Numerical Simulations of the Hydrodynamics of the Abdominal Aorta Aneurysm (AAA) Using a Smoothed Particle Hydrodynamics Code with Deformable Wall Preliminary Results

C. Aricò, G. Alotta, M. Zingales, E. Napoli, Alessandra Monteleone, R. Nagy
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引用次数: 1

Abstract

We present some preliminary results of the numerical simulations of the hydrodynamic characteristics of an abdominal aorta aneurysm (AAA) patient specific test case. Images of the AAA lumen have been acquired in 10 discrete time-steps through a stabilized cardiac cycle by electrocardiogram-gated computer tomography angiography, and are used to approximate the in vivo, time dependent kinematic fields of the (internal) arterial wall. The flow field is simulated by a Smoothed Particle SPH numerical model, where the kinematics of the boundary of the computational domain (the internal aortic vessel) is the one computed by the above procedure. The outputs of the SPH model, i.e., pressure and flow field characteristics, are used to compute the stress strain tensor acting over the internal walls of the aorta. The two coupled approaches, i.e., 1) the procedure applied for the kinematics of the internal walls of the aorta and 2) the fluido-dynamic numerical model could constitute a new and fast tool to predict and prevent aneurysm rupture risk.
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应用光滑粒子流体力学程序模拟腹主动脉瘤(AAA)的流体力学初步结果
我们提出了一些初步结果的数值模拟的水动力特性的腹主动脉动脉瘤(AAA)患者具体的测试案例。通过心电图门控计算机断层血管造影,通过稳定的心脏周期,以10个离散时间步获得AAA管腔的图像,并用于近似体内(内)动脉壁的时间相关运动学场。流场采用光滑粒子SPH数值模型进行模拟,其中计算域边界(内主动脉)的运动学是由上述程序计算得到的。SPH模型的输出,即压力和流场特性,用于计算作用于主动脉内壁的应力应变张量。两种耦合方法,即1)应用于主动脉内壁的运动学程序和2)流体动力学数值模型可以构成一种新的快速预测和预防动脉瘤破裂风险的工具。
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