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Finite element simulation of three dimensional residual stress in the aortic wall using an anisotropic tissue growth model

机译:使用各向异性组织生长模型模拟主动脉壁三维残余应力的有限元模拟

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Residual stress is believed to play a significant role in the in vivo stress state of the arterial wall, but quantifying residual stress in vivo is challenging. Based on the well-known assumptions that residual stress is a result of heterogeneous arterial growth and that it homogenizes the transmural distribution of arterial wall stress, we propose a new anisotropic tissue growth model for the aorta to recover the three-dimensional residual stress field in a bi-layer human aortic wall. Finite element simulations showed that the predicted residual stress magnitude with this method are within the documented range for human aorta. Particularly, the homeostatic inter-layer stress difference is identified as a key parameter to quantify the opening angle. To the authors' knowledge, this is the first finite element study employing anisotropic growth of aortic tissue in a bi-layer model to generate three-dimensional residual stress field, and the resultant opening angle can match with the experiments. A parametric study found that inter-layer stress homogeneity, arterial blood pressure, axial pre-stretch, and material stiffness strongly affect the residual stress field.
机译:据信残余应力在动脉壁的体内应力状态下发挥重要作用,但是量化体内残留应力是挑战性的。基于众所周知的假设,残余应力是异质动脉生长的结果,并且它使动脉壁应力的透气分布均质,我们提出了一种新的主​​动脉的各向异性组织生长模型,以回收三维残余应力场双层人体主动脉壁。有限元模拟表明,使用该方法的预测残余应力幅度在人体主动脉的记录范围内。特别地,稳态间应力差被识别为量化开口角度的关键参数。对于作者的知识,这是第一个有限的元素研究,采用双层模型中主动脉组织的各向异性生长以产生三维残余应力场,并且所得到的开口角可以与实验相匹配。参数研究发现,层间应力均匀性,动脉血压,轴向预拉伸和材料刚度强烈影响残余应力场。

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