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Effect of Melt-blowing Processing on Shape-Memory Polyurethane Microfiber Fabrics

机译:熔喷工艺对形状记忆聚氨酯超细纤维织物的影响

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This study produced SMFs with a range of structures and mechanical properties, while displaying favorable biocompatibility. The melt-blowing allows for the production of a web similar to electrospinning, but the process is solvent free and high-throughput. By altering the air pressure and collector speed, SMFs were produced with a wide range of fabric densities and fiber diameters. As the collector belt speed decreases, more fabric is collected in a specific time period, which increases the fabric density. As air pressure is increased, fibers are forced through the die with greater force, which increases the draw of the fiber and decreases the diameter. Mechanical testing showed fabrics that were highly ductile. The modulus increased as the air pressure increased due to the decrease in the fiber diameter and higher number of entanglements. Conversely, failure strain increased as the air pressure decreased due to increase in fiber diameter and less number of entanglements. The in vitro studies showed cell attachment directly to the micro fibers and deposition of collagen, which both indicate fabric cellular compatibility. Future studies will study the shape-recovery behavior under varying bias loads, effect of shape-recovery strain rates on cellular behavior, and elongation of various soft-tissues.
机译:这项研究生产了具有各种结构和机械性能的SMF,同时显示出良好的生物相容性。熔喷允许生产类似于静电纺丝的纤维网,但该方法无溶剂且高通量。通过改变气压和收集器速度,可以生产出具有各种织物密度和纤维直径的SMF。随着收集器皮带速度的降低,在特定时间段内将收集更多的织物,从而增加了织物的密度。随着气压的增加,纤维将以更大的力被迫通过模具,这增加了纤维的拉伸力并减小了直径。机械测试表明织物具有很高的延展性。由于纤维直径的减小和更多的缠结,模量随着气压的增加而增加。相反,由于纤维直径的增加和缠结次数的减少,随着空气压力的降低,破坏应变也随之增加。体外研究表明细胞直接附着在微纤维上和胶原蛋白的沉积,这都表明织物的细胞相容性。未来的研究将研究在不同偏压载荷下的形状恢复行为,形状恢复应变速率对细胞行为的影响以及各种软组织的伸长。

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