Water Hyacinth Fibre Yarn in the Production of Interior Decoration Items: A Sustainable Design Approach in South-West Nigeria
Authors
Department of Industrial Design, Federal University of Technology, Akure, Ondo State (Malaysia)
Department of Industrial Design, Federal University of Technology, Akure, Ondo State (Nigeria)
Department of Industrial Design, Federal University of Technology, Akure, Ondo State (Nigeria)
Department of Microbiology, Federal University of Technology, Akure, Ondo State (Nigeria)
Article Information
DOI: 10.51244/IJRSI.2026.1306000108
Subject Category: Interior Design
Volume/Issue: 13/6 | Page No: 1479-1489
Publication Timeline
Submitted: 2026-06-06
Accepted: 2026-06-11
Published: 2026-06-25
Abstract
This study presents a systematic investigation into the extraction and processing of water hyacinth fibre from two riverine sites in South-West Nigeria, Igbokoda (Ondo State) and Ejinrin (Lagos State) for textile and interior decoration applications. Two extraction methods were employed and comparatively evaluated: the alkali retting method and the mechanical decortication method. Following extraction, fibres were subjected to alkaline pre-treatment using 10% NaOH at 90°C, neutralisation with 1.0% acetic acid, washing, and ambient-temperature drying. Dye absorption trials using vat dyes (black, orange, and green) were conducted to assess dimensional stability during wet processing. Selected fibres were subsequently spun into yarn using manual and traditional rope-making techniques. Results demonstrated that the mechanical decortication method produced cleaner, more uniform fibres in less time, while the retting method yielded softer fibres better suited for fine textile applications. Fibre samples from both sites exhibited complete dimensional stability throughout the dyeing process, with no measurable change in length before and after dyeing in wet or dry conditions. Fibres from Igbokoda, selected on the basis of superior impact resistance and flexural performance, were identified as the most suitable for yarn spinning, yielding smooth, flexible, and aesthetically viable yarns. The study demonstrates a feasible, low-cost processing pipeline for converting an invasive aquatic weed into textile-grade yarn appropriate for eco-friendly interior decoration applications in Nigeria.
Keywords
Water Hyacinth Fibre Extraction; Eichhornia Crassipes; Retting; Decortication; Alkali Treatment; Yarn Spinning; South-West Nigeria; Sustainable Textile
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References
1. Aboul-Fetouh, M.S., Elmorsi, T., El-Kady, J.M., & El-Adawi, H.A. (2010). Water hyacinth stems as a potential natural adsorbent for the adsorption of Acid Green 20 dye. Environmental Science Indian Journal, 5(1), 257–266. [Google Scholar] [Crossref]
2. Adiji, B.E., & Oladumiye, E. (2015). Assessment of handcrafted dyed and printed textile designs in selected cities in South-Western Nigeria. International Journal of Contemporary Applied Sciences, 2(3), 17–38. [Google Scholar] [Crossref]
3. Akinmola, E.A. (2024). Production of resist decorated fabrics for rattan upholstery. Research Journal of Industrial Design, 1(2), 2811–2474. [Google Scholar] [Crossref]
4. Akintola, S., Anatekhal, M., & Lawson, E. (2011). Some physicochemical characteristics of Badagry Creek, Nigeria. West African Journal of Applied Ecology, 18(1), 1–10. [Google Scholar] [Crossref]
5. Alavudeen, A., Rajini, N., Karthikeyan, S., Thiruchitrambalam, M., & Venkateshwaren, N. (2015). Mechanical properties of banana/kenaf hybrid fibre composites reinforced with water hyacinth fibres. Composites Part B: Engineering, 80, 1–9. [Google Scholar] [Crossref]
6. Ammayappan, L., Nayak, L.K., Ray, D.P., Das, S., & Roy, A.K. (2013). An overview of production and processing of natural bast fibres. Fibre2Fashion Technical Papers. Retrieved from www.fibre2fashion.com. [Google Scholar] [Crossref]
7. Bolorunduro, S.A. (2002). Water hyacinth in Nigeria: Spread and impact on fisheries. NIFFR Technical Report, 12, 1–14. [Google Scholar] [Crossref]
8. Boonyaroj, V., Chiemchaisri, C., Chiemchaisri, W., & Yamamoto, K. (2017). Use of water hyacinth biomass for interior household product applications. Resources, Conservation and Recycling, 120, 113–122. [Google Scholar] [Crossref]
9. Emidun, O.B., & Akinrujomu, A. (2021). Cottage industries and interior design in Nigeria: The water hyacinth opportunity. Journal of Applied Arts, 5(2), 34–45. [Google Scholar] [Crossref]
10. Ezama, O.D. (2019). The history of water hyacinth infestation in Nigeria: Origins and consequences. Nigerian Journal of Environmental Science, 8(1), 12–25. [Google Scholar] [Crossref]
11. Guna, V., Ilangovan, M., Vighnesh, H., Srinivas, C.V., & Reddy, N. (2020). Engineering water hyacinth fibres with improved mechanical, thermal and moisture performance by alkali treatment. Journal of Natural Fibres, 18(10), 1454–1462. [Google Scholar] [Crossref]
12. Jafari, N. (2010). Ecological and socio-economic utilisation of water hyacinth (Eichhornia crassipes) from Anzali Wetland, Caspian Sea, North Iran. Journal of Applied Sciences and Environmental Management, 14(2), 43–48. [Google Scholar] [Crossref]
13. Jose, S., Salim, R., & Ammayappan, L. (2016). An overview on production, properties, and value addition of pineapple leaf fibre (PALF). Journal of Natural Fibres, 13(3), 362–373. [Google Scholar] [Crossref]
14. Jyoti, K. (2023). Modern dyeing of natural fibres: Innovations and practices. Textile Science and Technology Review, 18(1), 22–35. [Google Scholar] [Crossref]
15. Kanchan, B. (2014). Rattan and cane products in global markets: Trends and opportunities. International Forestry Review, 16(2), 189–198. [Google Scholar] [Crossref]
16. Karouach, F., Bakraoui, M., El Gnaoui, Y., Lahboubi, N., El Bari, H., & Abdelmoumen, H. (2022). Water hyacinth as a valuable resource for sustainable production of goods and energy. Sustainable Production and Consumption, 32, 1–15. [Google Scholar] [Crossref]
17. Mazharul, I. (2021). Textile dyeing: Science and technology. Dhaka: Textile Education Press. [Google Scholar] [Crossref]
18. Mishra, V., Biswas, S., & Patra, A. (2018). Extraction and characterisation of water hyacinth fibre. Journal of Natural Fibres, 16(4), 596–605. [Google Scholar] [Crossref]
19. Nandiyanto, A.B.D., Dani, A.K., Ragadhita, R., & Aziz, M. (2023). Water hyacinth (Eichhornia crassipes) as a low-cost and eco-friendly material for sustainable engineering applications. Sustainability, 15(4), 3480. [Google Scholar] [Crossref]
20. Nuruzzaman, M. (2001). Jute and allied fibres: Processing and spinning. Dhaka: Bangladesh Jute Research Institute. [Google Scholar] [Crossref]
21. Ramesh, M., Palanikumar, K., & Reddy, K.H. (2017). Plant fibre based bio-composites: Sustainable and renewable green materials. Renewable and Sustainable Energy Reviews, 79, 558–584. [Google Scholar] [Crossref]
22. Reddy, K.O., Maheswari, C.U., Shukla, M., Song, J.I., & Rajulu, A.V. (2013). Tensile and structural characterization of alkali treated Borassus (Palmyra) fruit fine fibres. Composites Part B: Engineering, 44(1), 433–438. [Google Scholar] [Crossref]
23. Rezania, S., Ponraj, M., Din, M.F.M., Songip, A.R., Sairan, F.M., & Chelliapan, S. (2015). The diverse applications of water hyacinth with main focus on sustainable energy and production for new decade: An overview. Renewable and Sustainable Energy Reviews, 41, 943–954. [Google Scholar] [Crossref]
24. Sierra-Carmona, C.G., Hernández-Orduña, M.G., & Murrieta-Galindo, R. (2022). Artisanal products from water hyacinth in Mexico: A value chain analysis. Journal of Cleaner Production, 344, 131061. [Google Scholar] [Crossref]
25. Sneha, G., Sabu, T., Namitha, N.N., & Jose, S. (2023). Value-added utilisation of aquatic weeds for sustainable product development. Journal of Cleaner Production, 391, 136210. [Google Scholar] [Crossref]
26. Souza, E.B.C., Filho, E.B., Silva, D.N., Tonello, P.S., Foloni, L.L., Barbosa, M.H.P., & Freato, T.A. (2020). The effects of herbicides on water quality and aquatic biodiversity in Brazilian water bodies: A review. Chemosphere, 251, 126432. [Google Scholar] [Crossref]
27. Tahir, P.M., Ahmed, A.B., SaifulAzry, S.O.A., & Ahmed, Z. (2011). Retting process of some bast plant fibres and its effect on fibre quality: A review. BioResources, 6(4), 5260–5281. [Google Scholar] [Crossref]