Computational Modeling of an Aortic Medial Ring: Effect of Residual Stresses On a Mechanical Behavior of the Aortic Ring

A. Tamura, K. Matsumoto, Junichi Hongu
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Abstract

The aorta is the largest artery in an animal body and is an important organ in the pulsatile flow regulation from the left ventricle. The mechanical and structural characteristics of the aortic media, which are primarily composed of smooth muscle cell layers (SMLs) and elastic laminae (ELs), have profound effects on the physiology and pathophysiology of the aorta. However, many aspects of the aortic tissue remain unknown due to the inherent layered wall structure and the regionally varying residual stresses. This study aimed to computationally represent EL buckling in the aortic medial ring at the unloaded state and reproduce the transmural variation in residual stresses and EL waviness across the vascular wall. A multiobjective optimization technique was applied to a series of simulations with the "unit" structure to obtain an idealized stress distribution throughout the aortic wall thickness. Hence, an appropriate boundary condition given to an initial reference configuration of the aortic ring was successfully identified. As a result, the average "idealized" residual stresses of SML and EL were on the order of 20 and -80 kPa, respectively, while EL waviness was ~1.01 in the unloaded state. Further, it was verified that the ring model with a radial cut will open spontaneously when the inner and outer layers of the medial wall are subjected to relative compressive and tensile residual stresses, respectively, in the unloaded state.
主动脉内侧环的计算模型:残余应力对主动脉环力学行为的影响
主动脉是动物体内最大的动脉,是调节左心室脉动血流的重要器官。主动脉介质主要由平滑肌细胞层(SMLs)和弹性层(ELs)组成,其力学和结构特性对主动脉的生理和病理生理有着深远的影响。然而,由于固有的层状壁结构和区域变化的残余应力,主动脉组织的许多方面仍然未知。本研究旨在通过计算再现主动脉内侧环在无载荷状态下的EL屈曲,再现残余应力和EL波形在血管壁上的跨壁变化。采用多目标优化技术对“单元”结构进行了一系列模拟,得到了理想的主动脉壁厚度应力分布。因此,一个适当的边界条件给予一个初始参考配置的主动脉环被成功地确定。结果表明,SML和EL的平均“理想”残余应力分别为20和-80 kPa,而EL在卸载状态下的波纹度为~1.01。进一步验证了具有径向切口的环形模型在卸载状态下,内侧壁内层和外层分别受到相对残余压应力和拉应力时,会自发打开。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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