Finite Element Model of the Patched Human Carotid
Author(s) -
Alexey Kamenskiy,
Iraklis I. Pipinos,
Anastasia Desyatova,
Yury Salkovskiy,
Leonid Yu. Kossovich,
И. В. Кириллова,
Leo A. Bockeria,
К. М. Морозов,
Vasiliy O. Polyaev,
Thomas G. Lynch,
Yuris A. Dzenis
Publication year - 2009
Publication title -
vascular and endovascular surgery/vascular and endovascular surgery
Language(s) - English
Resource type - Journals
eISSN - 1938-9116
pISSN - 1538-5744
DOI - 10.1177/1538574409345030
Subject(s) - medicine , hemodynamics , carotid endarterectomy , cadaveric spasm , endarterectomy , shear stress , intimal hyperplasia , common carotid artery , cardiology , carotid arteries , radiology , surgery , materials science , smooth muscle , composite material
The hemodynamic effects of carotid artery patching are not well known. Our objective was to develop a fluid-solid finite element model of the endarterectomized and patched carotid artery. Methods: Hyperelastic materials parameters were determined from studies of 8 cadaveric carotids. Blood flow characteristics were based on intraoperative data from a patient undergoing endarterectomy. Wall shear stress, cyclic strain and effective stress were computed as hemodynamic parameters with known association with endothelial injury, neointimal hyperplasia abd atherogenesis. Results: Low wall shear stress, high cyclic strain and high effective stress were identified diffusely in the carotid bulb, at the margins around the patch and in the flow divider. Conclusion: Endarterectomy and Polytetrafluoroethylene patching produce considerable abnormalities in the hemodynamics of the repaired carotid. Advanced mechanical modeling can be used to evaluate different carotid revascularization approaches to obtain optimized biomechanical and hemodynamic results for the care of patients with carotid bifurcation disease.
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