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首页> 外文期刊>American Journal of Neuroradiology >Computational Fluid Dynamics Modeling of Intracranial Aneurysms: Effects of Parent Artery Segmentation on Intra-Aneurysmal Hemodynamics
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Computational Fluid Dynamics Modeling of Intracranial Aneurysms: Effects of Parent Artery Segmentation on Intra-Aneurysmal Hemodynamics

机译:颅内动脉瘤的计算流体动力学模型:父母动脉分割对动脉瘤内血流动力学的影响

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摘要

PURPOSE: The purpose of this study is to show the influence of the upstream parent artery geometry on intraaneurysmal hemodynamics of cerebral aneurysms. METHODS: Patient-specific models of 4 cerebral aneurysms (1 posterior communicating artery [PcomA], 2 middle cerebral artery [MCA], and 1 anterior communicating artery [AcomA]) were constructed from 3D rotational angiography images. Two geometric models were constructed for each aneurysm. One model had the native parent vessel geometry; the second model was truncated approximately 1 cm upstream from the aneurysm, and the parent artery replaced with a straight cylinder. Corresponding finite element grids were generated and computational fluid dynamics simulations were carried out under pulsatile flow conditions. The intra-aneurysmal flow patterns and wall shear stress (WSS) distributions were visualized and compared. RESULTS: Models using the truncated parent vessel underestimated the WSS in the aneurysms in all cases and shifted the impaction zone to the neck compared with the native geometry. These effects were more pronounced in the PcomA and AcomA aneurysms where upstream curvature was substantial. The MCA aneurysm with a long M1 segment was the least effected. The more laminar flow pattern within the parent vessel in truncated models resulted in a less complex intra-aneurysmal flow patterns with fewer vortices and less velocity at the dome. CONCLUSIONS: Failure to properly model the inflow stream contributed by the upstream parent artery can significantly influence the results of intra-aneurysmal hemodynamic models. The upstream portion of the parent vessel of cerebral aneurysms should be included to accurately represent the intra-aneurysmal hemodynamics.
机译:目的:本研究的目的是显示 对大脑动脉瘤的动脉瘤内血流动力学 的影响。 方法:构建了4种脑动脉瘤(1个 后交通动脉[PcomA],2个大脑中动脉 [MCA]和1个前交通动脉[AcomA])的特定模型> 来自3D旋转血管造影图像。为每个动脉瘤构建了两个几何模型 。一种模型具有原生 父容器几何形状;第二个模型在动脉瘤上游约1 cm处被截断,而亲代动脉用直圆柱体代替了 。生成了相应的有限元网格 ,并在脉动流动条件下进行了计算流体动力学模拟 。可视化并比较了动脉瘤内 的流型和壁剪切应力(WSS)分布。 sup> 在所有情况下,WSS都会使自然区域中的 碰撞区域移到颈部。在 上游曲率较大的PcomA和AcomA动脉瘤中,这些效果 更为明显。 M1段长 的MCA动脉瘤受影响最小。在截断模型中,父容器内层流的更多层流 模式导致 形成的动脉瘤内部流动模式更为简单,涡流更少,速度更低结论:未能正确地模拟上游母动脉贡献的流入流 会严重影响 动脉瘤内血流动力学模型的结果。 。应该包括 ,以准确表示动脉瘤内的血液动力学。

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  • 来源
    《American Journal of Neuroradiology 》 |2006年第8期| 00001703-00001709| 共7页
  • 作者单位

    School of Computational Sciences, George Mason University, Fairfax, Va;

    Department of Interventional Neuroradiology, Inova Fairfax Hospital, Fairfax Radiological Consultants, Falls Church, Va|Department of Neurosurgery, George Washington University School of Medicine, Washington, DC;

    School of Computational Sciences, George Mason University, Fairfax, Va;

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