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Updated: May 21, 2026

Optical Coherence Tomography Based Biomechanical Fluid-Structure Interaction Analysis of Coronary Atherosclerosis Progression
Published on: January 15, 2022
Evaluation of functional severity of coronary artery disease and fluid dynamics' influence on hemodynamic parameters:
Kalimuthu Govindaraju1, Irfan Anjum Badruddin, Girish N Viswanathan
1Department of Mechanical Engineering, University of Malaya, Kuala Lumpur, Malaysia. grajukm@gmail.com
Insights
Fractional flow reserve (FFR) aids in assessing coronary artery disease (CAD) severity. Fluid dynamics principles offer new methods to overcome limitations of current FFR measurements for better CAD evaluation.
Area of Science:
- Cardiology
- Biomedical Engineering
- Fluid Dynamics
Background:
- Coronary Artery Disease (CAD) is a leading cause of cardiovascular death.
- Diagnostic coronary angiography provides anatomical stenosis severity but lacks functional significance.
- Functional assessment of stenosis is crucial for guiding treatment decisions.
Purpose of the Study:
- To review diagnostic modalities for CAD evaluation, focusing on Fractional Flow Reserve (FFR).
- To explore the role of fluid dynamics in assessing the functional severity of coronary artery stenosis.
- To highlight limitations of current invasive methods and introduce novel fluid dynamics-based parameters.
Main Methods:
- Review of existing literature on coronary angiography, FFR, and Coronary Flow Reserve (CFR).
- Discussion of fluid mechanics principles applied to blood flow in stenosed arteries.
- Introduction of Computational Fluid Dynamics (CFD) for coronary flow simulation.
Main Results:
- FFR is a valuable index for functional stenosis assessment, but guide wires can impede accuracy.
- Fluid mechanics offers new parameters like pressure drop and lesion flow coefficients.
- CFD enables detailed simulation of pressure-flow relationships in coronary arteries.
Conclusions:
- Current invasive methods for CAD functional severity assessment have limitations.
- Fluid dynamics principles and CFD modeling present promising avenues for more accurate stenosis evaluation.
- Integrating fluid dynamics into CAD assessment can enhance clinical decision-making for moderate stenoses.
Abstract:
Coronary Artery Disease (CAD) is responsible for most of the deaths in patients with cardiovascular diseases. Diagnostic coronary angiography analysis offers an anatomical knowledge of the severity of the stenosis. The functional or physiological significance is more valuable than the anatomical significance of CAD. Clinicians assess the functional severity of the stenosis by resorting to an invasive measurement of the pressure drop and flow. Hemodynamic parameters, such as pressure wire assessment fractional flow reserve (FFR) or Doppler wire assessment coronary flow reserve (CFR) are well-proven techniques to evaluate the physiological significance of the coronary artery stenosis in the cardiac catheterization laboratory. Between the two techniques mentioned above, the FFR is seen as a very useful index. The presence of guide wire reduces the coronary flow which causes the underestimation of pressure drop across the stenosis which leads to dilemma for the clinicians in the assessment of moderate stenosis. In such condition, the fundamental fluid mechanics is useful in the development of new functional severity parameters such as pressure drop coefficient and lesion flow coefficient. Since the flow takes place in a narrowed artery, the blood behaves as a non-Newtonian fluid. Computational fluid dynamics (CFD) allows a complete coronary flow simulation to study the relationship between the pressure and flow. This paper aims at explaining (i) diagnostic modalities for the evaluation of the CAD and valuable insights regarding FFR in the evaluation of the functional severity of the CAD (ii) the role of fluid dynamics in measuring the severity of CAD.
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