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Study on hybrid yarns integrity through image processing and artificial intelligence techniques

机译:通过图像处理和人工智能技术研究混合纱线的完整性

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The commingled hybrid yarns of different structures have been used to investigate the variation in their abrasion resistance over those of simple yarns by calculating the abrasion destruction index. The cotton yarns of the counts 20Ne and 30Ne and cotton-polyester yarns of the same counts (20Ne and 30Ne) at 20, 40 and 60 bar pressure, have been commingled using flat and textured polyester yarns of 150 den. The produced samples are then abraded by a standard metallic object at four different stages including 150 abrasion cycles in each stage. Through image analyzing technique, the abrasive damage of the samples has been investigated and the abrasion indexes are calculated. The Kohonen neural network is used to cluster the samples in 5 classes as per their abrasion resistance. The cotton-polyester yarn (30Ne), hybrid samples from cotton (30Ne) and textured polyester at 20, 40 and 60 bar; and the hybrid yam made from cotton-polyester (30Ne) and flat polyester at 60 bar are found to be the best. Furthermore, the abrasion resistance of samples improves on increasing the pressure of commingling process. Generally, cotton yarn and textured polyester yarn show the better abrasion resistance in comparison with the other samples.
机译:通过计算磨损破坏指数,已使用不同结构的混合混杂纱线来研究其耐磨性与简单纱线相比的变化。支数为20Ne和30Ne的棉纱以及相同支数(20Ne和30Ne)的棉涤纶纱在20、40和60 bar的压力下已经使用150旦的扁平和变形聚酯纱线混合。然后,在四个不同的阶段用标准的金属物体对产生的样品进行研磨,每个阶段包括150个磨蚀循环。通过图像分析技术,研究了样品的磨蚀损伤并计算了磨耗指数。 Kohonen神经网络根据其耐磨性将样品分为5类。棉-涤纶纱(30Ne),棉(30Ne)和变形聚酯的混合样品,压力为20、40和60 bar;由棉涤纶(30Ne)和扁平聚酯制成的混合纱线在60巴下是最好的。此外,样品的耐磨性随着增加混合过程的压力而提高。通常,棉纱和变形涤纶纱与其他样品相比显示出更好的耐磨性。

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