Solid-Phase Orientation (Die Drawing) of Polymer Tubes to Enhance Mechanical Properties of Bioresorbable Vascular Scaffolds

Naveed Ahmed, N. Bullett, Will Balmer, K. Al-lamee
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Abstract

Die-drawing, also known as solid phase orientation, is a technique used to enhance the mechanical properties of polymers for non-medical applications [1]. Arterius has adapted and optimised this technology to manufacture state-of-the-art bioresorbable polymeric scaffolds (stents) based on polylactic acid (PLA) for vascular and non-vascular applications. The mechanical properties of the polymer are improved by orientating the polymer chains and introducing crystallinity to the polymer. As the PLA polymer is drawn over a mandrel and through a die, close to the glass transition temperature (Tg > 55 °C), the polymer chains align, gradually increasing orientation with the bi-axial draw, thus promoting significantly improved mechanical properties. In-house testing of the die-drawn tubing compared to the extruded tubing showed an increase in tensile modulus up to 79.7%, yield strength increases of up to 121.5%, ultimate tensile strength increases of up to 267.9% and elongation at break increase of up to 1,022.8%. The die-drawing process also introduces crystallinity into the PLLA tubing, initially the amorphous extruded tube has a crystallinity of around 1.3% which increased to around 40% crystallinity after the die-drawn process. Another attribute of the orientated polymer tubing is the radial strength it provides to the scaffold once it has been laser cut into an innovative closed-cell design, which is comparable to market-leading metallic stents.
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聚合物管的固相定向(模具拉伸)以增强生物可吸收血管支架的机械性能
模压拉伸(又称固相取向)是一种用于提高聚合物机械性能的技术,可用于非医疗领域[1]。Arterius 公司对这项技术进行了调整和优化,以生产最先进的生物可吸收聚合物支架(支架),这种支架以聚乳酸(PLA)为基础,可用于血管和非血管领域。通过聚合物链的定向和聚合物的结晶性,聚合物的机械性能得到了改善。当聚乳酸聚合物在接近玻璃化转变温度(Tg > 55 °C)时通过心轴和模具拉伸,聚合物链排列整齐,随着双轴拉伸取向逐渐增加,从而显著改善了机械性能。对模拉管材进行的内部测试显示,与挤压管材相比,模拉管材的拉伸模量提高了 79.7%,屈服强度提高了 121.5%,极限拉伸强度提高了 267.9%,断裂伸长率提高了 1,022.8%。模压拉伸工艺还将结晶度引入聚乳酸管材,最初无定形挤出管材的结晶度约为 1.3%,经过模压拉伸工艺后,结晶度增加到约 40%。取向聚合物管材的另一个特性是,在用激光切割成创新的闭孔设计后,它能为支架提供径向强度,其强度可与市场上领先的金属支架媲美。
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