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用于血管移植物设计早期阶段的聚氨酯的力学评估与超弹性建模

Mechanical Assessment and Hyperelastic Modeling of Polyurethanes for the Early Stages of Vascular Graft Design.

作者信息

Said Arévalo-Alquichire, Carlos Dominguez-Paz, Manuel F Valero

机构信息

Energy, Materials and Environmental Group, GEMA, Faculty of Engineering, Universidad de La Sabana, Chía 140013, Colombia.

The Doctoral Program of Biosciences, Universidad de La Sabana, Chía 140013, Cundinamarca, Colombia.

出版信息

Materials (Basel). 2020 Nov 5;13(21):4973. doi: 10.3390/ma13214973.

Abstract

The material design of vascular grafts is required for their application in the health sector. The use of polyurethanes (PUs) in vascular grafts intended for application in the body appears to be adequate due to the fact that native tissues have similar properties as PUs. However, the influence of chemical structure on the biomechanics of PUs remains poorly described. The use of constitutive models, together with numerical studies, is a powerful tool for evaluating the mechanical behavior of materials under specific physiological conditions. Therefore, the aim of this study was to assess the mechanical properties of different PU mixtures formed by polycaprolactone diol, polyethylene glycol, and pentaerythritol using uniaxial tensile, strain sweep, and multistep creep-recovery tests. Evaluations of the properties were also recorded after samples had been soaked in phosphate-buffer saline (PBS) to simulate physiological conditions. A hyperelastic model based on the Mooney-Rivlin strain density function was employed to model the performance of PUs under physiological pressure and geometry conditions. The results show that the inclusion of polyethylene glycol enhanced viscous flow, while polycaprolactone diol increased the elastic behavior. Furthermore, tensile tests revealed that hydration had an important effect on the softening phenomenon. Additionally, after the hydration of PUs, the ultimate strength was similar to those reported for other vascular conduits. Lastly, hyperelastic models revealed that the compliance of the PUs showed a cyclic behavior within the tested time and pressure conditions and is affected by the material composition. However, the compliance was not affected by the geometry of the materials. These tests demonstrate that the materials whose compositions are 5-90-5 and 46.3-46.3-7.5 could be employed in the designs of vascular grafts for medical applications since they present the largest value of compliance, ultimate strength, and elongation at break in the range of reported blood vessels, thus indicating their suitability. Moreover, the polyurethanes were revealed to undergo softening after hydration, which could reduce the risk of vascular trauma.

摘要

血管移植物的材料设计是其在医疗领域应用所必需的。由于天然组织与聚氨酯(PU)具有相似的特性,因此在用于人体的血管移植物中使用聚氨酯似乎是合适的。然而,化学结构对聚氨酯生物力学的影响仍鲜有描述。本构模型与数值研究相结合,是评估材料在特定生理条件下力学行为的有力工具。因此,本研究的目的是通过单轴拉伸、应变扫描和多步蠕变恢复试验,评估由聚己内酯二醇、聚乙二醇和季戊四醇形成的不同PU混合物的力学性能。在样品浸泡于磷酸盐缓冲盐水(PBS)中以模拟生理条件后,也记录了性能评估结果。采用基于Mooney-Rivlin应变密度函数的超弹性模型来模拟聚氨酯在生理压力和几何条件下的性能。结果表明,聚乙二醇的加入增强了粘性流动,而聚己内酯二醇增加了弹性行为。此外,拉伸试验表明水合作用对软化现象有重要影响。另外,聚氨酯水合后,其极限强度与其他血管导管报道的相似。最后,超弹性模型表明,在测试的时间和压力条件下,聚氨酯的顺应性呈现循环行为,并且受材料组成的影响。然而,顺应性不受材料几何形状的影响。这些试验表明,组成为5-90-5和46.3-46.3-7.5的材料可用于医疗应用的血管移植物设计,因为它们在报道的血管范围内具有最大的顺应性、极限强度和断裂伸长率值,从而表明它们的适用性。此外,聚氨酯水合后会发生软化,这可以降低血管创伤的风险。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/705f/7663800/9c43d4d7d6ea/materials-13-04973-g001.jpg

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