基底动脉分叉计算机断层扫描血管造影中的流动行为数值模拟

IF 2.2 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Ryo Shimodoumae, Gaku Tanaka, Ryuhei Yamaguchi, Makoto Ohta
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引用次数: 0

摘要

本研究基于高时间分辨率的四维计算机断层扫描血管成像(4D-CTA)构建了移动边界变形模型,并通过数值模拟研究了脑动脉瘤的血流动力学。基于 4D-CTA 在每个阶段构建了一个逼真的脑动脉瘤移动边界变形模型。通过数值模拟获得了四个血流动力学因子(壁剪应力[WSS]、壁剪应力发散[WSSD]、振荡剪切指数[OSI]和残余停留时间[RRT]),并对这些因子在基底动脉瘤中的作用进行了评估。在研究动脉壁位移与血液动力学因素之间的关系时,比较了刚体条件和移动边界条件,结果表明,仅考虑动脉瘤穹顶的空间平均 WSS 和最大 WSSD 在收缩期峰值时不同条件下有很大差异,OSI 和 RRT 也有显著差异。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Numerical simulation of flow behavior in basilar bifurcation computed tomography angiography

Numerical simulation of flow behavior in basilar bifurcation computed tomography angiography

In this study, a moving boundary deformation model based on four-dimensional computed tomography angiography (4D-CTA) with high temporal resolution is constructed, and blood flow dynamics of cerebral aneurysms are investigated by numerical simulation. A realistic moving boundary deformation model of a cerebral aneurysm was constructed based on 4D-CTA in each phase. Four hemodynamic factors (wall shear stress [WSS], wall shear stress divergence [WSSD], oscillatory shear index [OSI], and residual residence time [RRT]) were obtained from numerical simulations, and these factors were evaluated in basilar artery aneurysms. Comparison of the rigid body condition and the moving boundary condition investigating the relationship between wall displacement and hemodynamic factors clarified that the spatial-averaged WSS and maximum WSSD considering only the aneurysmal dome has a large difference between conditions during the peak systole, and there were also significant differences in OSI and RRT.

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来源期刊
International Journal for Numerical Methods in Biomedical Engineering
International Journal for Numerical Methods in Biomedical Engineering ENGINEERING, BIOMEDICAL-MATHEMATICAL & COMPUTATIONAL BIOLOGY
CiteScore
4.50
自引率
9.50%
发文量
103
审稿时长
3 months
期刊介绍: All differential equation based models for biomedical applications and their novel solutions (using either established numerical methods such as finite difference, finite element and finite volume methods or new numerical methods) are within the scope of this journal. Manuscripts with experimental and analytical themes are also welcome if a component of the paper deals with numerical methods. Special cases that may not involve differential equations such as image processing, meshing and artificial intelligence are within the scope. Any research that is broadly linked to the wellbeing of the human body, either directly or indirectly, is also within the scope of this journal.
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