Effect of fibre architecture on the tensile and thermal properties of virgin and waste acrylic reinforced epoxy composites
Abstract
Fibres, yarns and fabrics were produced from used fabrics and virgin fibres respectively. The two sets were then used in compounding composites using epoxy resin as the matrix. The yarns were then woven into 6, 7, 8 and 9 picks per centimetre (ppcm) and 3, 4, 5, 6 and 7 ends per centimetre (epcm) plain weave fabrics. The waste and virgin fibres, yarns and fabrics were characterised for tensile strength, staple length, fineness and other important properties before using them to fabricate the composites. The hand lay-up technique was used for the composites fabrication. The composites were analysed for tensile and thermal properties. The results obtained show that the tensile strength of the yarn reinforced composites was higher than that of the fibre and fabric reinforced (in both weft and warp directions). For the thermogravimetric (TGA) results, it was observed generally that gradual weight loss started at 100 oC for all the composites. And after the decomposition, a residual weight loss of between 8 -10 % were left for all the composites at 600 oC.
Â
Keywords:
Fibre architecture, Composites, Virgin, Waste, Tensile strength and Thermogravimetric
Full Text:
PDFReferences
Achukwu, E.O., Dauda, B.M. and Ishiaku, U.S. (2015). Effects of fabric pattern on the mechanical properties of cotton fabric/unsaturated polyester composites. British Journal of Applied Science and Technology, 11(4): 1–11.
Dauda, B.M.D. (2008). Delamination in multilayer textile reinforced structural composites. PhD thesis, The University of Manchester, Manchester, U.K.
Domina, T. and Koch, K. (2009). Consumer reuse and recycling of postâ€consumer textile waste. Journal of Fashion Marketing and Management, 3(4): 346-359.
Gomes, M.G., Fangueiro, R. and Gonilho, P.C. (2006). Composites mateirals reinforced by waste fibres. 5th International Conference on Mechanics and Mateirals in Design, 24-26 July, Porto; Portugal.
Lang, C., Armstrong, C.M. and Brannon, L.A. (2013). Drivers of clothing disposal in the US: An exploration of the role of personal attributes and behaviours in frequent disposal, International Journal of Consumer Studies, 37, 6, 706-714.
Lewis, T. (2015). Apparel disposal and reuse. Sustainable Apparel Journal, 8: 233-250.
Morten, W.E. and Hearle, J.W.S. (2008). Physical properties of textile fibres, Woodhead publishers, 4th edition, Beltfast, pp. 28-31.
Mukhopadhyay, A. and Midha, V.K. (2008). A review on designing the waterproof breathable fabrics Part I: Fundamental principles and designing aspects of breathable fabrics. Journal of Industrial Textiles, 37: 3-9.
Onofrei, E., Rocha, A.M. and Catarino, A. (2011). Investigating the effect of moisture on the thermal comfort properties of functional elastic fabrics. Journal of Thermal Sciences, 42(1): 34–51.
Wei-Dai, V. and Denton, P.E. (2013). Hardness comparison of polymer specimens. Applied Physics Journal, 73(5): 3-11.
Refbacks
- There are currently no refbacks.