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Stress - Strain Simulations for Optimising the Design of Shape - Memory Polymer Based Annuloplasty Rings

机译:优化基于形状记忆聚合物的瓣环成形环设计的应力-应变模拟。

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Shape-memory polymers are active materials that provide a mechanical response to temperature changes. They have a high capability for recovering from deformations (much greater than shown by shape-memory alloys) which combined with a lower density and cost has favoured the appearance of numerous applications for manufacturing actuators, especially for the aeronautics, automobile and medical industries.Among the medical devices under development that endorse the advantages of using these polymers, the most notable are self-expanding stents, thrombectomy devices, "intelligent" sutures, drug release devices and active catheters. On addition active annuloplasty rings, based on the properties of these materials, for treating mitral valve insufficiency are being developed by our team at Universidad Politecnica de Madrid.However current limitations related to stress recovery are restricting the industrial impact of these active polymers. We believe that using simulations tools for precisely studying how the active implant acts on the surrounding tissue can help designing new implants that benefit from the properties of shape-memory polymers. The main results of our stress-strain simulations, carried out to analyze the viability of using shape-memory polymer based annuloplasty rings for reducing mitral valve annulus, are explained in this work with promising conclusions.
机译:形状记忆聚合物是对温度变化提供机械响应的活性材料。它们具有高的变形恢复能力(远大于形状记忆合金所显示的变形能力),再加上较低的密度和较低的成本,使得制造执行器的应用广泛,尤其是在航空,汽车和医疗行业。 在支持使用这些聚合物的优点的正在开发的医疗设备中,最引人注目的是自扩张式支架,血栓切除设备,“智能”缝合线,药物释放设备和有源导管。此外,我们在马德里理工大学的团队还根据这些材料的特性,开发了用于治疗二尖瓣关闭不全的主动瓣环成形术环。 但是,与应力恢复有关的当前限制限制了这些活性聚合物的工业影响。我们相信,使用仿真工具精确研究活性植入物如何作用于周围组织可以帮助设计受益于形状记忆聚合物特性的新型植入物。在这项工作中,我们进行了应力-应变模拟的主要结果,以分析使用基于形状记忆聚合物的瓣环成形术环减少二尖瓣环的可行性,并得出了有希望的结论。

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