Vol. 12 No. 9 (2026)
Open Access
Peer Reviewed

Multi-Response Optimisation of PVC-Based Composites Properties for Sustainable Applications

Authors

Chinecherem Chinenye Ikelugo , Oluwaseyi Omotayo Taiwo , Samuel Mary Obioarah , Ukamaka Ezeobi

DOI:

10.29303/jppipa.v12i9.16343

Published:

2026-09-30

Downloads

Abstract

This study reports the development and multi-response optimisation of poly(vinyl chloride) (PVC) hybrid composites reinforced with coconut fibre and corncob ash for sustainable, low-load applications. Nine hybrid formulations, combining 3-10 wt.% coconut fibre and 3-10 wt.% corncob ash with a balance of PVC, were fabricated by compression moulding and evaluated for tensile strength, hardness, flexural strength and water absorption; the constituent materials and composites were further characterised by Fourier-transform infrared spectroscopy (FTIR), X-ray diffraction (XRD) and scanning electron microscopy (SEM). FTIR confirmed a hydrophobic, carbon-chlorine-rich PVC backbone, a hydroxyl-rich lignocellulosic coconut fibre and a siliceous corncob ash, indicating a physically compatible but chemically dissimilar hybrid system. SEM micrographs linked dense, well-wetted microstructures to superior hardness and flexural performance, whereas fibre pull-out cavities and heterogeneous interfaces corresponded with reduced tensile strength and higher water uptake, while XRD confirmed persistent, quartz-dominated crystalline phases that intensified with ash loading. Reinforcement reduced tensile strength from 55.46 MPa (control) to between 19.27 and 36.89 MPa, but increased hardness (up to 34.54 HV, +76.2%) and flexural strength (up to 41.79 MPa, +216.1%) relative to neat PVC, while water absorption rose from 0.60% to a maximum of 1.90%. A mixture-design, desirability-function optimisation that simultaneously maximised flexural strength and hardness while minimising water absorption identified a global optimum of 88.40 wt.% PVC, 5.95 wt.% coconut fibre and 5.66 wt.% corncob ash, predicting 32.14 MPa flexural strength, 29.11 HV hardness and 1.36% water absorption (composite desirability = 0.560). Benchmarked against recent PVC- and polymer-based natural-filler composites, this balanced formulation is proposed for non-load-bearing interior cladding, demonstrating a scientifically defensible route for valorising agricultural residues within sustainable PVC composite design

Keywords:

Coconut fibre Corncob ash Desirability function Multi-response optimisation PVC composites Sustainable materials

References

Afolabi, O. A., Mohan, T. P., & Kanny, K. (2024). Effect of water absorption, hardness, and acoustic properties on sandwich syntactic foam composite for structural and marine applications. Discover Materials, 4, Article 1. https://doi.org/10.1007/s43939-023-00070-6

ASTM International. (2021). ASTM D2240-15(2021): Standard test method for rubber property—Durometer hardness. ASTM International.

ASTM International. (2022a). ASTM D570-22: Standard test method for water absorption of plastics. ASTM International.

ASTM International. (2022b). ASTM D638-22: Standard test method for tensile properties of plastics. ASTM International.

ASTM International. (2025). ASTM D790-25: Standard test methods for flexural properties of unreinforced and reinforced plastics and electrical insulating materials. ASTM International.

Benyettou, R., Amroune, S., Slamani, M., Saada, K., Fouad, H., Jawaid, M., & Sikdar, S. (2023). Modelling and optimization of the absorption rate of date palm fiber reinforced composite using response surface methodology. Alexandria Engineering Journal, 76, 599–613. https://doi.org/10.1016/j.aej.2023.08.042

Boussehel, H., Guerira, B., Jawaid, M., Fouad, H., & Khiari, R. (2024). Effect of benzoyl chloride treatment on morphological, thermal, mechanical, and hydrothermal aging properties of date palm/polyvinyl chloride (PVC) composites. Scientific Reports, 14, 20384. https://doi.org/10.1038/s41598-024-71489-x

Boztoprak, Y. (2024). Physical, mechanical, and flammability properties of wood-plastic composites (WPC) containing beech-wood flour and flame-retardant additives. Polymers, 16(20), 2944. https://doi.org/10.3390/polym16202944

Camillo, M. O., Gonçalves, B. M. M., Candido, V. S., Dias, L. C., Moulin, J. C., Monteiro, S. N., & Oliveira, M. P. (2023). Assessment of hydrothermal treatment effects on coir fibers for incorporation into polyurethane matrix biocomposites derived from castor oil. Polymers, 15(23), 4614. https://doi.org/10.3390/polym15234614

European Committee for Standardization. (2014). EN 15534-5:2014, Composites made from cellulose-based materials and thermoplastics (usually called wood-polymer composites or natural fibre composites)—Part 5: Specifications for cladding profiles and tiles. Author.

Gairola, S., Naik, T. P., Sinha, S., & Singh, I. (2022). Corncob waste as a potential filler in biocomposites: A decision towards sustainability. Composites Part C: Open Access, 9, 100317. https://doi.org/10.1016/j.jcomc.2022.100317

Gandam, P. K., Chinta, M. L., Pabbathi, N. P. P., Konakanchi, S., Bhavanam, A., & Atchuta, S. R. (2022). A new insight into the composition and physical characteristics of corncob—Substantiating its potential for tailored biorefinery objectives. Fermentation, 8(12), 704. https://doi.org/10.3390/fermentation8120704

Jha, R. K., Neyhouse, B. J., Young, M. S., Fagnani, D. E., & McNeil, A. J. (2024). Revisiting poly(vinyl chloride) reactivity in the context of chemical recycling. Chemical Science, 15, 5802–5813. https://doi.org/10.1039/D3SC06758K

Khamtree, S., Srivabut, C., Khamtree, S., & Kaewmai, R. (2024). Effects of natural fiber waste, content, and coupling agent on the physical and mechanical properties of wood species-plastic composites as green materials. Fibers and Polymers, 25, 1391–1402. https://doi.org/10.1007/s12221-024-00493-9

Kumar, G. S., Rathan, A., Bandhu, D., Reddy, B. M., Rao, H. R., Swami, S., Saxena, K. K., Eldin, S. M., & Prashanth, N. N. A. (2023). Mechanical and thermal characterization of coir/hemp/polyester hybrid composite for lightweight applications. Journal of Materials Research and Technology, 26, 8242–8253. https://doi.org/10.1016/j.jmrt.2023.09.144

Lewandowski, K., Altmajer, P., Borkowska, Z., & Skórczewska, K. (2024). Mechanical and processing properties of plasticised PVC/wood composites. Polymers, 16(15), 2204. https://doi.org/10.3390/polym16152204

Lewandowski, K., & Skórczewska, K. (2022). A brief review of poly(vinyl chloride) recycling. Polymers, 14(15), 3035. https://doi.org/10.3390/polym14153035

Li, J., Huo, R., Liu, W., Fang, H., Jiang, L., & Zhou, D. (2022). Mechanical properties of PVC-based wood–plastic composites effected by temperature. Frontiers in Materials, 9, 1018902. https://doi.org/10.3389/fmats.2022.1018902

Madueke, C. I., Ekechukwu, O. M., & Kolawole, F. O. (2024). A review on coir fibre, coir fibre reinforced polymer composites and their current applications. Journal of Renewable Materials, 12(12). https://doi.org/10.32604/jrm.2024.055207

Mohammed, A. A. B. A., Hasan, Z., Omran, A. A. B., Kumar, V. V., Elfaghi, A. M., Ilyas, R. A., & Sapuan, S. M. (2022). Corn: Its structure, polymer, fiber, composite, properties, and applications. Polymers, 14(20), 4396. https://doi.org/10.3390/polym14204396

Mulana, F., Aulia, M. P., Azwar, & Aprilia, S. (2024). Coconut fiber and fly ash polymer hybrid composite treated silane coupling agent: Study on morphology, physical, mechanical, and thermal properties. South African Journal of Chemical Engineering, 50, 10–19. https://doi.org/10.1016/j.sajce.2024.07.008

Nadondu, B., Surin, P., & Deeying, J. (2022). Multi-objective optimization on mechanical properties of glass-carbon and durian skin fiber reinforced poly(lactic acid) hybrid composites using the extreme mixture design response surface methodology. Case Studies in Construction Materials, 17, e01675. https://doi.org/10.1016/j.cscm.2022.e01675

Nukala, S. G., Kong, I., Kakarla, A. B., Kong, W., & Kong, W. (2022). Development of wood polymer composites from recycled wood and plastic waste: Thermal and mechanical properties. Journal of Composites Science, 6(7), 194. https://doi.org/10.3390/jcs6070194

Obada, D. O., Kuburi, L. S., Dauda, M., Umaru, S., Dodoo-Arhin, D., Balogun, M. B., Iliyasu, I., & Iorpenda, M. J. (2020). Effect of variation in frequencies on the viscoelastic properties of coir and coconut husk powder reinforced polymer composites. Journal of King Saud University–Engineering Sciences, 32(2), 148–157. https://doi.org/10.1016/j.jksues.2018.10.001

Oladele, I. O., Olayinka, M. O., Adelani, S. O., & Borode, J. O. (2022). Development of coconut fiber–corn cob ash hybrid reinforced polyvinyl chloride composites for shoe sole application. Journal of Natural Fibers, 19(15), 11763–11776. https://doi.org/10.1080/15440478.2022.2044426

Prasoetsopha, N., Chumsamrong, P., Singsang, W., Tayasuth, W., & Sittitanadol, I. (2025). Remarkable cassava rhizome powders as bio-reinforcing filler in wood thermoset composites. Polymer Composites. Advance online publication. https://doi.org/10.1002/pc.70694

Putra, A. E. E., Renreng, I., Arsyad, H., & Bakri, B. (2020). Investigating the effects of liquid-plasma treatment on tensile strength of coir fibers and interfacial fiber–matrix adhesion of composites. Composites Part B: Engineering, 183, 107722. https://doi.org/10.1016/j.compositesb.2019.107722

Ratanawilai, T., & Raksarak, N. (2024). Properties of polypropylene composites as function of reinforcement by plant fibers. Industrial Crops and Products, 222, 120025. https://doi.org/10.1016/j.indcrop.2024.120025

Sathiparan, N. (2025). A systematic review of corncob ash in construction: Current findings and future directions. Sustainable Materials and Technologies, 43, e01315. https://doi.org/10.1016/j.susmat.2025.e01315

Wasti, S., Hubbard, A. M., Clarkson, C. M., Johnston, E., Tekinalp, H., Ozcan, S., & Vaidya, U. (2024). Long coir and glass fiber reinforced polypropylene hybrid composites prepared via wet-laid technique. Composites Part C: Open Access, 14, 100445. https://doi.org/10.1016/j.jcomc.2024.100445

Zerin, N., Quinlan, P., & Simon, L. (2022). Optimum formulation design of natural fiber-reinforced composites for automotive applications. Journal of Composite Materials, 56(9), 1407–1415. https://doi.org/10.1177/00219983221076205

.

Author Biographies

Chinecherem Chinenye Ikelugo, Nnamdi Azikiwe University

Author Origin : Nigeria

Samuel Mary Obioarah, Nnamdi Azikiwe University

Author Origin : Nigeria

Ukamaka Ezeobi, Nnamdi Azikiwe University

Author Origin : Nigeria

Downloads

Download data is not yet available.

How to Cite

Ikelugo, C. C., Taiwo, O. O. ., Obioarah, S. M., & Ezeobi, U. (2026). Multi-Response Optimisation of PVC-Based Composites Properties for Sustainable Applications. Jurnal Penelitian Pendidikan IPA, 12(9). https://doi.org/10.29303/jppipa.v12i9.16343