4.5 Article

High-strength conductive yarns and fabrics: mechanical properties, electromagnetic interference shielding effectiveness, and manufacturing techniques

期刊

JOURNAL OF THE TEXTILE INSTITUTE
卷 112, 期 3, 页码 347-357

出版社

TAYLOR & FRANCIS LTD
DOI: 10.1080/00405000.2020.1754639

关键词

Stainless steel (SS) filaments; conductive yarn; conductive fabric; electromagnetic interference shielding effectiveness (EMI SE); lamination angle

资金

  1. Ministry of Science and Technology of Taiwan [MOST 107-2622-E-035 -011 -CC3, MOST 107-2221-E-468-021, MOST 108-2221-E-468-017]

向作者/读者索取更多资源

This study aims to combine conductive polymer composite with conductive fabrics to obtain shielding materials with high EMI shielding effectiveness. The research results indicate that adjusting the T.P.I of conductive yarns can optimize tensile strength, and the type of laminated fabric directly affects the EMI SE.
The aim of this study is to combine conductive polymer composite with conductive fabrics for the acquisition of electromagnetic interference shielding effectiveness (EMI SE) materials. HS-PET filaments, 316 L stainless steel (SS) wires, and bamboo charcoal (BC) roving are made into woven fabrics and knitted fabrics. Unlike the nonwoven fabrics that consist of entangled staple fibers, the resulting shielding materials have greater air permeability. Accordingly, HS-PET filaments, 316 L SS filaments, and BC roving are made into conductive yarns with different twists per inch (T.P.I.) using a ring spinning manufacture. The conductive yarns are made into woven and knitted fabrics, the electromagnetic interference shielding effectiveness (EMI SE) of which are then evaluated in order to examine the influences of the number of fabric layers, lamination angle, and laminated fabric type. The test results show that with a T.P.I being 8, the conductive yarns have an optimal tensile strength of 43.74 N with the lowest CV% of 4.72%. In the meantime, the conductive yarns have good uniformity but do not demonstrate any significant trend on the linear resistance. In addition, the conductive woven fabrics have better tensile strength along the weft direction (712.49 N). Regardless of whether it is a woven fabric or a knitted fabric, the surface resistivity is 10(7) omega/sq. Single-layered knitted fabrics have the optimal air permeability (262.6 cm(3)/s/cm(2)), and the three-layered woven fabrics laminated at angle of 0 degrees/90 degrees/45 degrees exhibit the maximum EMI SE (-45.96 dB). Therefore, the three parameters are correlated with the metallic conductive network that directly changes the EMI SE of the resulted fabrics and composites.

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