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Mechanical study of PLA-PCL fibers during in vitro degradation.

机译:体外降解过程中PLA-PCL纤维的力学研究。

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The aliphatic polyesters are widely used in biomedical applications since they are susceptible to hydrolytic and/or enzymatic chain cleavage, leading to alpha-hydroxyacids, generally metabolized in the human body. This is particularly useful for many biomedical applications, especially, for temporary mechanical supports in regenerative medical devices. Ideally, the degradation should be compatible with the tissue recovering. In this work, the evolution of mechanical properties during degradation is discussed based on experimental data. The decrease of tensile strength of PLA-PCL fibers follows the same trend as the decrease of molecular weight, and so it can also be modeled using a first order equation. For each degradation stage, hyperelastic models such as Neo-Hookean, Mooney-Rivlin and second reduced order, allow a reasonable approximation of the material behavior. Based on this knowledge, constitutive models that describe the mechanical behavior during degradation are proposed and experimentally validated. The proposed theoretical models and methods may be adapted and used in other biodegradable materials, and can be considered fundamental tools in the design of regenerative medical devices where strain energy is an important requirement, such as, for example, ligaments, cartilage and stents.
机译:脂族聚酯被广泛用于生物医学应用中,因为它们易于水解和/或酶链断裂,从而导致通常在人体中代谢的α-羟酸。这对于许多生物医学应用特别有用,尤其是对于再生医疗设备中的临时机械支撑。理想地,降解应与组织恢复相容。在这项工作中,基于实验数据讨论了降解过程中机械性能的演变。 PLA-PCL纤维的拉伸强度下降遵循与分子量下降相同的趋势,因此也可以使用一阶方程建模。对于每个降解阶段,超弹性模型(例如Neo-Hookean,Mooney-Rivlin和二次降阶)都可以合理地近似材料的行为。基于此知识,提出并描述了描述降解过程中力学行为的本构模型。所提出的理论模型和方法可以改编并用于其他可生物降解的材料,并且可以被认为是设计其中应变能是重要要求的再生医疗器械(例如韧带,软骨和支架)的基本工具。

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