血管分岔区弹性应力分析

Shuxiang Guo, Wenxuan Du, Jian Guo, Yuhang Cheng, Xiaoliang Jin
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引用次数: 3

摘要

近年来,生物力学建模技术在医学图像分析和手术模拟领域的应用是一种常用的方法。在医疗外科机器人技术的发展中,触觉和虚拟现实系统也参与了模拟器作为医学培训工具的考虑。为了增强我们血管介入手术的真实性,提高手术的安全性,我们打算模拟血管中的血流,为我们的操作系统创造一定的操作环境。本研究旨在探讨不同初始血流速度对血管内血流动力学的影响。本文建立了三维血管模型,并对重建的血管模型进行了流固耦合分析。将血管壁建模为各向同性材料。为了研究血管壁面剪切应力与血管几何形状的关系,对血管壁面剪切应力进行了计算。测量了试样的速度流型和弹性应力。结果表明,当血流由主干向分叉区转移时,血流速度减慢。在分叉顶端计算的高壁剪切应力值表明,该位置易于形成血栓。了解局部血管血流速度和压力的变化,为血管性疾病的治疗提供重要参考。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analysis of the elastic stress for the bifurcated region of blood vessel
In recent years, application of biomechanical modeling techniques in the area of medical image analysis and surgical simulation is a commonly method. In the development of medical surgery robot technology, haptic and virtual reality systems also have attended consideration on simulators as a tool of medical training. In order to enhance the authenticity of our vascular interventional surgery and improve the safety of operation, we intend to simulate the blood flow in the blood vessels, to create a certain operating environment for our operating system. The purpose of this study was to investigate the hemodynamic effect of different initial flow velocity of the blood in the vessel. In this paper, we have established a three-dimensional model of blood vessels, a Fluid Solid Interaction analysis of the reconstructed vascular model was performed. The vascular wall was modeled as an isotropic material. In order to investigate the correlation between flow-induced wall shear stress and geometry of the vessel, the vascular wall shear stress was computed. The velocity flow pattern and elastic stress were also measured. Results showed that blood flow velocity was found to reduce when the flow changed from the main stem to the bifurcated region. The high wall shear stress values calculated at the apex of the bifurcation indicated that this location is predisposed to form thrombus. Understand the changes of blood flow velocity and pressure in the local blood vessels, provides an important reference for the treatment of vascular disease.
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