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Particle image velocimetry in measuring the flow fields distribution in carotid artery bifurcation model / 生物医学工程学杂志
Article in Zh | WPRIM | ID: wpr-331386
Responsible library: WPRO
ABSTRACT
To understand the local hemodynamics of modified TF-AHCB carotid bifurcation model, using particle image velocimetry technique to measure the instantaneous velocity distribution of the model attatched to a circuit. The velocity was controlled by regulating the height of the reservoir. The working fluid consists of glycerine and water mixture with viscosity of 3.75 mPa.s similar to human blood. Instantaneous velocity fields were obtained by PIV and the shear stresses were calculated according to the velocity. The results showed that inside the model, there were a large flow separation and an anticlockwise rotating vortex on the lateral wall of ICA, The location and distance of the vortex changed with the flow velocity. The higher the flow velocity, the smaller the vortex distance, and the farther the location. The shear stresses on the lateral wall were significantly lower in all work condition. And there a low shear stress kernel when the velocity was lower than 0.839 m/s. The location of the low shear stress was just the position of atherosclerosis. The flow pattern inside the model consists of large flow separation and vortex zones. And there are low shear stress zones at the lateral wall of ICA, Where are thought to be associated with the genesis of atherosclerosis.
Subject(s)
Full text: 1 Index: WPRIM Main subject: Physiology / Regional Blood Flow / Rheology / Stress, Mechanical / Blood Flow Velocity / Pulsatile Flow / Carotid Arteries / Methods / Models, Cardiovascular Language: Zh Journal: Journal of Biomedical Engineering Year: 2007 Type: Article
Full text: 1 Index: WPRIM Main subject: Physiology / Regional Blood Flow / Rheology / Stress, Mechanical / Blood Flow Velocity / Pulsatile Flow / Carotid Arteries / Methods / Models, Cardiovascular Language: Zh Journal: Journal of Biomedical Engineering Year: 2007 Type: Article