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模拟腹主动脉瘤中血流的三维建模。

3D Modeling of Blood Flow in Simulated Abdominal Aortic Aneurysm.

机构信息

Tecnologico de Monterrey, School of Medicine and Health Sciences, Nuevo Leon, Mexico.

Tecnologico de Monterrey, School of Engineering and Sciences, Nuevo Leon, Mexico.

出版信息

Vasc Endovascular Surg. 2021 Oct;55(7):677-683. doi: 10.1177/15385744211012926. Epub 2021 Apr 27.

Abstract

BACKGROUND

Besides biological factors, abdominal aortic aneurysm rupture is also caused by mechanical parameters, which are constantly affecting the wall's tissue due to their abnormal values. The ability to evaluate these parameters could vastly improve the clinical treatment of patients with abdominal aortic aneurysms. The objective of this study was to develop and demonstrate a methodology to analyze the fluid dynamics that cause the wall stress distribution in abdominal aortic aneurysms, using accurate 3D geometry and a realistic, nonlinear, elastic biomechanical model using a computer-aided software.

METHODS

The geometry of the abdominal aortic aneurysm; was constructed on a 3D scale using computer-aided software SolidWorks (Dassault Systems SolidWorksCorp., Waltham MA). Due to the complex nature of the abdominal aortic aneurysm geometry, the physiological forces and constraints acting on the abdominal aortic aneurysm wall were measured by using a simulation setup using boundary conditions and initial conditions for different studies such as finite element analysis or computational fluid dynamics.

RESULTS

The flow pattern showed an increase velocity at the angular neck, followed by a stagnated flow inside the aneurysm sack. Furthermore, the wall shear stress analysis showed to focalized points of higher stress, the top and bottom of the aneurysm sack, where the flow collides against the wall. An increase of the viscosity showed no significant velocity changed but results in a slight increase in overall pressure and wall shear stress.

CONCLUSIONS

Conducting computational fluid dynamics modeling of the abdominal aortic aneurysm using computer-aided software SolidWorks (Dassault Systems SolidWorksCorp., Waltham MA) proves to be an insightful approach for the clinical setting. The careful consideration of the biomechanics of the abdominal aortic aneurysm may lead to an improved, case-specific prediction of the abdominal aortic aneurysm rupture potential, which could significantly improve the clinical management of these patients.

摘要

背景

除了生物学因素外,腹主动脉瘤破裂还与机械参数有关,这些参数由于其异常值而不断作用于壁组织。评估这些参数的能力可以极大地改善腹主动脉瘤患者的临床治疗效果。本研究的目的是开发和展示一种使用准确的 3D 几何形状和使用计算机辅助软件的现实、非线性弹性生物力学模型来分析导致腹主动脉瘤壁应力分布的流体动力学的方法。

方法

使用计算机辅助软件 SolidWorks( Dassault Systems SolidWorksCorp.,马萨诸塞州沃尔瑟姆)在 3D 尺度上构建腹主动脉瘤的几何形状。由于腹主动脉瘤几何形状的复杂性,通过使用模拟设置来测量作用于腹主动脉瘤壁的生理力和约束,模拟设置使用边界条件和不同研究的初始条件,例如有限元分析或计算流体动力学。

结果

流型显示在角颈处速度增加,然后在动脉瘤囊中出现停滞流。此外,壁切应力分析显示在动脉瘤囊中较高的应力焦点,即动脉瘤囊的顶部和底部,血流与壁碰撞。增加粘度不会导致显著的速度变化,但会导致整体压力和壁切应力略有增加。

结论

使用计算机辅助软件 SolidWorks( Dassault Systems SolidWorksCorp.,马萨诸塞州沃尔瑟姆)对腹主动脉瘤进行计算流体动力学建模被证明是一种有见地的临床方法。对腹主动脉瘤生物力学的仔细考虑可能会导致对腹主动脉瘤破裂潜力的改进、特定于病例的预测,从而显著改善这些患者的临床管理。

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