基材织物碱性表面改性对3D打印复合织物剥离强度的影响

IF 3.5 4区 管理学 Q1 MATERIALS SCIENCE, TEXTILES
Yoojung Han, Changsang Yun
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引用次数: 0

摘要

在现代时尚产业中,3D打印技术越来越多地与传统纺织面料相结合,创造出创新的3D服装。虽然这种整合可能不会完全取代传统的服装制造技术,但它为服装生产中的创新应用提供了机会。就3D打印复合织物(3D- pcf)的性能而言,3D打印聚合物与基材织物之间的粘附性至关重要。然而,织物表面性能如何影响基底织物与三维细丝之间的粘附性的研究仍然有限。因此,本研究考察了碱性表面改性对3D打印长丝粘合基板织物剥离强度的影响。碱性处理降低织物重量、厚度和抗拉强度。此外,随着碱性处理时间和温度的增加,3D-PCF剥离强度下降了30-50%。这是由于纤维直径减小和粘接表面积减小所致。相反,当NaOH浓度为4%和6%时,表面粗糙度的增加提高了剥离强度,分别达到15.6 N和15.9 N。然而,在8%时,表面蚀刻使剥离强度降低到3.7 n。这些结果表明,最佳的碱性处理提高了表面粗糙度和剥离强度,而过度的碱性处理降低了粘接表面积和粘接强度。过度处理还会显著改变织物的整体性能,进一步降低附着力。控制碱性浓度以限制体积变化,同时增加表面粗糙度是提高3D-PCF附着力的有效策略。通过表面改性提高剥离强度有望延长3D-PCF的使用寿命,特别是在高性能应用中。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Effect of the alkaline surface modification of the substrate fabric on the peel strength of 3D printed composite fabrics

In the modern fashion industry, 3D printing technologies are increasingly combined with traditional textile fabrics to create innovative 3D garments. Although this integration may not entirely replace traditional clothing manufacturing techniques, it presents opportunities for innovative applications in garment production. In terms of the performance of 3D printed composite fabrics (3D-PCF), adhesion between the 3D printing polymer and the substrate fabric is crucial. However, research on how fabric surface properties influence the adhesion between the substrate fabric and 3D filaments remains limited. Therefore, this study investigates the effects of alkaline surface modifications on the peel strength of substrate fabrics bonded with 3D printing filaments. Alkaline treatment reduces fabric weight, thickness, and tensile strength. Moreover, as both alkaline treatment time and temperature increased, the 3D-PCF peel strength decreased by 30–50%. This is attributed to the reduced fiber diameter and smaller adhesive surface area. Conversely, at NaOH concentrations of 4% and 6%, the increased surface roughness improved peel strength, reaching 15.6 N and 15.9 N, respectively. However, at 8%, surface etching reduced peel strength to 3.7 N. These results demonstrate that optimal alkaline treatment improves surface roughness and the peel strength, while excessive treatment diminishes the adhesive surface area and adhesion strength. Excessive treatment also significantly alters bulk fabric properties, further reducing adhesion. Controlling alkaline concentration to limit bulk changes while increasing surface roughness is an effective strategy to improve 3D-PCF adhesion. Enhanced peel strength through surface modification is expected to prolong the lifespan of 3D-PCF, especially in high-performance applications.

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来源期刊
Fashion and Textiles
Fashion and Textiles Business, Management and Accounting-Marketing
CiteScore
4.40
自引率
4.20%
发文量
37
审稿时长
13 weeks
期刊介绍: Fashion and Textiles aims to advance knowledge and to seek new perspectives in the fashion and textiles industry worldwide. We welcome original research articles, reviews, case studies, book reviews and letters to the editor. The scope of the journal includes the following four technical research divisions: Textile Science and Technology: Textile Material Science and Technology; Dyeing and Finishing; Smart and Intelligent Textiles Clothing Science and Technology: Physiology of Clothing/Textile Products; Protective clothing ; Smart and Intelligent clothing; Sportswear; Mass customization ; Apparel manufacturing Economics of Clothing and Textiles/Fashion Business: Management of the Clothing and Textiles Industry; Merchandising; Retailing; Fashion Marketing; Consumer Behavior; Socio-psychology of Fashion Fashion Design and Cultural Study on Fashion: Aesthetic Aspects of Fashion Product or Design Process; Textiles/Clothing/Fashion Design; Fashion Trend; History of Fashion; Costume or Dress; Fashion Theory; Fashion journalism; Fashion exhibition.
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