Key result
The laminar flow model accurately predicted inlet flow velocity but overestimated velocity at the stenosis throat at Re=390, suggesting a transition to a turbulent regime.
CFD simulations using a laminar flow model may overestimate flow velocity at the stenosis throat at higher flow rates (Re=390) due to the development of turbulence.
Laminar CFD models may overestimate stenotic velocities at Re=390; leaves open validation of turbulence-inclusive simulations in vascular research.
Cardiovascular disease mostly in the form of atherosclerosis is responsible for 30% of all world deaths amounting to 17 million people per year. Atherosclerosis is due to the formation of plaque. The fatty plaque may be at risk of rupture, leading typically to stroke and heart attack. The plaque is usually associated with a high degree of lumen reduction, called a stenosis. The initiation and progression of the disease is strongly linked to the hemodynamic environment near the vessel wall. The aim of this study is to validate the flow of blood mimic through an arterial stenosis model with computational fluid dynamics (CFD) package. In experiment, an axisymmetric model constructed consists of contraction and expansion region that follow a mathematical form of cosine function. A 30% diameter reduction was used in this study. Particle image velocimetry (PIV) was used to characterize the flow. The fluid consists of rigid spherical particles suspended in waterglycerol- NaCl mixture. The particles with 20 μm diameter were selected to follow the flow of fluid. The flow at Re=155, 270 and 390 were investigated. The experimental result is compared with FLUENT simulated flow that account for viscous laminar flow model. The results suggest that laminar flow model was sufficient to predict flow velocity at the inlet but the velocity at stenosis throat at Re =390 was overestimated. Hence, a transition to turbulent regime might have been developed at throat region as the flow rate increases.
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Shuib et al. (2010) studied Arterial stenosis. Computational fluid dynamics (CFD) simulation vs. Particle image velocimetry (PIV) experiment was evaluated on Flow velocity at inlet and stenosis throat at Re=155, 270, and 390. The laminar flow model accurately predicted inlet flow velocity but overestimated velocity at the stenosis throat at Re=390, suggesting a transition to a turbulent regime.
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