DocumentCode :
2576653
Title :
Fluid mechanics and mass transport analysis in stenosed carotid arteries
Author :
Liu, Yutong ; Udaykumar, H. ; Nagaraj, A. ; Hamilton, A. ; McPherson, D.D. ; Chandran, K.B.
Author_Institution :
Coll. of Eng., Iowa Univ., Iowa City, IA, USA
Volume :
2
fYear :
2002
fDate :
2002
Firstpage :
1309
Abstract :
The fluid dynamics distal to a stenosis in vivo, and its effect on mass transport of LDL and oxygen were analyzed through a computational simulation. The in vivo carotid artery stenosis was created by denuding the arterial intimal surface in a Yucatan miniswine atheroma model. The animals were then fed high cholesterol diet. After 8 weeks, images of the atheroma forming arterial segments were obtained using intravascular ultrasound (IVUS) and reconstructed into a three-dimensional mesh. The computational model included unsteady flow analysis with time varying inflow velocity and with the measured distensibility specified as boundary conditions, as well as LDL and oxygen transport analysis. The results indicated flow separation and reattachment distal to the stenosis. Mean wall shear stress was the highest at the stenosis throat and became negative at the flow re-circulation zone. In the high wall shear stress regions LDL accumulation was reduced while oxygen transport was increased. In the low wall shear regions, the reduced arterial flows enhanced LDL accumulation but at the same time decreased the oxygen concentration. The analysis indicated that regions distal to the stenosis with oxygen deprivation and enhanced LDL accumulation in low wall shear regions may result in further growth of atheroma.
Keywords :
blood vessels; cellular biophysics; computational fluid dynamics; flow separation; haemodynamics; haemorheology; physiological models; proteins; LDL accumulation; LDL-cholesterol; Yucatan miniswine atheroma model; animals; arterial intimal surface; arterial segments; boundary conditions; computational simulation; distensibility; flow re-circulation zone; flow separation; fluid dynamics; fluid mechanics; high cholesterol diet; high wall shear stress regions; in vivo carotid artery stenosis; intravascular ultrasound; lipoprotein; low wall shear regions; mass transport analysis; mean wall shear stress; oxygen; oxygen deprivation; oxygen transport analysis; reattachment; stenosed carotid arteries; stenosis throat; three-dimensional mesh; time varying inflow velocity; unsteady flow analysis; wall cells; Analytical models; Animals; Carotid arteries; Computational modeling; Fluid dynamics; Image segmentation; In vivo; Stress; Surface reconstruction; Ultrasonic imaging;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Engineering in Medicine and Biology, 2002. 24th Annual Conference and the Annual Fall Meeting of the Biomedical Engineering Society EMBS/BMES Conference, 2002. Proceedings of the Second Joint
ISSN :
1094-687X
Print_ISBN :
0-7803-7612-9
Type :
conf
DOI :
10.1109/IEMBS.2002.1106402
Filename :
1106402
Link To Document :
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