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1.
J Biomech ; 37(1): 1-11, 2004 Jan.
Artículo en Inglés | MEDLINE | ID: mdl-14672563

RESUMEN

The insertion of an endovascular prosthesis is known to have a thrombogenic effect that is also a consequence of the interaction between the flowing blood and the stented arterial segment; in fact the prosthesis induces a compliance mismatch and a possible small expansion along the vessel that eventually gives rise to an anomalous distribution of wall shear stresses. The fluid dynamics inside a rectilinear elastic vessel with compliance and section variation is studied here numerically. A recently introduced perturbative approach is employed to model the interaction between the fluid and the elastic tissue; this approximate technique is first validated by comparison with a complete solution within a simple one-dimensional model of the same system. Then it is applied to an axisymmetric model in order to evaluate the flow dynamics and the distribution of wall shear stress in the stented vessel. Compliance mismatch is shown to produce more intense negative wall shear stresses in the stented segment while rapid variations of wall shear stress are found at the stent ends. These effects are enhanced when the prosthesis is accompanied by a small increase of the vessel lumen.


Asunto(s)
Arterias/fisiología , Arterias/fisiopatología , Prótesis Vascular , Modelos Cardiovasculares , Flujo Pulsátil , Stents , Animales , Velocidad del Flujo Sanguíneo , Presión Sanguínea , Adaptabilidad , Simulación por Computador , Humanos , Reproducibilidad de los Resultados , Sensibilidad y Especificidad , Resistencia al Corte , Capacitancia Vascular , Resistencia Vascular
2.
Comput Methods Biomech Biomed Engin ; 5(3): 219-31, 2002 Jun.
Artículo en Inglés | MEDLINE | ID: mdl-12186714

RESUMEN

Pulsatile flow inside a moderately elastic circular conduit with a smooth expansion is studied as a model to understand the influence of wall elasticity in artery flow. The solution of the simultaneous fluid-wall evolution is evaluated by a perturbative method, where the zeroth order solution is represented by the flow in a rigid vessel; the first order correction gives the wall motion and induced flow modification without the need to solve the difficult coupled problem. Such an approach essentially assumes a locally infinite celerity, therefore it represent a good approximation for the fluid-wall interaction in sites of limited extent (branches, stenosis, aneurism, etc.), which include typical situations associated with vascular diseases. The problem is solved numerically in the axisymmetric approximation; the influence of wall elasticity on the flow and on the unsteady wall shear stress is studied in correspondence of parameters taken from realistic artery flow. Attention is posed to the role of phase difference between the incoming pressure and flow pulses.


Asunto(s)
Arterias/fisiología , Simulación por Computador , Elasticidad , Modelos Cardiovasculares , Velocidad del Flujo Sanguíneo , Presión Sanguínea , Hemodinámica , Humanos , Flujo Pulsátil , Reproducibilidad de los Resultados , Sensibilidad y Especificidad
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