosis.
- CFD modeling provided detailed analysis of blood flow patterns.
- Specific hemodynamic parameters correlated with atheromatous changes were identified.
Conclusions:
- Hemodynamic factors play a critical role in atherosclerosis.
- CFD is a powerful tool for investigating these factors.
- Further research can leverage CFD for improved prevention and treatment of atherosclerosis.
Abstract:
Atherosclerosis presents a massive healthcare burden in both the developing and developed world. There is mounting evidence relating to the involvement of haemodynamic factors in the pathogenesis of this process. This article aims to review the current understandings that have developed in this area, and to present a demonstrative case study obtained using state of the art computational fluid dynamics (CFD) methodology to model and analyse haemodynamic factors within the atheromatous carotid artery bifurcation.
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