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Computational simulation of blood flow in a DeBakey type I aortic dissection

机译:粘性型I型主动脉解剖中血流的计算模拟

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The main purpose of this study is to examine how flow field in aortic dissection is affected by its geometry and flow condition. Two models of DeBakey type I aortic dissection, which involves the entire aorta, were analyzed. Patient-specific geometries were reconstructed, based on Computed tomography (CT) scan images, in order to obtain 3D finite element meshes. Computational fluid dynamics (CFD), which uses numeric methods and algorithms for the simulation of blood flow by solving the Navier-Stokes equations on computational meshes, enhances the understanding of disease progression. For that purpose, the major fluid dynamic parameters and indicators of disease progression, such as velocity field, pressure and shear stress, were computed and analyzed. The computed results showed higher velocities in the ascending aorta, the inlet and outlet tears and the iliac arteries, in case of both models. The pressure distribution showed high zones in the ascending aorta, while the shear stress distribution showed low zones in the aneurysm part, in case of both models. In summary, the presented study can be extended to a larger patient group in a longitudinal study with the goal to determine the potential value of CFD simulations in prediction of aneurysmal growth and rupture.
机译:本研究的主要目的是检查主动脉夹层中的流场如何受其几何形状和流动条件的影响。分析了两种模型的粘性型I主动脉解剖,涉及整个主动脉。基于计算机断层扫描(CT)扫描图像重建特定于患者的几何形状,以获得3D有限元网格。计算流体动力学(CFD)使用数字方法和算法来模拟血流通过解决对计算网格上的Navier-Stokes方程,增强了对疾病进展的理解。为此目的,计算和分析了诸如速度场,压力和剪切应力的主要流体动力学参数和疾病进展指标。在两种型号的情况下,计算结果显示出升高的主动脉,入口和出口撕裂和髂动脉的速度较高。压力分布在上升主动脉中显示出高区域,而剪切应力分布在两种型号的情况下显示出动脉瘤部件的低区域。总之,本研究可以扩展到纵向研究中的较大患者组,以确定CFD模拟预测动脉瘤生长和破裂的潜在价值。

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