DocumentCode
776382
Title
Predictive Haemodynamics in a One-Dimensional Human Carotid Artery Bifurcation. Part I: Application to Stent Design
Author
Kolachalama, V.B. ; Bressloff, N.W. ; Nair, P.B. ; Shearman, C.P.
Author_Institution
Biomed. Eng. Center, MIT, Cambridge, MA
Volume
54
Issue
5
fYear
2007
fDate
5/1/2007 12:00:00 AM
Firstpage
802
Lastpage
812
Abstract
A diagnostic technique is proposed to identify patients with carotid stenosis who could most benefit from angioplasty followed by stent implantation. This methodology involves performing a parametric study to investigate the haemodynamic behavior due to alterations in the stenosis shapes in the internal carotid artery (ICA). A pulsatile 1-D Navier-Stokes solver incorporating fluid-wall interactions for a Newtonian fluid which predicts pressure and flow in the human carotid artery bifurcation is used for the numerical simulations. In order to assess the performance of each individual geometry, we introduce pressure variation factor as a metric to directly compare the global effect of variations in the geometry. It is shown that the probability of an overall catastrophic effect is higher when the stenosis is present in the upstream segment of the ICA. Furthermore, maximum pressure is used to quantify the local effects of geometry changes. The location of the peak and extent of stenosis are found not to influence maximum pressure. We also show how these metrics respond after stent deployment into the stenosed part of the ICA. In particular, it is found that localized pressure peaks do not depend on the length of a stent. Finally, we demonstrate how these metrics may be applied to cost-effectively predict the benefit of stenting
Keywords
Navier-Stokes equations; bifurcation; blood vessels; boundary layers; haemodynamics; patient diagnosis; physiological models; probability; prosthetics; pulsatile flow; Newtonian fluid; angioplasty; carotid stenosis; diagnostic technique; fluid-wall interactions; one-dimensional human carotid artery bifurcation; predictive haemodynamics; pressure variation factor; probability; pulsatile 1-D Navier-Stokes solver; stenosis shapes; stent design; stent implantation; Angioplasty; Bifurcation; Blood flow; Carotid arteries; Humans; Independent component analysis; Information geometry; Numerical simulation; Parametric study; Shape; 1–D blood flow; Carotid artery; diagnostic techniques; parametric study; stent design; Algorithms; Blood Flow Velocity; Blood Vessel Prosthesis Implantation; Carotid Artery, External; Carotid Artery, Internal; Carotid Stenosis; Computer Simulation; Elasticity; Humans; Stents; Time Factors;
fLanguage
English
Journal_Title
Biomedical Engineering, IEEE Transactions on
Publisher
ieee
ISSN
0018-9294
Type
jour
DOI
10.1109/TBME.2006.889188
Filename
4155000
Link To Document