Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments

This study explores the mechanical and thermal characterization of epoxy-based composites reinforced with chemically modified woven cotton fabrics using the resin infusion technique. The woven fabrics construction parameters were varied in terms of weft yarn counts (16, 20, and 24 Tex) and pick dens...

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Published in:JOURNAL OF INDUSTRIAL TEXTILES
Main Authors: Owen, Macaulay M.; Wong, Leong S.; Achukwu, Emmanuel O.; Romli, Ahmad Z.; Shuib, Solehuddin B.
Format: Article
Language:English
Published: SAGE PUBLICATIONS INC 2024
Subjects:
Online Access:https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001280757900001
author Owen
Macaulay M.; Wong
Leong S.; Achukwu
Emmanuel O.; Romli
Ahmad Z.; Shuib
Solehuddin B.
spellingShingle Owen
Macaulay M.; Wong
Leong S.; Achukwu
Emmanuel O.; Romli
Ahmad Z.; Shuib
Solehuddin B.
Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
Materials Science
author_facet Owen
Macaulay M.; Wong
Leong S.; Achukwu
Emmanuel O.; Romli
Ahmad Z.; Shuib
Solehuddin B.
author_sort Owen
spelling Owen, Macaulay M.; Wong, Leong S.; Achukwu, Emmanuel O.; Romli, Ahmad Z.; Shuib, Solehuddin B.
Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
JOURNAL OF INDUSTRIAL TEXTILES
English
Article
This study explores the mechanical and thermal characterization of epoxy-based composites reinforced with chemically modified woven cotton fabrics using the resin infusion technique. The woven fabrics construction parameters were varied in terms of weft yarn counts (16, 20, and 24 Tex) and pick densities as defined by pick wheel teeth (PWT) (30, 36, and 41 T). The fabrics were surface treated with 6% concentration of sodium hydroxide (NaOH) using the alkali treatment method. The obtained results revealed that mechanical strength improved with decreasing weft yarn count and increasing PWT. Notably, chemically treated composites with the highest PWT exhibited superior strength compared to untreated counterparts, attributed to more compact microstructures, reduced fabric/fiber breakages, and enhanced interfacial bonding between the reinforced plain-woven cotton fabric and epoxy matrix. Thermogravimetric analysis (TGA) showed that all composites have higher thermal stability above 300 degrees C, with untreated fabric composites exhibiting the highest resistance to degradation, whereas the treated composite quickly degraded at an onset temperature of 288.4 degrees C due to the removal of the hemicellulose, decomposition of the cellulose, and lignin content. In conclusion, the study indicates that surface treatment and woven construction parameters such as weft yarn counts and pick wheel teeth, as well as the resin infusion technique, significantly influence the mechanical, microstructural, and thermal properties of resin-infused woven cotton reinforced composites for potential application in industrial and automotive sectors, offering lightweight, durable solutions for components such as construction and building panels, doors, and roof panels.
SAGE PUBLICATIONS INC
1528-0837
1530-8057
2024
54

10.1177/15280837241267817
Materials Science

WOS:001280757900001
https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001280757900001
title Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
title_short Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
title_full Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
title_fullStr Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
title_full_unstemmed Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
title_sort Mechanical and thermal characterization of resin-infused cotton fabric/epoxy composites: Influence of woven construction parameters and surface treatments
container_title JOURNAL OF INDUSTRIAL TEXTILES
language English
format Article
description This study explores the mechanical and thermal characterization of epoxy-based composites reinforced with chemically modified woven cotton fabrics using the resin infusion technique. The woven fabrics construction parameters were varied in terms of weft yarn counts (16, 20, and 24 Tex) and pick densities as defined by pick wheel teeth (PWT) (30, 36, and 41 T). The fabrics were surface treated with 6% concentration of sodium hydroxide (NaOH) using the alkali treatment method. The obtained results revealed that mechanical strength improved with decreasing weft yarn count and increasing PWT. Notably, chemically treated composites with the highest PWT exhibited superior strength compared to untreated counterparts, attributed to more compact microstructures, reduced fabric/fiber breakages, and enhanced interfacial bonding between the reinforced plain-woven cotton fabric and epoxy matrix. Thermogravimetric analysis (TGA) showed that all composites have higher thermal stability above 300 degrees C, with untreated fabric composites exhibiting the highest resistance to degradation, whereas the treated composite quickly degraded at an onset temperature of 288.4 degrees C due to the removal of the hemicellulose, decomposition of the cellulose, and lignin content. In conclusion, the study indicates that surface treatment and woven construction parameters such as weft yarn counts and pick wheel teeth, as well as the resin infusion technique, significantly influence the mechanical, microstructural, and thermal properties of resin-infused woven cotton reinforced composites for potential application in industrial and automotive sectors, offering lightweight, durable solutions for components such as construction and building panels, doors, and roof panels.
publisher SAGE PUBLICATIONS INC
issn 1528-0837
1530-8057
publishDate 2024
container_volume 54
container_issue
doi_str_mv 10.1177/15280837241267817
topic Materials Science
topic_facet Materials Science
accesstype
id WOS:001280757900001
url https://www-webofscience-com.uitm.idm.oclc.org/wos/woscc/full-record/WOS:001280757900001
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