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The orthotropic viscoelastic behavior of aortic elastin

机译:主动脉弹性蛋白的正交各向异性粘弹性行为

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In this paper, we studied the viscoelastic behaviors of isolated aortic elastin using combined modeling and experimental approaches. Biaxial stress relaxation and creep experiments were performed to study the time-dependent behavior of elastin. Experimental results reveal that stress relaxation preconditioning is necessary in order to obtain repeatable stress relaxation responses. Elastin exhibits less stress relaxation than intact or decellularized aorta. The rate of stress relaxation of intact and decellularized aorta is linearly dependent on the initial stress levels. The rate of stress relaxation for elastin increases linearly at stress levels below about 60 kPa; however, the rate changes very slightly at higher initial stress levels. Experimental results also show that creep response is negligible for elastin, and the intact or decellularized aorta. A quasi-linear viscoelasticity model was incorporated into a statistical mechanics based eight-chain microstructural model at the fiber level to simulate the orthotropic viscoelastic behavior of elastin. A user material subroutine was developed for finite element analysis. Results demonstrate that this model is suitable to capture both the orthotropic hyperelasticity and viscoelasticity of elastin.
机译:在本文中,我们使用组合建模和实验方法研究了孤立的主动脉弹性蛋白的粘弹性行为。进行双轴应力松弛和蠕变实验以研究弹性蛋白的时间依赖性行为。实验结果表明,为了获得可重复的应力松弛响应,必须进行应力松弛预处理。弹性蛋白比完整或脱细胞的主动脉表现出更少的应力松弛。完整主动脉和脱细胞主动脉的应力松弛速率线性取决于初始应力水平。在低于约60 kPa的应力水平下,弹性蛋白的应力松弛速率呈线性增加。但是,在较高的初始应力水平下,速率变化很小。实验结果还表明,弹性蛋白以及完整或脱细胞的主动脉的蠕变反应可以忽略不计。在纤维水平上,将准线性粘弹性模型并入基于统计力学的八链微结构模型中,以模拟弹性蛋白的正交各向异性粘弹性行为。开发了用户材料子例程以进行有限元分析。结果表明,该模型既可以捕获弹性蛋白的正交各向异性超弹性,也可以捕获其弹性。

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