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Shape memory characterization of poly(e-caprolactone) (PCL)/polyurethane (PU) in combined torsion-tension loading with potential applications in cardiovascular stent

机译:聚(E-己内酯)(PCL)/聚氨酯(PU)的形状记忆表征在组合扭转张力载荷中,具有潜在应用在心血管支架中

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摘要

Shape Memory Polymers (SMPs) were proved to be employable for biomedical application but still their performance in progress. In this study, the combined torsion and tension loading of polyurethane/poly(epsilon-caprolactone) (PU/PCL) blend as SMP were investigated experimentally. In addition to the viscoelastic response, the stress and shape recovery are studied. Samples are characterized by DSC, DMTA and tensile test to accomplish higher performance. Results showed that samples prepared by solution mixing method has higher storage modulus and loss modulus respect to samples blended by melt mixing method. In order to extend the usage, the pre-torsion and pre-stretch strains were imposed on PU/PCL strips and stress recovery and shape recovery were reported. The results show that higher stress recovery response demands higher pre-stretched and lower deformation temperature. Maximum stress recovery occurred in deformation temperatures of 30 degrees C and 40 degrees C. Also, angle recovery behavior in low pre-torsion was dependent on pre-stretch while tension recovery was slightly affected by pre-torsion in the angle of 540 degrees and 720 degrees. Among all parameters, the heating rate has the greatest effect in reducing recovery finished temperature. These new findings can be used to develop new SMP structures in the combined loading condition and better performance in biomedical scaffold applications.
机译:证明形状记忆聚合物(SMPs)可用于生物医学应用,但仍然是其性能。在该研究中,实验研究了聚氨酯/聚(ε-己内酯)(PU / PCL)混合物的组合扭转和张力负载。除了粘弹性响应之外,还研究了应力和形状恢复。样品的特征在于DSC,DMTA和拉伸试验,以实现更高的性能。结果表明,通过溶液混合方法制备的样品具有更高的储存模量和损失模量,所述损耗模量对通过熔融混合方法混合的样品。为了延长使用,施加了对PU / PCL条带的扭转和预拉伸菌株,并报道了应力恢复和形状回收。结果表明,较高的应力恢复响应需要更高的预拉伸和更低的变形温度。在30℃和40℃的变形温度下发生的最大应力恢复。此外,低预扭转中的角度恢复行为取决于预拉伸,而张力回收略微受到540度的角度的扭转影响,而720程度。在所有参数中,加热速率在减少回收成品温度方面具有最大的效果。这些新发现可用于在综合负载条件下开发新的SMP结构和生物医学脚手架应用中的更好性能。

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