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Evaluation of a Novel Laser-assisted Coronary Anastomotic Connector - the Trinity Clip - in a Porcine Off-pump Bypass Model
Published on: November 24, 2014
Numerical analysis of coronary artery bypass grafts: an over view
Amal Ahmed Owida1, Hung Do, Yos S Morsi
1Biomechanics and Tissue Engineering Group, Swinburne University of Technology, Hawthorn, Melbourne, Victoria, Australia.
Insights
Arterial bypass graft failure, often due to intimal thickening, can be studied using computational fluid dynamics (CFD) and fluid-structure interactions. These methods help analyze hemodynamics and validate results with experimental techniques for improved graft design.
Area of Science:
- Biomedical Engineering
- Cardiovascular Research
- Fluid Dynamics
Background:
- Arterial bypass grafts often fail due to intimal thickening (restenosis) and anastomotic intimal hyperplasia.
- Non-uniform hemodynamics, surgical injury, and compliance mismatch contribute to graft failure and occlusion, especially in small-diameter grafts.
Purpose of the Study:
- To review recent numerical investigations of coronary artery bypass graft (CABG) configurations.
- To explore the application of computational fluid dynamics (CFD) and fluid-structure interactions in understanding graft hemodynamics.
Main Methods:
- Utilizing computational fluid dynamics (CFD) to simulate hemodynamic parameters in various bypass configurations.
- Employing fluid-structure interactions to analyze fluid flow and structural forces.
- Validating numerical results with experimental techniques like Laser Doppler Anemometry and Particle Image Velocimetry.
- Leveraging clinical imaging (MRI, CT) for patient-specific blood flow and structure dynamics.
Main Results:
- CFD effectively simulates pressure, flow, and wall shear stress in bypass grafts.
- Fluid-structure interaction models provide insights into stress and strain relationships.
- Experimental and clinical imaging techniques validate numerical findings.
Conclusions:
- Numerical investigations, particularly CFD and FSI, are crucial for understanding CABG hemodynamics and failure mechanisms.
- Combining computational and experimental methods offers a comprehensive approach to improving bypass graft design and patient outcomes.
Abstract:
Arterial bypass grafts tend to fail after some years due to the development of intimal thickening (restenosis). Non-uniform hemodynamics following a bypass operation contributes to restenosis and bypass failure can occur due to the focal development of anastomotic intimal hyperplasia. Additionally, surgical injury aggravated by compliance mismatch between the graft and artery has been suggested as an initiating factor for progress of wall thickening along the suture line Vascular grafts that are small in diameter tend to occlude rapidly. Computational fluid dynamics (CFD) methods have been effectively used to simulate the physical and geometrical parameters characterizing the hemodynamics of various arteries and bypass configurations. The effects of such changes on the pressure and flow characteristics as well as the wall shear stress during a cardiac cycle can be simulated. Recently, utilization of fluid and structure interactions have been used to determine fluid flow parameters and structure forces including stress and strains relationships under steady and transient conditions. In parallel to this, experimental diagnostics techniques such as Laser Doppler Anemometry, Particle Image Velocimetry, Doppler Guide wire and Magnetic Resonance Imaging have been used to provide essential information and to validate the numerical results. Moreover, clinical imaging techniques such as magnetic resonance or computed tomography have assisted considerably in gaining a detailed patient-specific picture of the blood flow and structure dynamics. This paper gives a review of recent numerical investigations of various configurations of coronary artery bypass grafts (CABG). In addition, the paper ends with a summary of the findings and the future directions.
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