Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers

This study explores and discusses the design, the manufacturing and the morphology of three-dimensional (3D) multilayered weft interlaced woven fabrics using stainless steel fibers on the electromagnetic shielding efficiency (SE). Design solutions of 3D multilayered interlaced fabrics in relation to...

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Main Authors: Brigita Kolcavová Sirková, Veronika Tunáková, Maros Tunák, Karol Jezik
Format: Article
Language:English
Published: Elsevier 2025-01-01
Series:Heliyon
Subjects:
Online Access:http://www.sciencedirect.com/science/article/pii/S2405844025000490
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author Brigita Kolcavová Sirková
Veronika Tunáková
Maros Tunák
Karol Jezik
author_facet Brigita Kolcavová Sirková
Veronika Tunáková
Maros Tunák
Karol Jezik
author_sort Brigita Kolcavová Sirková
collection DOAJ
description This study explores and discusses the design, the manufacturing and the morphology of three-dimensional (3D) multilayered weft interlaced woven fabrics using stainless steel fibers on the electromagnetic shielding efficiency (SE). Design solutions of 3D multilayered interlaced fabrics in relation to electromagnetic shielding efficiency are still not sufficiently investigated. Moreover, this study aims to analyze the differences in the internal geometry of 3D multilayered weft interlaced fabrics with different number of layers and frequency of connecting points in multilayered woven fabrics on electromagnetic SE. For this study, the input staple yarn 2 × 20 tex (mixed 80 % polyester/20 % stainless steel fibers) is used for production of approximately 28 types of different 3D multilayer weft interlaced woven fabrics (two and three-layer), with connecting points ranging from 0.5 cm × 0.5 cm–5 cm × 5 cm. The comparison of internal fabric microstructures indicates statistically significant differences in relation to SE, and this contribution extends the theoretical guidance of woven fabric construction with the design and production of special 3D multilayered interlaced fabrics with controlled SE.
format Article
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institution Kabale University
issn 2405-8440
language English
publishDate 2025-01-01
publisher Elsevier
record_format Article
series Heliyon
spelling doaj-art-775a35c8182a4d41810567d6419069e92025-01-17T04:51:52ZengElsevierHeliyon2405-84402025-01-01111e41669Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibersBrigita Kolcavová Sirková0Veronika Tunáková1Maros Tunák2Karol Jezik3Department of Technologies and Structures, Technical University of Liberec, Czech Republic; Corresponding author.Department of Material Engineering, Technical University of Liberec, Czech RepublicDepartment of Textile Evaluation, Technical University of Liberec, Czech RepublicDepartment of Technologies and Structures, Technical University of Liberec, Czech RepublicThis study explores and discusses the design, the manufacturing and the morphology of three-dimensional (3D) multilayered weft interlaced woven fabrics using stainless steel fibers on the electromagnetic shielding efficiency (SE). Design solutions of 3D multilayered interlaced fabrics in relation to electromagnetic shielding efficiency are still not sufficiently investigated. Moreover, this study aims to analyze the differences in the internal geometry of 3D multilayered weft interlaced fabrics with different number of layers and frequency of connecting points in multilayered woven fabrics on electromagnetic SE. For this study, the input staple yarn 2 × 20 tex (mixed 80 % polyester/20 % stainless steel fibers) is used for production of approximately 28 types of different 3D multilayer weft interlaced woven fabrics (two and three-layer), with connecting points ranging from 0.5 cm × 0.5 cm–5 cm × 5 cm. The comparison of internal fabric microstructures indicates statistically significant differences in relation to SE, and this contribution extends the theoretical guidance of woven fabric construction with the design and production of special 3D multilayered interlaced fabrics with controlled SE.http://www.sciencedirect.com/science/article/pii/S2405844025000490Three-dimensionalWoven fabricWeaveElectromagnetic shieldingInterlacing
spellingShingle Brigita Kolcavová Sirková
Veronika Tunáková
Maros Tunák
Karol Jezik
Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers
Heliyon
Three-dimensional
Woven fabric
Weave
Electromagnetic shielding
Interlacing
title Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers
title_full Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers
title_fullStr Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers
title_full_unstemmed Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers
title_short Electromagnetic shielding effectiveness of three-dimensional multilayered interlaced woven fabrics using stainless steel fibers
title_sort electromagnetic shielding effectiveness of three dimensional multilayered interlaced woven fabrics using stainless steel fibers
topic Three-dimensional
Woven fabric
Weave
Electromagnetic shielding
Interlacing
url http://www.sciencedirect.com/science/article/pii/S2405844025000490
work_keys_str_mv AT brigitakolcavovasirkova electromagneticshieldingeffectivenessofthreedimensionalmultilayeredinterlacedwovenfabricsusingstainlesssteelfibers
AT veronikatunakova electromagneticshieldingeffectivenessofthreedimensionalmultilayeredinterlacedwovenfabricsusingstainlesssteelfibers
AT marostunak electromagneticshieldingeffectivenessofthreedimensionalmultilayeredinterlacedwovenfabricsusingstainlesssteelfibers
AT karoljezik electromagneticshieldingeffectivenessofthreedimensionalmultilayeredinterlacedwovenfabricsusingstainlesssteelfibers