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Structure/Function Analysis of Nonwoven Cotton Topsheet Fabrics: Multi-Fiber Blending Effects on Fluid Handling and Fabric Handle Mechanics

机译:非织造棉顶片织物的结构/功能分析:多纤维混纺对流体处理和织物处理力学的影响

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摘要

Greige cotton (GC) has attracted interest in recent years as an eco-friendly, functional fiber for use in nonwoven topsheet materials. GC imparts favorable fluid management and sensorial properties associated with urinary liquid transport and indices related to comfort in wearable incontinence nonwovens. Nonwoven GC has material surface polarity, an ambient moisture content, and a lipid/polysaccharide matrix that imparts positive fluid mechanic properties applicable to incontinence management topsheet materials. However, a better understanding of the connection between functionality and compositional aspects of molecular, mechanical, and material property relations is still required to employ structure/function relations beyond a priori design. Thus, this study focuses on the relation of key indices of material fluid and sensorial functions to nonwoven topsheet composition. Greige cotton, polypropylene, bleached cotton, and polyester fiber blends were hydroentangled at 60, 80, and 100 bar. Greige cotton polypropylene and bleached cotton were blended at ratios to balance surface polarity, whereas low percentages of polyester were added to confer whiteness properties. Electrokinetic and contact angle measurements were obtained for the hydroentangled nonwovens to assess surface polarity in light of material composition. Notably, materials demonstrated a relation of hydrophobicity to swelling as determined electrokinetically by Δζ, ζplateau, and contact angles greater than 90°. Subsequently, three blended nonwoven fabrics were selected to assess effects on fluid management properties including topsheet performance indices of rewet, strikethrough, and fluid handling (rate and efficiency of transport to the absorbent core). These materials aligned well with commercial topsheet fluid mechanics. Using the Leeds University Fabric Handle Evaluation System (LUFHES), the nonwovens were tested for total fabric hand. The results of the LUFHES measurements are discussed in light of fiber contributions. Fiber ratios were found to correlate well with improvement in softness, flexibility, and formability. This study provides insights that improves the understanding of the multifunctional properties accessible with greige cotton toward decisions valuable to selecting greige cotton as an environmentally friendly fiber for nonwoven topsheets.
机译:近年来,作为用于非织造顶片材料的一种环保,功能性纤维,格里格棉(GC)引起了人们的兴趣。 GC赋予与尿液运输相关的良好的液体管理和感官特性,以及与可穿戴失禁非织造布的舒适性相关的指标。非织造GC具有材料表面极性,环境湿度和脂质/多糖基质,该基质赋予可用于失禁管理顶层材料的正流体力学性能。但是,仍然需要更好地理解分子,机械和材料特性关系的功能和组成方面之间的联系,以采用先验设计以外的结构/功能关系。因此,本研究着眼于材料流体和感官功能的关键指标与无纺布顶层组成的关系。将格里格棉,聚丙烯,漂白棉和聚酯纤维混合物在60、80和100 bar下进行水力缠结。 Greige棉质聚丙烯和漂白棉以一定比例混合以平衡表面极性,而低百分比的聚酯则可赋予白度。获得了水缠结非织造材料的电动势和接触角测量值,以根据材料组成评估表面极性。值得注意的是,材料表现出疏水性与溶胀的关系,如通过Δζ,ζ平台和大于90°的接触角通过电动力学确定的。随后,选择三种混合的非织造织物以评估对流体管理性能的影响,包括再湿,透湿和流体处理的顶片性能指数(传输至吸收芯的速率和效率)。这些材料与商业顶层流体力学非常吻合。使用利兹大学的织物手感评估系统(LUFHES),对非织造布的总织物手感进行了测试。 LUFHES测量的结果将根据纤维的贡献进行讨论。发现纤维比率与柔软度,柔韧性和可成形性的改善良好相关。这项研究提供了见识,可以增进对坯棉可获得的多功能特性的理解,从而有助于选择坯棉作为无纺布顶层的环保纤维。

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