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首页> 外文期刊>Journal of Industrial Textiles >Research on structure characteristics and filtration performances of PET-PA6 hollow segmented-pie bicomponent spunbond nonwovens fibrillated by hydro entangle method
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Research on structure characteristics and filtration performances of PET-PA6 hollow segmented-pie bicomponent spunbond nonwovens fibrillated by hydro entangle method

机译:水刺法原纤化PET-PA6空心分段双组分纺粘非织造布的结构特性和过滤性能的研究

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摘要

Bicomponent spunbond technology is considered to be the most rapid process of ultrafine fiber nonwoven material. The cross-section of 70% PET and 30% PA6 bicomponent hollow-segmented pie filaments with diameter range from 2 D to 4 D was made by the bicomponent spunbond technology, and fibrillated by the high-pressure water jets at the same time bonded to microfiber nonwoven materials with the dense structure. The structure characteristics of materials were tested to study the feasibility for the air filter, including fineness of the fiber and pore size distribution of the webs. The filtration efficiency and filtration resistance of the webs were studied with the dioctyl phthalate particles in range of 0.3-2.7 micron at face velocity in range of 1.8-4.8m/min. It was found that the hollow segmented-pie bicomponent fibers are splitted to microfibers and bonded mechanically by subjecting the web to high-pressure water jets, the total high pressure water jets energy was 5610.2kJ/kg. The microfibers fibers gathered into fiber bundles on the surface of the webs were found from the 3D images. The filtration efficiency and filtration resistance of the webs followed typical behavior for fibrous filtration media, and the filtration efficiency and filtration resistance of the webs is increased with the weight increases.
机译:双组分纺粘技术被认为是超细纤维非织造材料最快的工艺。采用双组分纺粘技术制备了直径为2 D至4 D的70%PET和30%PA6双组分中空扇形扇形丝,并通过高压喷水将其原纤化超细纤维非织造材料具有致密的结构。测试了材料的结构特征以研究空气过滤器的可行性,包括纤维的细度和网的孔径分布。用网眼速度在1.8-4.8m / min范围内的邻苯二甲酸二辛酯颗粒在0.3-2.7微米范围内研究了网的过滤效率和过滤阻力。结果发现,通过将纤网置于高压水射流下,中空的分段双组分纤维分裂成微纤维并机械粘合,高压水射流的总能量为5610.2kJ / kg。从3D图像中发现了聚集在纤网表面上的纤维束中的微纤维纤维。网的过滤效率和过滤阻力遵循纤维过滤介质的典型行为,并且网的过滤效率和过滤阻力随着重量的增加而增加。

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