Influence of the distensibility of large arteries on the longitudinal impedance: application for the development of non-invasive techniques to the diagnosis of arterial diseases.

Wassila Sahtout, Ridha Ben Salah
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Abstract

Background: This study shows that the arterial longitudinal impedance constitutes a hemodynamic parameter of interest for performance characterization of large arteries in normal condition as well as in pathological situations. For this purpose, we solved the Navier-Stokes equations for an incompressible flow using the finite element analysis method and the Arbitrary Lagrangian Eulerian (ALE) formulation. The mathematical model assumes a two-dimensional flow and takes into account the nonlinear terms in the equations of fluid motion that express the convective acceleration, as well as the nonlinear deformation of the arterial wall. Several numerical simulations of the blood flow in large vessels have been performed to study the propagation along an arterial vessel of a pressure gradient pulse and a rate flow pulse. These simulations include various deformations of the wall artery leading to parietal displacements ranging from 0 (rigid wall) to 15% (very elastic wall) in order to consider physiological and pathological cases.

Results: The results show significant changes of the rate flow and the pressure gradient wave as a function of aosc, the relative variation in the radius of the artery over a cardiac cycle. These changes are notable beyond a critical value of aosc equal to 0.05. This critical value is also found in the evolution of the longitudinal impedance. So, above a variation of radius of 5%, the convective acceleration, created by the fluid-wall interactions, have an influence on the flow detectable on the longitudinal impedance.

Conclusions: The interpretation of the evolution of the longitudinal impedance shows that it could be a mean to test the performance of large arteries and can contribute to the diagnosis of parietal lesions of large arteries. For a blood vessel with a wall displacement higher than 5% similar to those of large arteries like the aorta, the longitudinal impedance is substantially greater than that obtained in the absence of wall displacement. This study also explains the effects of convective acceleration, on the shape of the decline of the pressure gradient wave and shows that they should not be neglected when the variation in radius is greater than 5%.

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大动脉扩张性对纵向阻抗的影响:应用于开发诊断动脉疾病的无创技术。
背景:这项研究表明,动脉纵向阻抗是正常和病理情况下大动脉性能表征的一个重要血液动力学参数。为此,我们使用有限元分析方法和任意拉格朗日欧拉公式(ALE)求解了不可压缩流的纳维-斯托克斯方程。该数学模型假设为二维流动,并考虑了流体运动方程中表示对流加速度的非线性项以及动脉壁的非线性变形。为了研究压力梯度脉冲和流速脉冲沿动脉血管传播的情况,对大血管中的血流进行了多次数值模拟。这些模拟包括动脉壁的各种变形,导致顶面位移从 0(刚性壁)到 15%(弹性壁)不等,以考虑生理和病理情况:结果表明,流速和压力梯度波随 aosc(一个心动周期内动脉半径的相对变化)的变化而发生明显变化。超过等于 0.05 的 aosc 临界值后,这些变化非常明显。在纵向阻抗的演变中也发现了这一临界值。因此,在半径变化超过 5%时,流体与管壁相互作用产生的对流加速度会对纵向阻抗上可检测到的流动产生影响:对纵向阻抗演变的解释表明,纵向阻抗可以作为检测大动脉性能的一种手段,并有助于诊断大动脉顶端病变。对于管壁位移大于 5%的血管,与主动脉等大动脉类似,其纵向阻抗大大高于无管壁位移时的阻抗。这项研究还解释了对流加速度对压力梯度波下降形状的影响,并表明当半径变化大于 5%时,不应忽视对流加速度的影响。
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