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首页> 外文期刊>International Journal of Solids and Structures >Modeling the response of nonlinear viscoelastic biodegradable polymeric stents
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Modeling the response of nonlinear viscoelastic biodegradable polymeric stents

机译:建模非线性粘弹性可生物降解聚合物支架的响应

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摘要

We analyze the response of nonlinear viscoelastic biodegradable polymers when subject to mechanical loading coupled with the diffusion of a fluid (water) through the polymers and the degradation that occurs over a period of time. We consider the quasi-linear viscoelastic (QLV) model introduced by Fung (1981) that has been found to be reasonably good in modeling tissues undergoing moderate deformations for modeling the nonlinear viscoelastic response of the biodegradable polymer that is being studied, i.e.; poly-lactic acid (PLLA). We modify the QLV model to incorporate changes in the material parameters that are a consequence of the degradation that the polymers undergo. We assume that the rate of degradation increases with an increase in the magnitude of strains and concentration of water. We also assume that the degradation softens the polymers and that the rate of stress relaxation (or the rate of creep) of the polymer increases with degradation. Our primary intention is to examine the effect of viscoelasticity on the degradation in virtue of the time-dependent response of such bodies, and also due to the effect of the diffusion of water that leads to degradation. The problem leads to three different time histories associated with the strong coupling between the mechanical loading, diffusion of a fluid (water), and the degradation. As the biodegradable stent is placed inside a nonlinear viscoelastic arterial wall, we further examine the effect of the coupling between the response of the polymeric stent and arterial wall on the degradation of the biodegradable polymeric stent.
机译:我们分析了非线性粘弹性的可生物降解聚合物在受到机械载荷时的响应,以及流体(水)通过聚合物的扩散以及在一段时间内发生的降解。我们认为由Fung(1981)引入的准线性粘弹性(QLV)模型在模拟经历中等变形的组织以建模正在研究的可生物降解聚合物的非线性粘弹性响应时是相当不错的,即聚乳酸(PLLA)。我们修改了QLV模型,以纳入材料参数的变化,这些变化是聚合物经历降解的结果。我们假设降解速率随着应变量和水浓度的增加而增加。我们还假设降解会软化聚合物,并且聚合物的应力松弛速率(或蠕变速率)会随着降解而增加。我们的主要目的是借助此类物体的时间依赖性响应以及由于水的扩散导致降解的影响,研究粘弹性对降解的影响。该问题导致三种不同的时间历史,这些时间历史与机械载荷,流体(水)的扩散和降解之间的强耦合有关。由于可生物降解的支架放置在非线性粘弹性动脉壁内,我们进一步检查了聚合物支架和动脉壁之间的反应耦合对可生物降解的聚合物支架降解的影响。

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