Department of Engineering, University of Palermo, Palermo, Italy.
Department of Structural Mechanics, Budapest University of Technology and Economics, Budapest, Hungary.
Int J Numer Method Biomed Eng. 2020 Jan;36(1):e3263. doi: 10.1002/cnm.3263. Epub 2019 Dec 3.
The estimation of blood flow-induced loads occurring on the artery wall is affected by uncertainties hidden in the complex interaction of the pulsatile flow, the mechanical parameters of the artery, and the external support conditions. To circumvent these difficulties, a specific tool is developed by combining the aorta displacements measured by an electrocardiogram-gated-computed tomography angiography, with the blood velocity field computed by a smoothed particle hydrodynamics (SPH) numerical model. In the present work, the SPH model has been specifically adapted to the solution of the 3D Navier-Stokes equations inside a domain with boundaries of prescribed motion. Images of the abdominal aorta aneurysm (AAA) of a 44-year-old female patient were acquired during a stabilized cardiac cycle by electrocardiogram-gated-computed tomography angiography. The in vivo kinematic field inside the pulsating arterial wall was estimated by using recent technology, which makes it possible to follow the shape of the arterial wall during a cardiac cycle. We compare the flow conditions and the blood-induced loads, computed by the numerical model under the assumption of a moving arterial wall, with the corresponding results obtained assuming three rigid wall geometries of the vessel during the cardiac cycle. Significant differences were found for the wall shear stress distribution.
血流引起的动脉壁负荷的估计受到脉动流、动脉力学参数和外部支撑条件复杂相互作用中隐藏的不确定性的影响。为了规避这些困难,通过将心电图门控计算机断层血管造影术测量的主动脉位移与平滑粒子流体动力学 (SPH) 数值模型计算的血流速度场相结合,开发了一种特定的工具。在本工作中,特别对 SPH 模型进行了调整,以解决在预定运动边界的域内求解 3D Navier-Stokes 方程的问题。通过心电图门控计算机断层血管造影术,获取了一名 44 岁女性患者的腹主动脉瘤(AAA)的图像。使用最近的技术来估计脉动动脉壁内的体内运动场,该技术可在心动周期内跟踪动脉壁的形状。我们比较了数值模型在假设移动动脉壁的情况下计算的流动条件和血液引起的负荷,以及在心动周期中假设血管的三个刚性壁几何形状的情况下的相应结果。发现壁切应力分布有显著差异。