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Influence of Outlet Boundary Conditions on Cerebrovascular Aneurysm Hemodynamics.

机译:出口边界条件对脑血管动脉瘤血流动力学的影响。

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摘要

Computational fluid dynamic (CFD) studies of blood flow in cerebrovascular aneurysms have potential to improve patient treatment planning by enabling clinicians and engineers to model patient-specific geometries and compute predictors and risks prior to neurovascular intervention. However, the use of patient-specific computational models in clinical settings is unfeasible due to their complexity, computationally intensive and time-consuming nature. An important factor contributing to this challenge is the choice of outlet boundary conditions, which often involves a trade-off between physiological accuracy, patient-specificity, simplicity and speed. In this study, we analyze how resistance and impedance outlet boundary conditions affect blood flow velocities, wall shear stresses and pressure distributions in a patient-specific model of a cerebrovascular aneurysm. We also use geometrical manipulation techniques to obtain a model of the patient's vasculature prior to aneurysm development, and study how forces and stresses may have been involved in the initiation of aneurysm growth. Our CFD results show that the nature of the prescribed outlet boundary conditions is not as important as the relative distributions of blood flow through each outlet branch. As long as the appropriate parameters are chosen to keep these flow distributions consistent with physiology, resistance boundary conditions, which are simpler, easier to use and more practical than their impedance counterparts, are sufficient to study aneurysm pathophysiology, since they predict very similar wall shear stresses, time-averaged wall shear stresses, time-averaged pressures, and blood flow patterns and velocities. The only situations where the use of impedance boundary conditions should be prioritized is if pressure waveforms are being analyzed, or if local pressure distributions are being evaluated at specific time points, especially at peak systole, where the use of resistance boundary conditions leads to unnaturally large pressure pulses. In addition, we show that in this specific patient, the region of the blood vessel where the neck of the aneurysm developed was subject to abnormally high wall shear stresses, and that regions surrounding blebs on the aneurysmal surface were subject to low, oscillatory wall shear stresses. Computational models using resistance outlet boundary conditions may be suitable to study patient-specific aneurysm progression in a clinical setting, although several other challenges must be addressed before these tools can be applied clinically.
机译:脑血管瘤中血流的计算流体动力学(CFD)研究通过使临床医生和工程师能够对患者特定的几何结构建模并在神经血管介入之前计算预测因子和风险,具有改善患者治疗计划的潜力。然而,由于其复杂性,计算量大和耗时的性质,在临床环境中使用患者特定的计算模型是不可行的。造成这一挑战的重要因素是出口边界条件的选择,这通常涉及生理准确性,患者特异性,简便性和速度之间的权衡。在这项研究中,我们分析了在特定于脑血管动脉瘤的患者模型中,阻力和阻抗出口边界条件如何影响血流速度,壁切应力和压力分布。我们还使用几何操纵技术在动脉瘤发展之前获得患者脉管系统的模型,并研究力和压力如何与动脉瘤生长的开始有关。我们的CFD结果表明,规定的出口边界条件的性质不像通过每个出口分支的血流的相对分布那么重要。只要选择合适的参数以使这些流量分布与生理学保持一致,比其阻抗对应物更简单,更易于使用和更实用的阻力边界条件就足以研究动脉瘤的病理生理学,因为它们预测的壁切应力非常相似应力,时间平均壁切应力,时间平均压力以及血流模式和速度。应当优先考虑使用阻抗边界条件的唯一情况是,如果正在分析压力波形,或者正在特定时间点(尤其是在收缩期)评估局部压力分布,那么使用电阻边界条件会导致异常大的变化压力脉冲。此外,我们显示出在该特定患者中,动脉瘤颈部发育的血管区域受到异常高的壁切应力,而动脉瘤表面上的小泡周围区域受到低而振荡的壁切应力。压力。使用阻力出口边界条件的计算模型可能适合研究临床环境中特定于患者的动脉瘤进展,尽管在将这些工具应用于临床之前还必须解决其他一些挑战。

著录项

  • 作者单位

    Duke University.;

  • 授予单位 Duke University.;
  • 学科 Biomedical engineering.;Biomechanics.
  • 学位 M.S.
  • 年度 2016
  • 页码 72 p.
  • 总页数 72
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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